SlideShare une entreprise Scribd logo

Chapter13 chemical kinetics

Télécharger en tant que PPT, PDF
Reisha Bianca See
Reisha Bianca See
FormationTechnologie
1  sur  104
Chemical Kinetics Tro, Chemistry: A Molecular Approach
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Kinetics Tro, Chemistry: A Molecular Approach
Defining Rate ,[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Defining Reaction Rate ,[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Reaction Rate Changes Over Time ,[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Tro, Chemistry: A Molecular Approach at t = 0 [A] = 8 [B] = 8 [C] = 0 at t = 0 [X] = 8 [Y] = 8 [Z] = 0 at t = 16 [A] = 4 [B] = 4 [C] = 4 at t = 16 [X] = 7 [Y] = 7 [Z] = 1
Tro, Chemistry: A Molecular Approach at t = 16 [A] = 4 [B] = 4 [C] = 4 at t = 16 [X] = 7 [Y] = 7 [Z] = 1 at t = 32 [A] = 2 [B] = 2 [C] = 6 at t = 32 [X] = 6 [Y] = 6 [Z] = 2
Tro, Chemistry: A Molecular Approach at t = 32 [A] = 2 [B] = 2 [C] = 6 at t = 32 [X] = 6 [Y] = 6 [Z] = 2 at t = 48 [A] = 0 [B] = 0 [C] = 8 at t = 48 [X] = 5 [Y] = 5 [Z] = 3
Hypothetical Reaction Red  Blue in this reaction, one molecule of Red turns into one molecule of Blue the number of molecules will always total 100 the rate of the reaction can be measured as the speed of loss of Red molecules over time, or the speed of gain of Blue molecules over time Time (sec) Number Red Number Blue 0 100 0 5 84 16 10 71 29 15 59 41 20 50 50 25 42 58 30 35 65 35 30 70 40 25 75 45 21 79 50 18 82
Hypothetical Reaction Red  Blue Tro, Chemistry: A Molecular Approach
Hypothetical Reaction Red  Blue Tro, Chemistry: A Molecular Approach
Reaction Rate and Stoichiometry ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Average Rate ,[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Hypothetical Reaction Red  Blue Avg. Rate Avg. Rate Avg. Rate Time (sec) Number Red Number Blue (5 sec intervals) (10 sec intervals) (25 sec intervals) 0 100 0       5 84 16 3.2     10 71 29 2.6 2.9   15 59 41 2.4     20 50 50 1.8 2.1   25 42 58 1.6   2.3 30 35 65 1.4 1.5   35 30 70 1     40 25 75 1 1   45 21 79 0.8     50 18 82 0.6 0.7 1
H 2 I 2 HI Stoichiometry tells us that for every 1 mole/L of H 2 used, 2 moles/L of HI are made. Assuming a 1 L container, at 10 s, we used 0.181 moles of H 2 . Therefore the amount of HI made is 2(0.181 moles) = 0.362 moles At 60 s, we used 0.699 moles of H 2 . Therefore the amount of HI made is 2(0.699 moles) = 1.398 moles The average rate is the change in the concentration in a given time period. In the first 10 s, the  [H 2 ] is -0.181 M, so the rate is Avg. Rate, M/s Avg. Rate, M/s Time (s) [H 2 ], M [HI], M -  [H 2 ]/  t 1/2  [HI]/  t 0.000 1.000 10.000 0.819 20.000 0.670 30.000 0.549 40.000 0.449 50.000 0.368 60.000 0.301 70.000 0.247 80.000 0.202 90.000 0.165 100.000 0.135 Avg. Rate, M/s Avg. Rate, M/s Time (s) [H 2 ], M [HI], M -  [H 2 ]/  t 1/2  [HI]/  t 0.000 1.000 0.000 10.000 0.819 0.362 20.000 0.670 0.660 30.000 0.549 0.902 40.000 0.449 1.102 50.000 0.368 1.264 60.000 0.301 1.398 70.000 0.247 1.506 80.000 0.202 1.596 90.000 0.165 1.670 100.000 0.135 1.730 Avg. Rate, M/s Time (s) [H 2 ], M [HI], M -  [H 2 ]/  t 0.000 1.000 0.000 10.000 0.819 0.362 0.0181 20.000 0.670 0.660 0.0149 30.000 0.549 0.902 0.0121 40.000 0.449 1.102 0.0100 50.000 0.368 1.264 0.0081 60.000 0.301 1.398 0.0067 70.000 0.247 1.506 0.0054 80.000 0.202 1.596 0.0045 90.000 0.165 1.670 0.0037 100.000 0.135 1.730 0.0030 Avg. Rate, M/s Avg. Rate, M/s Time (s) [H 2 ], M [HI], M -  [H 2 ]/  t 1/2  [HI]/  t 0.000 1.000 0.000 10.000 0.819 0.362 0.0181 0.0181 20.000 0.670 0.660 0.0149 0.0149 30.000 0.549 0.902 0.0121 0.0121 40.000 0.449 1.102 0.0100 0.0100 50.000 0.368 1.264 0.0081 0.0081 60.000 0.301 1.398 0.0067 0.0067 70.000 0.247 1.506 0.0054 0.0054 80.000 0.202 1.596 0.0045 0.0045 90.000 0.165 1.670 0.0037 0.0037 100.000 0.135 1.730 0.0030 0.0030
Tro, Chemistry: A Molecular Approach average rate in a given time period =  slope of the line connecting the [H 2 ] points; and ½ +slope of the line for [HI] the average rate for the first 10 s is 0.0181 M/s the average rate for the first 40 s is 0.0150 M/s the average rate for the first 80 s is 0.0108 M/s
Instantaneous Rate ,[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
H 2 ( g ) + I 2 ( g )  2 HI ( g ) Using [H 2 ], the instantaneous rate at 50 s is: Using [HI], the instantaneous rate at 50 s is:
Ex 13.1 - For the reaction given, the [I  ] changes from 1.000 M to 0.868 M in the first 10 s. Calculate the average rate in the first 10 s and the  [H + ]. H 2 O 2 ( aq ) + 3 I  ( aq ) + 2 H + ( aq )  I 3  ( aq ) + 2 H 2 O ( l ) Solve the equation for the Rate (in terms of the change in concentration of the Given quantity) Solve the equation of the Rate (in terms of the change in the concentration for the quantity to Find) for the unknown value
Measuring Reaction Rate ,[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Continuous Monitoring ,[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Sampling ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Factors Affecting Reaction Rate Nature of the Reactants ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
[object Object],[object Object],[object Object],[object Object],Factors Affecting Reaction Rate Temperature Tro, Chemistry: A Molecular Approach
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Factors Affecting Reaction Rate Catalysts Tro, Chemistry: A Molecular Approach
[object Object],[object Object],[object Object],[object Object],[object Object],Factors Affecting Reaction Rate Reactant Concentration Tro, Chemistry: A Molecular Approach
The Rate Law ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Reaction Order ,[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach 2 NO( g ) + O 2 ( g )  2 NO 2 ( g ) is Rate = k[NO] 2 [O 2 ] The reaction is second order with respect to [NO], first order with respect to [O 2 ], and third order overall
Sample Rate Laws Tro, Chemistry: A Molecular Approach The reaction is autocatalytic, because a product affects the rate. Hg 2+ is a negative catalyst, increasing its concentration slows the reaction.
Reactant Concentration vs. Time A  Products Tro, Chemistry: A Molecular Approach
Half-Life ,[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Zero Order Reactions ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach [A] 0 [A] time slope = - k
First Order Reactions ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Tro, Chemistry: A Molecular Approach ln[A] 0 ln[A] time slope = − k
Half-Life of a First-Order Reaction Is Constant Tro, Chemistry: A Molecular Approach
Rate Data for C 4 H 9 Cl + H 2 O  C 4 H 9 OH + HCl Tro, Chemistry: A Molecular Approach Time (sec) [C 4 H 9 Cl], M 0.0 0.1000 50.0 0.0905 100.0 0.0820 150.0 0.0741 200.0 0.0671 300.0 0.0549 400.0 0.0448 500.0 0.0368 800.0 0.0200 10000.0 0.0000
C 4 H 9 Cl + H 2 O  C 4 H 9 OH + 2 HCl Tro, Chemistry: A Molecular Approach
C 4 H 9 Cl + H 2 O  C 4 H 9 OH + 2 HCl Tro, Chemistry: A Molecular Approach
C 4 H 9 Cl + H 2 O  C 4 H 9 OH + 2 HCl Tro, Chemistry: A Molecular Approach slope = -2.01 x 10 -3 k = 2.01 x 10 -3 s -1
Second Order Reactions ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Tro, Chemistry: A Molecular Approach l/[A] 0 1/[A] time slope = k
Rate Data For 2 NO 2  2 NO + O 2 Time (hrs.) Partial Pressure NO 2 , mmHg ln(P NO2 ) 1/(P NO2 ) 0 100.0 4.605 0.01000 30 62.5 4.135 0.01600 60 45.5 3.817 0.02200 90 35.7 3.576 0.02800 120 29.4 3.381 0.03400 150 25.0 3.219 0.04000 180 21.7 3.079 0.04600 210 19.2 2.957 0.05200 240 17.2 2.847 0.05800
Rate Data Graphs For 2 NO 2  2 NO + O 2 Tro, Chemistry: A Molecular Approach
Rate Data Graphs For 2 NO 2  2 NO + O 2 Tro, Chemistry: A Molecular Approach
Rate Data Graphs For 2 NO 2  2 NO + O 2 Tro, Chemistry: A Molecular Approach
Determining the Rate Law ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Tro, Chemistry: A Molecular Approach
Practice - Complete the Table and Determine the Rate Equation for the Reaction A  2 Prod Tro, Chemistry: A Molecular Approach
Practice - Complete the Table and Determine the Rate Equation for the Reaction A  2 Prod Tro, Chemistry: A Molecular Approach
Tro, Chemistry: A Molecular Approach
Tro, Chemistry: A Molecular Approach
Tro, Chemistry: A Molecular Approach
Practice - Complete the Table and Determine the Rate Equation for the Reaction A  2 Prod Tro, Chemistry: A Molecular Approach the reaction is second order, Rate = -  [A]  t = 0.1 [A] 2
Ex. 13.4 – The reaction SO 2 Cl 2( g )  SO 2( g ) + Cl 2( g ) is first order with a rate constant of 2.90 x 10 -4 s -1 at a given set of conditions. Find the [SO 2 Cl 2 ] at 865 s when [SO 2 Cl 2 ] 0 = 0.0225 M the new concentration is less than the original, as expected [SO 2 Cl 2 ] 0 = 0.0225 M, t = 865, k = 2.90 x 10 -4 s -1 [SO 2 Cl 2 ] Check: Solution: Concept Plan: Relationships: Given: Find: [SO 2 Cl 2 ] [SO 2 Cl 2 ] 0 , t, k
Initial Rate Method ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Ex 13.2 – Determine the rate law and rate constant for the reaction NO 2( g ) + CO ( g )  NO ( g ) + CO 2( g ) given the data below. Comparing Expt #1 and Expt #2, the [NO 2 ] changes but the [CO] does not Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033 Write a general rate law including all reactants Examine the data and find two experiments in which the concentration of one reactant changes, but the other concentrations are the same Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033
Ex 13.2 – Determine the rate law and rate constant for the reaction NO 2( g ) + CO ( g )  NO ( g ) + CO 2( g ) given the data below. Tro, Chemistry: A Molecular Approach Determine by what factor the concentrations and rates change in these two experiments. Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033
Ex 13.2 – Determine the rate law and rate constant for the reaction NO 2( g ) + CO ( g )  NO ( g ) + CO 2( g ) given the data below. Tro, Chemistry: A Molecular Approach Determine to what power the concentration factor must be raised to equal the rate factor. Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033
Ex 13.2 – Determine the rate law and rate constant for the reaction NO 2( g ) + CO ( g )  NO ( g ) + CO 2( g ) given the data below. Tro, Chemistry: A Molecular Approach Repeat for the other reactants Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033 Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033
Ex 13.2 – Determine the rate law and rate constant for the reaction NO 2( g ) + CO ( g )  NO ( g ) + CO 2( g ) given the data below. Tro, Chemistry: A Molecular Approach n = 2, m = 0 Substitute the exponents into the general rate law to get the rate law for the reaction Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033
Ex 13.2 – Determine the rate law and rate constant for the reaction NO 2( g ) + CO ( g )  NO ( g ) + CO 2( g ) given the data below. Tro, Chemistry: A Molecular Approach Substitute the concentrations and rate for any experiment into the rate law and solve for k Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033
Practice - Determine the rate law and rate constant for the reaction NH 4 +1 + NO 2 -1      given the data below. Tro, Chemistry: A Molecular Approach Expt. No. Initial [NH 4 + ], M Initial [NO 2 - ], M Initial Rate, (x 10 -7 ), M/s 1 0.0200 0.200 10.8 2 0.0600 0.200 32.3 3 0.200 0.0202 10.8 4 0.200 0.0404 21.6
Practice - Determine the rate law and rate constant for the reaction NH 4 +1 + NO 2 -1      given the data below. Rate = k [NH 4 + ] n [NO 2  ] m Expt. No. Initial [NH 4 + ], M Initial [NO 2 - ], M Initial Rate, (x 10 -7 ), M/s 1 0.0200 0.200 10.8 2 0.0600 0.200 32.3 3 0.200 0.0202 10.8 4 0.200 0.0404 21.6
The Effect of Temperature on Rate ,[object Object],[object Object],Tro, Chemistry: A Molecular Approach R is the gas constant in energy units, 8.314 J/(mol∙K) where T is the temperature in kelvins A is a factor called the frequency factor E a is the activation energy , the extra energy needed to start the molecules reacting
Tro, Chemistry: A Molecular Approach
Activation Energy and the Activated Complex ,[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Isomerization of Methyl Isonitrile Tro, Chemistry: A Molecular Approach methyl isonitrile rearranges to acetonitrile in order for the reaction to occur, the H 3 C-N bond must break; and a new H 3 C-C bond form
Energy Profile for the Isomerization of Methyl Isonitrile the collision frequency is the number of molecules that approach the peak in a given period of time the activation energy is the difference in energy between the reactants and the activated complex the activated complex is a chemical species with partial bonds As the reaction begins, the C-N bond weakens enough for the C  N group to start to rotate
The Arrhenius Equation: The Exponential Factor ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Tro, Chemistry: A Molecular Approach
Arrhenius Plots ,[object Object],Tro, Chemistry: A Molecular Approach this equation is in the form y = m x + b where y = ln( k ) and x = (1/T) a graph of ln( k ) vs. (1/T) is a straight line (-8.314 J/mol∙K)(slope of the line) = E a , (in Joules) e y- intercept = A , (unit is the same as k )
Ex. 13.7 Determine the activation energy and frequency factor for the reaction O 3( g )  O 2( g ) + O ( g ) given the following data: Tro, Chemistry: A Molecular Approach Temp, K k, M -1 ∙s -1 Temp, K k, M -1 ∙s -1 600 3.37 x 10 3 1300 7.83 x 10 7 700 4.83 x 10 4 1400 1.45 x 10 8 800 3.58 x 10 5 1500 2.46 x 10 8 900 1.70 x 10 6 1600 3.93 x 10 8 1000 5.90 x 10 6 1700 5.93 x 10 8 1100 1.63 x 10 7 1800 8.55 x 10 8 1200 3.81 x 10 7 1900 1.19 x 10 9
Ex. 13.7 Determine the activation energy and frequency factor for the reaction O 3( g )  O 2( g ) + O ( g ) given the following data: Tro, Chemistry: A Molecular Approach use a spreadsheet to graph ln( k ) vs. (1/T)
Ex. 13.7 Determine the activation energy and frequency factor for the reaction O 3( g )  O 2( g ) + O ( g ) given the following data: Tro, Chemistry: A Molecular Approach E a = m∙(- R ) solve for E a A = e y -intercept solve for A
Arrhenius Equation: Two-Point Form ,[object Object],Tro, Chemistry: A Molecular Approach
Ex. 13.8 – The reaction NO 2( g ) + CO ( g )  CO 2( g ) + NO ( g ) has a rate constant of 2.57 M -1 ∙ s -1 at 701 K and 567 M -1 ∙ s -1 at 895 K. Find the activation energy in kJ/mol most activation energies are tens to hundreds of kJ/mol – so the answer is reasonable T 1 = 701 K, k 1 = 2.57 M -1 ∙s -1 , T 2 = 895 K, k 2 = 567 M -1 ∙s -1 E a , kJ/mol Check: Solution: Concept Plan: Relationships: Given: Find: E a T 1 , k 1 , T 2 , k 2
Collision Theory of Kinetics ,[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Effective Collisions ,[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Effective Collisions Kinetic Energy Factor Tro, Chemistry: A Molecular Approach for a collision to lead to overcoming the energy barrier, the reacting molecules must have sufficient kinetic energy so that when they collide it can form the activated complex
Effective Collisions Orientation Effect Tro, Chemistry: A Molecular Approach
Collision Theory and the Arrhenius Equation ,[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Orientation Factor ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Reaction Mechanisms ,[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
An Example of a Reaction Mechanism ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Elements of a Mechanism Intermediates ,[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach ,[object Object],[object Object],[object Object]
Molecularity ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Rate Laws for Elementary Steps ,[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach ,[object Object],[object Object],[object Object]
Rate Laws of Elementary Steps Tro, Chemistry: A Molecular Approach
Rate Determining Step ,[object Object],[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Another Reaction Mechanism Tro, Chemistry: A Molecular Approach ,[object Object],[object Object],[object Object],The first step in this mechanism is the rate determining step. The first step is slower than the second step because its activation energy is larger. The rate law of the first step is the same as the rate law of the overall reaction.
Validating a Mechanism ,[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Mechanisms with a Fast Initial Step ,[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
An Example Tro, Chemistry: A Molecular Approach 2 H 2 (g ) + 2 NO ( g )  2 H 2 O ( g ) + N 2( g ) Rate obs = k [H 2 ][NO] 2 2 NO ( g )  N 2 O 2( g ) Fast H 2 (g ) + N 2 O 2( g )  H 2 O ( g ) + N 2 O ( g ) Slow Rate = k 2 [H 2 ][N 2 O 2 ] H 2 (g ) + N 2 O ( g )  H 2 O ( g ) + N 2( g ) Fast k 1 k - 1 for Step 1 Rate forward = Rate reverse
Ex 13.9 Show that the proposed mechanism for the reaction 2 O 3( g )  3 O 2( g ) matches the observed rate law Rate = k [O 3 ] 2 [O 2 ] -1 Tro, Chemistry: A Molecular Approach O 3( g )  O 2( g ) + O ( g ) Fast O 3 (g ) + O ( g )  2 O 2( g ) Slow Rate = k 2 [O 3 ][O] k 1 k - 1 for Step 1 Rate forward = Rate reverse
Catalysts ,[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach mechanism without catalyst O 3 (g ) + O ( g )  2 O 2( g ) V. Slow mechanism with catalyst Cl ( g ) + O 3( g )  O 2( g ) + ClO ( g ) Fast ClO (g ) + O ( g )  O 2( g ) + Cl ( g ) Slow
Ozone Depletion over the Antarctic Tro, Chemistry: A Molecular Approach
Energy Profile of Catalyzed Reaction Tro, Chemistry: A Molecular Approach polar stratospheric clouds contain ice crystals that catalyze reactions that release Cl from atmospheric chemicals
Catalysts ,[object Object],[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Types of Catalysts Tro, Chemistry: A Molecular Approach
Catalytic Hydrogenation H 2 C=CH 2 + H 2 -> CH 3 CH 3 Tro, Chemistry: A Molecular Approach
Enzymes ,[object Object],[object Object],[object Object],Tro, Chemistry: A Molecular Approach
Enzyme-Substrate Binding Lock and Key Mechanism Tro, Chemistry: A Molecular Approach
Enzymatic Hydrolysis of Sucrose Tro, Chemistry: A Molecular Approach
Chapter 13 Chemical Kinetics 2008, Prentice Hall Chemistry: A Molecular Approach , 1 st Ed. Nivaldo Tro Roy Kennedy Massachusetts Bay Community College Wellesley Hills, MA

Recommandé

Hess's Law With Importance and Application
Hess's Law With Importance and ApplicationHess's Law With Importance and Application
Hess's Law With Importance and ApplicationTahirAziz48
 
Solving kinetics problems
Solving kinetics problemsSolving kinetics problems
Solving kinetics problemsNorth East ISD
 
chemical kinetics-kinetic vs thermodynamic
chemical kinetics-kinetic vs thermodynamicchemical kinetics-kinetic vs thermodynamic
chemical kinetics-kinetic vs thermodynamicFarhadAlsaeid
 
Chem 2 - Chemical Kinetics I: Introduction and Factors Affecting Reaction Rates
Chem 2 - Chemical Kinetics I: Introduction and Factors Affecting Reaction RatesChem 2 - Chemical Kinetics I: Introduction and Factors Affecting Reaction Rates
Chem 2 - Chemical Kinetics I: Introduction and Factors Affecting Reaction RatesLumen Learning
 
Ch16 kinetics 1
Ch16 kinetics 1Ch16 kinetics 1
Ch16 kinetics 1Sadam Shahani
 
Chemical Kinetics
Chemical KineticsChemical Kinetics
Chemical Kineticsjc762006
 
Chapter 1 : Rate of Reaction
Chapter 1 : Rate of ReactionChapter 1 : Rate of Reaction
Chapter 1 : Rate of ReactionKementerian Pelajaran Malaysia
 
Chemitry Chemical Equilibrium
Chemitry Chemical EquilibriumChemitry Chemical Equilibrium
Chemitry Chemical EquilibriumAfzal Zubair
 

Recommandé

Hess's Law With Importance and Application
Hess's Law With Importance and ApplicationHess's Law With Importance and Application
Hess's Law With Importance and ApplicationTahirAziz48
 
Solving kinetics problems
Solving kinetics problemsSolving kinetics problems
Solving kinetics problemsNorth East ISD
 
chemical kinetics-kinetic vs thermodynamic
chemical kinetics-kinetic vs thermodynamicchemical kinetics-kinetic vs thermodynamic
chemical kinetics-kinetic vs thermodynamicFarhadAlsaeid
 
Chem 2 - Chemical Kinetics I: Introduction and Factors Affecting Reaction Rates
Chem 2 - Chemical Kinetics I: Introduction and Factors Affecting Reaction RatesChem 2 - Chemical Kinetics I: Introduction and Factors Affecting Reaction Rates
Chem 2 - Chemical Kinetics I: Introduction and Factors Affecting Reaction RatesLumen Learning
 
Ch16 kinetics 1
Ch16 kinetics 1Ch16 kinetics 1
Ch16 kinetics 1Sadam Shahani
 
Chemical Kinetics
Chemical KineticsChemical Kinetics
Chemical Kineticsjc762006
 
Chapter 1 : Rate of Reaction
Chapter 1 : Rate of ReactionChapter 1 : Rate of Reaction
Chapter 1 : Rate of ReactionKementerian Pelajaran Malaysia
 
Chemitry Chemical Equilibrium
Chemitry Chemical EquilibriumChemitry Chemical Equilibrium
Chemitry Chemical EquilibriumAfzal Zubair
 
Chemica kinetic 2017
Chemica kinetic 2017Chemica kinetic 2017
Chemica kinetic 2017nysa tutorial
 
Chemical kinetics-ppt
Chemical kinetics-pptChemical kinetics-ppt
Chemical kinetics-pptAjay Pratap Bhadouriya
 
Chemical Kinetics
Chemical KineticsChemical Kinetics
Chemical KineticsHazem Hussein
 
Chemical kinetics I
Chemical kinetics IChemical kinetics I
Chemical kinetics IPRAVIN SINGARE
 
AP Chemistry Chapter 14 Outline
AP Chemistry Chapter 14 OutlineAP Chemistry Chapter 14 Outline
AP Chemistry Chapter 14 OutlineJane Hamze
 
General chemistry ii chapter 14
General chemistry ii chapter 14General chemistry ii chapter 14
General chemistry ii chapter 14Reisha Bianca See
 
Chemical kinetics
Chemical kineticsChemical kinetics
Chemical kineticsGandaki Boarding School,Lamachaur-16 Pokhara, Nepal
 
Catalysis
CatalysisCatalysis
CatalysisAZMIN MOGAL
 
Chemical Kinetics
Chemical KineticsChemical Kinetics
Chemical KineticsA Biodiction : A Unit of Dr. Divya Sharma
 
Chem 2 - Chemical Kinetics III - Determining the Rate Law with the Method of ...
Chem 2 - Chemical Kinetics III - Determining the Rate Law with the Method of ...Chem 2 - Chemical Kinetics III - Determining the Rate Law with the Method of ...
Chem 2 - Chemical Kinetics III - Determining the Rate Law with the Method of ...Lumen Learning
 
Synthesis of schiff base complexes and their biological studies presentation
Synthesis of schiff base complexes and their biological studies presentationSynthesis of schiff base complexes and their biological studies presentation
Synthesis of schiff base complexes and their biological studies presentationShafqat Ali
 
Thermochemistry
ThermochemistryThermochemistry
Thermochemistrysweemoi khor
 
Chemical kinetics
Chemical kineticsChemical kinetics
Chemical kineticsMirza Salman Baig
 
Le chatelier principles in dynamic equilibrium reactions
Le chatelier principles in dynamic equilibrium reactionsLe chatelier principles in dynamic equilibrium reactions
Le chatelier principles in dynamic equilibrium reactionsEinstein kannan
 
Kinetic of fast reaction
Kinetic of fast reactionKinetic of fast reaction
Kinetic of fast reactionNITINOO
 
Chapter 5 lecture- Thermochemistry
Chapter 5 lecture- ThermochemistryChapter 5 lecture- Thermochemistry
Chapter 5 lecture- ThermochemistryMary Beth Smith
 
Chemical kinetics presentation
Chemical kinetics presentationChemical kinetics presentation
Chemical kinetics presentationUniversity Of Johannesburg, SA
 
Chemical Equilibrium
Chemical EquilibriumChemical Equilibrium
Chemical EquilibriumSwarup Saha
 
11 balancing chemical equations
11 balancing chemical equations11 balancing chemical equations
11 balancing chemical equationsmrtangextrahelp
 
Chemical kinetics
Chemical kineticsChemical kinetics
Chemical kineticsChaudhry Hassan Ali
 
14 lecture
14 lecture14 lecture
14 lectureTheSlaps
 
New chm 152 unit 1 power points sp13
New chm 152 unit 1 power points sp13New chm 152 unit 1 power points sp13
New chm 152 unit 1 power points sp13caneman1
 

Contenu connexe

Tendances

Chemica kinetic 2017
Chemica kinetic 2017Chemica kinetic 2017
Chemica kinetic 2017nysa tutorial
 
AP Chemistry Chapter 14 Outline
AP Chemistry Chapter 14 OutlineAP Chemistry Chapter 14 Outline
AP Chemistry Chapter 14 OutlineJane Hamze
 
General chemistry ii chapter 14
General chemistry ii chapter 14General chemistry ii chapter 14
General chemistry ii chapter 14Reisha Bianca See
 
Chem 2 - Chemical Kinetics III - Determining the Rate Law with the Method of ...
Chem 2 - Chemical Kinetics III - Determining the Rate Law with the Method of ...Chem 2 - Chemical Kinetics III - Determining the Rate Law with the Method of ...
Chem 2 - Chemical Kinetics III - Determining the Rate Law with the Method of ...Lumen Learning
 
Synthesis of schiff base complexes and their biological studies presentation
Synthesis of schiff base complexes and their biological studies presentationSynthesis of schiff base complexes and their biological studies presentation
Synthesis of schiff base complexes and their biological studies presentationShafqat Ali
 
Le chatelier principles in dynamic equilibrium reactions
Le chatelier principles in dynamic equilibrium reactionsLe chatelier principles in dynamic equilibrium reactions
Le chatelier principles in dynamic equilibrium reactionsEinstein kannan
 
Kinetic of fast reaction
Kinetic of fast reactionKinetic of fast reaction
Kinetic of fast reactionNITINOO
 
Chapter 5 lecture- Thermochemistry
Chapter 5 lecture- ThermochemistryChapter 5 lecture- Thermochemistry
Chapter 5 lecture- ThermochemistryMary Beth Smith
 
Chemical Equilibrium
Chemical EquilibriumChemical Equilibrium
Chemical EquilibriumSwarup Saha
 
11 balancing chemical equations
11 balancing chemical equations11 balancing chemical equations
11 balancing chemical equationsmrtangextrahelp
 

Tendances (20)

Chemica kinetic 2017
Chemica kinetic 2017Chemica kinetic 2017
Chemica kinetic 2017
 
Chemical kinetics-ppt
Chemical kinetics-pptChemical kinetics-ppt
Chemical kinetics-ppt
 
Chemical Kinetics
Chemical KineticsChemical Kinetics
Chemical Kinetics
 
Chemical kinetics I
Chemical kinetics IChemical kinetics I
Chemical kinetics I
 
AP Chemistry Chapter 14 Outline
AP Chemistry Chapter 14 OutlineAP Chemistry Chapter 14 Outline
AP Chemistry Chapter 14 Outline
 
General chemistry ii chapter 14
General chemistry ii chapter 14General chemistry ii chapter 14
General chemistry ii chapter 14
 
Chemical kinetics
Chemical kineticsChemical kinetics
Chemical kinetics
 
Catalysis
CatalysisCatalysis
Catalysis
 
Chemical Kinetics
Chemical KineticsChemical Kinetics
Chemical Kinetics
 
Chem 2 - Chemical Kinetics III - Determining the Rate Law with the Method of ...
Chem 2 - Chemical Kinetics III - Determining the Rate Law with the Method of ...Chem 2 - Chemical Kinetics III - Determining the Rate Law with the Method of ...
Chem 2 - Chemical Kinetics III - Determining the Rate Law with the Method of ...
 
Synthesis of schiff base complexes and their biological studies presentation
Synthesis of schiff base complexes and their biological studies presentationSynthesis of schiff base complexes and their biological studies presentation
Synthesis of schiff base complexes and their biological studies presentation
 
Thermochemistry
ThermochemistryThermochemistry
Thermochemistry
 
Chemical kinetics
Chemical kineticsChemical kinetics
Chemical kinetics
 
Le chatelier principles in dynamic equilibrium reactions
Le chatelier principles in dynamic equilibrium reactionsLe chatelier principles in dynamic equilibrium reactions
Le chatelier principles in dynamic equilibrium reactions
 
Kinetic of fast reaction
Kinetic of fast reactionKinetic of fast reaction
Kinetic of fast reaction
 
Chapter 5 lecture- Thermochemistry
Chapter 5 lecture- ThermochemistryChapter 5 lecture- Thermochemistry
Chapter 5 lecture- Thermochemistry
 
Chemical kinetics presentation
Chemical kinetics presentationChemical kinetics presentation
Chemical kinetics presentation
 
Chemical Equilibrium
Chemical EquilibriumChemical Equilibrium
Chemical Equilibrium
 
11 balancing chemical equations
11 balancing chemical equations11 balancing chemical equations
11 balancing chemical equations
 
Chemical kinetics
Chemical kineticsChemical kinetics
Chemical kinetics
 

En vedette

14 lecture
14 lecture14 lecture
14 lectureTheSlaps
 
New chm 152 unit 1 power points sp13
New chm 152 unit 1 power points sp13New chm 152 unit 1 power points sp13
New chm 152 unit 1 power points sp13caneman1
 
01 lecture
01 lecture01 lecture
01 lectureTheSlaps
 
19 lecture
19 lecture19 lecture
19 lectureTheSlaps
 
17 lecture
17 lecture17 lecture
17 lectureTheSlaps
 
11 lecture
11 lecture11 lecture
11 lectureTheSlaps
 
Env activity set for city collegea new (recovered)this one
Env activity set for city collegea new (recovered)this oneEnv activity set for city collegea new (recovered)this one
Env activity set for city collegea new (recovered)this oneDr Robert Craig PhD
 
Tro chapter 13 kinetics spring 2015 (1)
Tro chapter 13 kinetics spring 2015 (1)Tro chapter 13 kinetics spring 2015 (1)
Tro chapter 13 kinetics spring 2015 (1)María Elena Guerra G
 
03 lecture
03 lecture03 lecture
03 lectureTheSlaps
 
AP Chemistry Chapter 13 Outline
AP Chemistry Chapter 13 OutlineAP Chemistry Chapter 13 Outline
AP Chemistry Chapter 13 OutlineJane Hamze
 
AP Chemistry Study Guide- Kinetics
AP Chemistry Study Guide- KineticsAP Chemistry Study Guide- Kinetics
AP Chemistry Study Guide- KineticsMary Beth Smith
 

En vedette (20)

14 lecture
14 lecture14 lecture
14 lecture
 
New chm 152 unit 1 power points sp13
New chm 152 unit 1 power points sp13New chm 152 unit 1 power points sp13
New chm 152 unit 1 power points sp13
 
01 lecture
01 lecture01 lecture
01 lecture
 
Tro3 lecture 06
Tro3 lecture 06Tro3 lecture 06
Tro3 lecture 06
 
Chap04
Chap04Chap04
Chap04
 
19 lecture
19 lecture19 lecture
19 lecture
 
17 lecture
17 lecture17 lecture
17 lecture
 
11 lecture
11 lecture11 lecture
11 lecture
 
Env activity set for city collegea new (recovered)this one
Env activity set for city collegea new (recovered)this oneEnv activity set for city collegea new (recovered)this one
Env activity set for city collegea new (recovered)this one
 
Tro3 lecture 02
Tro3 lecture 02Tro3 lecture 02
Tro3 lecture 02
 
Tro chapter 13 kinetics spring 2015 (1)
Tro chapter 13 kinetics spring 2015 (1)Tro chapter 13 kinetics spring 2015 (1)
Tro chapter 13 kinetics spring 2015 (1)
 
Article two
Article twoArticle two
Article two
 
Day 2 city college
Day 2 city collegeDay 2 city college
Day 2 city college
 
09 lecture
09 lecture09 lecture
09 lecture
 
03 lecture
03 lecture03 lecture
03 lecture
 
Harmonic frequencie print now
Harmonic frequencie print nowHarmonic frequencie print now
Harmonic frequencie print now
 
Degradation Kinetics and mechanisam
Degradation Kinetics and mechanisamDegradation Kinetics and mechanisam
Degradation Kinetics and mechanisam
 
AP Chemistry Chapter 13 Outline
AP Chemistry Chapter 13 OutlineAP Chemistry Chapter 13 Outline
AP Chemistry Chapter 13 Outline
 
Chemical kinetics
Chemical kineticsChemical kinetics
Chemical kinetics
 
AP Chemistry Study Guide- Kinetics
AP Chemistry Study Guide- KineticsAP Chemistry Study Guide- Kinetics
AP Chemistry Study Guide- Kinetics
 

Similaire à Chapter13 chemical kinetics

Chemical kinetics ok1294986988
Chemical kinetics ok1294986988Chemical kinetics ok1294986988
Chemical kinetics ok1294986988Navin Joshi
 
short material kinetics.pdf
short material kinetics.pdfshort material kinetics.pdf
short material kinetics.pdfAbi Thoppilan
 
Pink and Green Doodle Hand drawn Science Project Presentation.pdf
Pink and Green Doodle Hand drawn Science Project Presentation.pdfPink and Green Doodle Hand drawn Science Project Presentation.pdf
Pink and Green Doodle Hand drawn Science Project Presentation.pdfravrodriguez1632
 
Energy gateway.blogspot.com-chemical kinetics-complete note
Energy gateway.blogspot.com-chemical kinetics-complete noteEnergy gateway.blogspot.com-chemical kinetics-complete note
Energy gateway.blogspot.com-chemical kinetics-complete noteBidutSharkarShemanto
 
Chemical kinetics
Chemical kineticsChemical kinetics
Chemical kineticssania bibi
 
Chapter 14 Lecture- Chemical Kinetics
Chapter 14 Lecture- Chemical KineticsChapter 14 Lecture- Chemical Kinetics
Chapter 14 Lecture- Chemical KineticsMary Beth Smith
 
Apchemunit12presentation 120116192240-phpapp02
Apchemunit12presentation 120116192240-phpapp02Apchemunit12presentation 120116192240-phpapp02
Apchemunit12presentation 120116192240-phpapp02Cleophas Rwemera
 
CHE116 - Week 2: reaction rates and reaction order
CHE116 - Week 2: reaction rates and reaction orderCHE116 - Week 2: reaction rates and reaction order
CHE116 - Week 2: reaction rates and reaction orderSadie Novak
 
CHE116 - Rates of Reactions
CHE116 - Rates of ReactionsCHE116 - Rates of Reactions
CHE116 - Rates of ReactionsSadie Novak
 
KGF-Chapter 2-Kinetics.pptx
KGF-Chapter 2-Kinetics.pptxKGF-Chapter 2-Kinetics.pptx
KGF-Chapter 2-Kinetics.pptxabid masood
 
Chemical kinetics
Chemical kineticsChemical kinetics
Chemical kineticsmilan107
 
Chapter 1: Rate of Reaction
Chapter 1: Rate of ReactionChapter 1: Rate of Reaction
Chapter 1: Rate of ReactionM BR
 
Chemical Kinetics & Rate of a chemical reaction.pptx
Chemical Kinetics & Rate of a chemical reaction.pptxChemical Kinetics & Rate of a chemical reaction.pptx
Chemical Kinetics & Rate of a chemical reaction.pptxDidarul3
 

Similaire à Chapter13 chemical kinetics (20)

Kinetic for Pharmaceutical analysis and Physical Pharmacy
Kinetic for Pharmaceutical analysis and Physical PharmacyKinetic for Pharmaceutical analysis and Physical Pharmacy
Kinetic for Pharmaceutical analysis and Physical Pharmacy
 
4
44
4
 
Chemical kinetics ok1294986988
Chemical kinetics ok1294986988Chemical kinetics ok1294986988
Chemical kinetics ok1294986988
 
slow reaction
slow reactionslow reaction
slow reaction
 
short material kinetics.pdf
short material kinetics.pdfshort material kinetics.pdf
short material kinetics.pdf
 
Rate of reaction(f5)
Rate of reaction(f5)Rate of reaction(f5)
Rate of reaction(f5)
 
Tang 01 reaction rate
Tang 01 reaction rateTang 01 reaction rate
Tang 01 reaction rate
 
Pink and Green Doodle Hand drawn Science Project Presentation.pdf
Pink and Green Doodle Hand drawn Science Project Presentation.pdfPink and Green Doodle Hand drawn Science Project Presentation.pdf
Pink and Green Doodle Hand drawn Science Project Presentation.pdf
 
Energy gateway.blogspot.com-chemical kinetics-complete note
Energy gateway.blogspot.com-chemical kinetics-complete noteEnergy gateway.blogspot.com-chemical kinetics-complete note
Energy gateway.blogspot.com-chemical kinetics-complete note
 
Ch 15 Web
Ch 15 WebCh 15 Web
Ch 15 Web
 
Chemical kinetics
Chemical kineticsChemical kinetics
Chemical kinetics
 
Chapter 14 Lecture- Chemical Kinetics
Chapter 14 Lecture- Chemical KineticsChapter 14 Lecture- Chemical Kinetics
Chapter 14 Lecture- Chemical Kinetics
 
Leo...
Leo...Leo...
Leo...
 
Apchemunit12presentation 120116192240-phpapp02
Apchemunit12presentation 120116192240-phpapp02Apchemunit12presentation 120116192240-phpapp02
Apchemunit12presentation 120116192240-phpapp02
 
CHE116 - Week 2: reaction rates and reaction order
CHE116 - Week 2: reaction rates and reaction orderCHE116 - Week 2: reaction rates and reaction order
CHE116 - Week 2: reaction rates and reaction order
 
CHE116 - Rates of Reactions
CHE116 - Rates of ReactionsCHE116 - Rates of Reactions
CHE116 - Rates of Reactions
 
KGF-Chapter 2-Kinetics.pptx
KGF-Chapter 2-Kinetics.pptxKGF-Chapter 2-Kinetics.pptx
KGF-Chapter 2-Kinetics.pptx
 
Chemical kinetics
Chemical kineticsChemical kinetics
Chemical kinetics
 
Chapter 1: Rate of Reaction
Chapter 1: Rate of ReactionChapter 1: Rate of Reaction
Chapter 1: Rate of Reaction
 
Chemical Kinetics & Rate of a chemical reaction.pptx
Chemical Kinetics & Rate of a chemical reaction.pptxChemical Kinetics & Rate of a chemical reaction.pptx
Chemical Kinetics & Rate of a chemical reaction.pptx
 

Dernier

Karra SKD Conference Presentation Revised.pptx
Karra SKD Conference Presentation Revised.pptxKarra SKD Conference Presentation Revised.pptx
Karra SKD Conference Presentation Revised.pptxAshokKarra1
 
AUDIENCE THEORY -CULTIVATION THEORY - GERBNER.pptx
AUDIENCE THEORY -CULTIVATION THEORY - GERBNER.pptxAUDIENCE THEORY -CULTIVATION THEORY - GERBNER.pptx
AUDIENCE THEORY -CULTIVATION THEORY - GERBNER.pptxiammrhaywood
 
Concurrency Control in Database Management system
Concurrency Control in Database Management systemConcurrency Control in Database Management system
Concurrency Control in Database Management systemChristalin Nelson
 
ANG SEKTOR NG agrikultura.pptx QUARTER 4
ANG SEKTOR NG agrikultura.pptx QUARTER 4ANG SEKTOR NG agrikultura.pptx QUARTER 4
ANG SEKTOR NG agrikultura.pptx QUARTER 4MiaBumagat1
 
Earth Day Presentation wow hello nice great
Earth Day Presentation wow hello nice greatEarth Day Presentation wow hello nice great
Earth Day Presentation wow hello nice greatYousafMalik24
 
ICS2208 Lecture6 Notes for SL spaces.pdf
ICS2208 Lecture6 Notes for SL spaces.pdfICS2208 Lecture6 Notes for SL spaces.pdf
ICS2208 Lecture6 Notes for SL spaces.pdfVanessa Camilleri
 
How to do quick user assign in kanban in Odoo 17 ERP
How to do quick user assign in kanban in Odoo 17 ERPHow to do quick user assign in kanban in Odoo 17 ERP
How to do quick user assign in kanban in Odoo 17 ERPCeline George
 
MULTIDISCIPLINRY NATURE OF THE ENVIRONMENTAL STUDIES.pptx
MULTIDISCIPLINRY NATURE OF THE ENVIRONMENTAL STUDIES.pptxMULTIDISCIPLINRY NATURE OF THE ENVIRONMENTAL STUDIES.pptx
MULTIDISCIPLINRY NATURE OF THE ENVIRONMENTAL STUDIES.pptxAnupkumar Sharma
 
4.16.24 Poverty and Precarity--Desmond.pptx
4.16.24 Poverty and Precarity--Desmond.pptx4.16.24 Poverty and Precarity--Desmond.pptx
4.16.24 Poverty and Precarity--Desmond.pptxmary850239
 
Transaction Management in Database Management System
Transaction Management in Database Management SystemTransaction Management in Database Management System
Transaction Management in Database Management SystemChristalin Nelson
 
ISYU TUNGKOL SA SEKSWLADIDA (ISSUE ABOUT SEXUALITY
ISYU TUNGKOL SA SEKSWLADIDA (ISSUE ABOUT SEXUALITYISYU TUNGKOL SA SEKSWLADIDA (ISSUE ABOUT SEXUALITY
ISYU TUNGKOL SA SEKSWLADIDA (ISSUE ABOUT SEXUALITYKayeClaireEstoconing
 
Field Attribute Index Feature in Odoo 17
Field Attribute Index Feature in Odoo 17Field Attribute Index Feature in Odoo 17
Field Attribute Index Feature in Odoo 17Celine George
 
Incoming and Outgoing Shipments in 3 STEPS Using Odoo 17
Incoming and Outgoing Shipments in 3 STEPS Using Odoo 17Incoming and Outgoing Shipments in 3 STEPS Using Odoo 17
Incoming and Outgoing Shipments in 3 STEPS Using Odoo 17Celine George
 
Full Stack Web Development Course for Beginners
Full Stack Web Development Course for BeginnersFull Stack Web Development Course for Beginners
Full Stack Web Development Course for BeginnersSabitha Banu
 
What is Model Inheritance in Odoo 17 ERP
What is Model Inheritance in Odoo 17 ERPWhat is Model Inheritance in Odoo 17 ERP
What is Model Inheritance in Odoo 17 ERPCeline George
 
Music 9 - 4th quarter - Vocal Music of the Romantic Period.pptx
Music 9 - 4th quarter - Vocal Music of the Romantic Period.pptxMusic 9 - 4th quarter - Vocal Music of the Romantic Period.pptx
Music 9 - 4th quarter - Vocal Music of the Romantic Period.pptxleah joy valeriano
 
4.18.24 Movement Legacies, Reflection, and Review.pptx
4.18.24 Movement Legacies, Reflection, and Review.pptx4.18.24 Movement Legacies, Reflection, and Review.pptx
4.18.24 Movement Legacies, Reflection, and Review.pptxmary850239
 
Global Lehigh Strategic Initiatives (without descriptions)
Global Lehigh Strategic Initiatives (without descriptions)Global Lehigh Strategic Initiatives (without descriptions)
Global Lehigh Strategic Initiatives (without descriptions)cama23
 

Dernier (20)

YOUVE GOT EMAIL_FINALS_EL_DORADO_2024.pptx
YOUVE GOT EMAIL_FINALS_EL_DORADO_2024.pptxYOUVE GOT EMAIL_FINALS_EL_DORADO_2024.pptx
YOUVE GOT EMAIL_FINALS_EL_DORADO_2024.pptx
 
Karra SKD Conference Presentation Revised.pptx
Karra SKD Conference Presentation Revised.pptxKarra SKD Conference Presentation Revised.pptx
Karra SKD Conference Presentation Revised.pptx
 
AUDIENCE THEORY -CULTIVATION THEORY - GERBNER.pptx
AUDIENCE THEORY -CULTIVATION THEORY - GERBNER.pptxAUDIENCE THEORY -CULTIVATION THEORY - GERBNER.pptx
AUDIENCE THEORY -CULTIVATION THEORY - GERBNER.pptx
 
Concurrency Control in Database Management system
Concurrency Control in Database Management systemConcurrency Control in Database Management system
Concurrency Control in Database Management system
 
ANG SEKTOR NG agrikultura.pptx QUARTER 4
ANG SEKTOR NG agrikultura.pptx QUARTER 4ANG SEKTOR NG agrikultura.pptx QUARTER 4
ANG SEKTOR NG agrikultura.pptx QUARTER 4
 
Earth Day Presentation wow hello nice great
Earth Day Presentation wow hello nice greatEarth Day Presentation wow hello nice great
Earth Day Presentation wow hello nice great
 
ICS2208 Lecture6 Notes for SL spaces.pdf
ICS2208 Lecture6 Notes for SL spaces.pdfICS2208 Lecture6 Notes for SL spaces.pdf
ICS2208 Lecture6 Notes for SL spaces.pdf
 
How to do quick user assign in kanban in Odoo 17 ERP
How to do quick user assign in kanban in Odoo 17 ERPHow to do quick user assign in kanban in Odoo 17 ERP
How to do quick user assign in kanban in Odoo 17 ERP
 
MULTIDISCIPLINRY NATURE OF THE ENVIRONMENTAL STUDIES.pptx
MULTIDISCIPLINRY NATURE OF THE ENVIRONMENTAL STUDIES.pptxMULTIDISCIPLINRY NATURE OF THE ENVIRONMENTAL STUDIES.pptx
MULTIDISCIPLINRY NATURE OF THE ENVIRONMENTAL STUDIES.pptx
 
4.16.24 Poverty and Precarity--Desmond.pptx
4.16.24 Poverty and Precarity--Desmond.pptx4.16.24 Poverty and Precarity--Desmond.pptx
4.16.24 Poverty and Precarity--Desmond.pptx
 
Transaction Management in Database Management System
Transaction Management in Database Management SystemTransaction Management in Database Management System
Transaction Management in Database Management System
 
ISYU TUNGKOL SA SEKSWLADIDA (ISSUE ABOUT SEXUALITY
ISYU TUNGKOL SA SEKSWLADIDA (ISSUE ABOUT SEXUALITYISYU TUNGKOL SA SEKSWLADIDA (ISSUE ABOUT SEXUALITY
ISYU TUNGKOL SA SEKSWLADIDA (ISSUE ABOUT SEXUALITY
 
Field Attribute Index Feature in Odoo 17
Field Attribute Index Feature in Odoo 17Field Attribute Index Feature in Odoo 17
Field Attribute Index Feature in Odoo 17
 
Incoming and Outgoing Shipments in 3 STEPS Using Odoo 17
Incoming and Outgoing Shipments in 3 STEPS Using Odoo 17Incoming and Outgoing Shipments in 3 STEPS Using Odoo 17
Incoming and Outgoing Shipments in 3 STEPS Using Odoo 17
 
FINALS_OF_LEFT_ON_C'N_EL_DORADO_2024.pptx
FINALS_OF_LEFT_ON_C'N_EL_DORADO_2024.pptxFINALS_OF_LEFT_ON_C'N_EL_DORADO_2024.pptx
FINALS_OF_LEFT_ON_C'N_EL_DORADO_2024.pptx
 
Full Stack Web Development Course for Beginners
Full Stack Web Development Course for BeginnersFull Stack Web Development Course for Beginners
Full Stack Web Development Course for Beginners
 
What is Model Inheritance in Odoo 17 ERP
What is Model Inheritance in Odoo 17 ERPWhat is Model Inheritance in Odoo 17 ERP
What is Model Inheritance in Odoo 17 ERP
 
Music 9 - 4th quarter - Vocal Music of the Romantic Period.pptx
Music 9 - 4th quarter - Vocal Music of the Romantic Period.pptxMusic 9 - 4th quarter - Vocal Music of the Romantic Period.pptx
Music 9 - 4th quarter - Vocal Music of the Romantic Period.pptx
 
4.18.24 Movement Legacies, Reflection, and Review.pptx
4.18.24 Movement Legacies, Reflection, and Review.pptx4.18.24 Movement Legacies, Reflection, and Review.pptx
4.18.24 Movement Legacies, Reflection, and Review.pptx
 
Global Lehigh Strategic Initiatives (without descriptions)
Global Lehigh Strategic Initiatives (without descriptions)Global Lehigh Strategic Initiatives (without descriptions)
Global Lehigh Strategic Initiatives (without descriptions)
 

Chapter13 chemical kinetics

  • 1. Chemical Kinetics Tro, Chemistry: A Molecular Approach
  • 2.
  • 3.
  • 4.
  • 5.
  • 6. Tro, Chemistry: A Molecular Approach at t = 0 [A] = 8 [B] = 8 [C] = 0 at t = 0 [X] = 8 [Y] = 8 [Z] = 0 at t = 16 [A] = 4 [B] = 4 [C] = 4 at t = 16 [X] = 7 [Y] = 7 [Z] = 1
  • 7. Tro, Chemistry: A Molecular Approach at t = 16 [A] = 4 [B] = 4 [C] = 4 at t = 16 [X] = 7 [Y] = 7 [Z] = 1 at t = 32 [A] = 2 [B] = 2 [C] = 6 at t = 32 [X] = 6 [Y] = 6 [Z] = 2
  • 8. Tro, Chemistry: A Molecular Approach at t = 32 [A] = 2 [B] = 2 [C] = 6 at t = 32 [X] = 6 [Y] = 6 [Z] = 2 at t = 48 [A] = 0 [B] = 0 [C] = 8 at t = 48 [X] = 5 [Y] = 5 [Z] = 3
  • 9. Hypothetical Reaction Red  Blue in this reaction, one molecule of Red turns into one molecule of Blue the number of molecules will always total 100 the rate of the reaction can be measured as the speed of loss of Red molecules over time, or the speed of gain of Blue molecules over time Time (sec) Number Red Number Blue 0 100 0 5 84 16 10 71 29 15 59 41 20 50 50 25 42 58 30 35 65 35 30 70 40 25 75 45 21 79 50 18 82
  • 10. Hypothetical Reaction Red  Blue Tro, Chemistry: A Molecular Approach
  • 11. Hypothetical Reaction Red  Blue Tro, Chemistry: A Molecular Approach
  • 12.
  • 13.
  • 14. Hypothetical Reaction Red  Blue Avg. Rate Avg. Rate Avg. Rate Time (sec) Number Red Number Blue (5 sec intervals) (10 sec intervals) (25 sec intervals) 0 100 0       5 84 16 3.2     10 71 29 2.6 2.9   15 59 41 2.4     20 50 50 1.8 2.1   25 42 58 1.6   2.3 30 35 65 1.4 1.5   35 30 70 1     40 25 75 1 1   45 21 79 0.8     50 18 82 0.6 0.7 1
  • 15. H 2 I 2 HI Stoichiometry tells us that for every 1 mole/L of H 2 used, 2 moles/L of HI are made. Assuming a 1 L container, at 10 s, we used 0.181 moles of H 2 . Therefore the amount of HI made is 2(0.181 moles) = 0.362 moles At 60 s, we used 0.699 moles of H 2 . Therefore the amount of HI made is 2(0.699 moles) = 1.398 moles The average rate is the change in the concentration in a given time period. In the first 10 s, the  [H 2 ] is -0.181 M, so the rate is Avg. Rate, M/s Avg. Rate, M/s Time (s) [H 2 ], M [HI], M -  [H 2 ]/  t 1/2  [HI]/  t 0.000 1.000 10.000 0.819 20.000 0.670 30.000 0.549 40.000 0.449 50.000 0.368 60.000 0.301 70.000 0.247 80.000 0.202 90.000 0.165 100.000 0.135 Avg. Rate, M/s Avg. Rate, M/s Time (s) [H 2 ], M [HI], M -  [H 2 ]/  t 1/2  [HI]/  t 0.000 1.000 0.000 10.000 0.819 0.362 20.000 0.670 0.660 30.000 0.549 0.902 40.000 0.449 1.102 50.000 0.368 1.264 60.000 0.301 1.398 70.000 0.247 1.506 80.000 0.202 1.596 90.000 0.165 1.670 100.000 0.135 1.730 Avg. Rate, M/s Time (s) [H 2 ], M [HI], M -  [H 2 ]/  t 0.000 1.000 0.000 10.000 0.819 0.362 0.0181 20.000 0.670 0.660 0.0149 30.000 0.549 0.902 0.0121 40.000 0.449 1.102 0.0100 50.000 0.368 1.264 0.0081 60.000 0.301 1.398 0.0067 70.000 0.247 1.506 0.0054 80.000 0.202 1.596 0.0045 90.000 0.165 1.670 0.0037 100.000 0.135 1.730 0.0030 Avg. Rate, M/s Avg. Rate, M/s Time (s) [H 2 ], M [HI], M -  [H 2 ]/  t 1/2  [HI]/  t 0.000 1.000 0.000 10.000 0.819 0.362 0.0181 0.0181 20.000 0.670 0.660 0.0149 0.0149 30.000 0.549 0.902 0.0121 0.0121 40.000 0.449 1.102 0.0100 0.0100 50.000 0.368 1.264 0.0081 0.0081 60.000 0.301 1.398 0.0067 0.0067 70.000 0.247 1.506 0.0054 0.0054 80.000 0.202 1.596 0.0045 0.0045 90.000 0.165 1.670 0.0037 0.0037 100.000 0.135 1.730 0.0030 0.0030
  • 16. Tro, Chemistry: A Molecular Approach average rate in a given time period =  slope of the line connecting the [H 2 ] points; and ½ +slope of the line for [HI] the average rate for the first 10 s is 0.0181 M/s the average rate for the first 40 s is 0.0150 M/s the average rate for the first 80 s is 0.0108 M/s
  • 17.
  • 18. H 2 ( g ) + I 2 ( g )  2 HI ( g ) Using [H 2 ], the instantaneous rate at 50 s is: Using [HI], the instantaneous rate at 50 s is:
  • 19. Ex 13.1 - For the reaction given, the [I  ] changes from 1.000 M to 0.868 M in the first 10 s. Calculate the average rate in the first 10 s and the  [H + ]. H 2 O 2 ( aq ) + 3 I  ( aq ) + 2 H + ( aq )  I 3  ( aq ) + 2 H 2 O ( l ) Solve the equation for the Rate (in terms of the change in concentration of the Given quantity) Solve the equation of the Rate (in terms of the change in the concentration for the quantity to Find) for the unknown value
  • 20.
  • 21.
  • 22.
  • 23.
  • 24.
  • 25.
  • 26.
  • 27.
  • 28.
  • 29. Sample Rate Laws Tro, Chemistry: A Molecular Approach The reaction is autocatalytic, because a product affects the rate. Hg 2+ is a negative catalyst, increasing its concentration slows the reaction.
  • 30. Reactant Concentration vs. Time A  Products Tro, Chemistry: A Molecular Approach
  • 31.
  • 32.
  • 33.
  • 34. Tro, Chemistry: A Molecular Approach ln[A] 0 ln[A] time slope = − k
  • 35. Half-Life of a First-Order Reaction Is Constant Tro, Chemistry: A Molecular Approach
  • 36. Rate Data for C 4 H 9 Cl + H 2 O  C 4 H 9 OH + HCl Tro, Chemistry: A Molecular Approach Time (sec) [C 4 H 9 Cl], M 0.0 0.1000 50.0 0.0905 100.0 0.0820 150.0 0.0741 200.0 0.0671 300.0 0.0549 400.0 0.0448 500.0 0.0368 800.0 0.0200 10000.0 0.0000
  • 37. C 4 H 9 Cl + H 2 O  C 4 H 9 OH + 2 HCl Tro, Chemistry: A Molecular Approach
  • 38. C 4 H 9 Cl + H 2 O  C 4 H 9 OH + 2 HCl Tro, Chemistry: A Molecular Approach
  • 39. C 4 H 9 Cl + H 2 O  C 4 H 9 OH + 2 HCl Tro, Chemistry: A Molecular Approach slope = -2.01 x 10 -3 k = 2.01 x 10 -3 s -1
  • 40.
  • 41. Tro, Chemistry: A Molecular Approach l/[A] 0 1/[A] time slope = k
  • 42. Rate Data For 2 NO 2  2 NO + O 2 Time (hrs.) Partial Pressure NO 2 , mmHg ln(P NO2 ) 1/(P NO2 ) 0 100.0 4.605 0.01000 30 62.5 4.135 0.01600 60 45.5 3.817 0.02200 90 35.7 3.576 0.02800 120 29.4 3.381 0.03400 150 25.0 3.219 0.04000 180 21.7 3.079 0.04600 210 19.2 2.957 0.05200 240 17.2 2.847 0.05800
  • 43. Rate Data Graphs For 2 NO 2  2 NO + O 2 Tro, Chemistry: A Molecular Approach
  • 44. Rate Data Graphs For 2 NO 2  2 NO + O 2 Tro, Chemistry: A Molecular Approach
  • 45. Rate Data Graphs For 2 NO 2  2 NO + O 2 Tro, Chemistry: A Molecular Approach
  • 46.
  • 47. Tro, Chemistry: A Molecular Approach
  • 48. Practice - Complete the Table and Determine the Rate Equation for the Reaction A  2 Prod Tro, Chemistry: A Molecular Approach
  • 49. Practice - Complete the Table and Determine the Rate Equation for the Reaction A  2 Prod Tro, Chemistry: A Molecular Approach
  • 50. Tro, Chemistry: A Molecular Approach
  • 51. Tro, Chemistry: A Molecular Approach
  • 52. Tro, Chemistry: A Molecular Approach
  • 53. Practice - Complete the Table and Determine the Rate Equation for the Reaction A  2 Prod Tro, Chemistry: A Molecular Approach the reaction is second order, Rate = -  [A]  t = 0.1 [A] 2
  • 54. Ex. 13.4 – The reaction SO 2 Cl 2( g )  SO 2( g ) + Cl 2( g ) is first order with a rate constant of 2.90 x 10 -4 s -1 at a given set of conditions. Find the [SO 2 Cl 2 ] at 865 s when [SO 2 Cl 2 ] 0 = 0.0225 M the new concentration is less than the original, as expected [SO 2 Cl 2 ] 0 = 0.0225 M, t = 865, k = 2.90 x 10 -4 s -1 [SO 2 Cl 2 ] Check: Solution: Concept Plan: Relationships: Given: Find: [SO 2 Cl 2 ] [SO 2 Cl 2 ] 0 , t, k
  • 55.
  • 56. Ex 13.2 – Determine the rate law and rate constant for the reaction NO 2( g ) + CO ( g )  NO ( g ) + CO 2( g ) given the data below. Comparing Expt #1 and Expt #2, the [NO 2 ] changes but the [CO] does not Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033 Write a general rate law including all reactants Examine the data and find two experiments in which the concentration of one reactant changes, but the other concentrations are the same Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033
  • 57. Ex 13.2 – Determine the rate law and rate constant for the reaction NO 2( g ) + CO ( g )  NO ( g ) + CO 2( g ) given the data below. Tro, Chemistry: A Molecular Approach Determine by what factor the concentrations and rates change in these two experiments. Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033
  • 58. Ex 13.2 – Determine the rate law and rate constant for the reaction NO 2( g ) + CO ( g )  NO ( g ) + CO 2( g ) given the data below. Tro, Chemistry: A Molecular Approach Determine to what power the concentration factor must be raised to equal the rate factor. Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033
  • 59. Ex 13.2 – Determine the rate law and rate constant for the reaction NO 2( g ) + CO ( g )  NO ( g ) + CO 2( g ) given the data below. Tro, Chemistry: A Molecular Approach Repeat for the other reactants Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033 Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033
  • 60. Ex 13.2 – Determine the rate law and rate constant for the reaction NO 2( g ) + CO ( g )  NO ( g ) + CO 2( g ) given the data below. Tro, Chemistry: A Molecular Approach n = 2, m = 0 Substitute the exponents into the general rate law to get the rate law for the reaction Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033
  • 61. Ex 13.2 – Determine the rate law and rate constant for the reaction NO 2( g ) + CO ( g )  NO ( g ) + CO 2( g ) given the data below. Tro, Chemistry: A Molecular Approach Substitute the concentrations and rate for any experiment into the rate law and solve for k Expt. Number Initial [NO 2 ], (M) Initial [CO], (M) Initial Rate (M/s) 1. 0.10 0.10 0.0021 2. 0.20 0.10 0.0082 3. 0.20 0.20 0.0083 4. 0.40 0.10 0.033
  • 62. Practice - Determine the rate law and rate constant for the reaction NH 4 +1 + NO 2 -1      given the data below. Tro, Chemistry: A Molecular Approach Expt. No. Initial [NH 4 + ], M Initial [NO 2 - ], M Initial Rate, (x 10 -7 ), M/s 1 0.0200 0.200 10.8 2 0.0600 0.200 32.3 3 0.200 0.0202 10.8 4 0.200 0.0404 21.6
  • 63. Practice - Determine the rate law and rate constant for the reaction NH 4 +1 + NO 2 -1      given the data below. Rate = k [NH 4 + ] n [NO 2  ] m Expt. No. Initial [NH 4 + ], M Initial [NO 2 - ], M Initial Rate, (x 10 -7 ), M/s 1 0.0200 0.200 10.8 2 0.0600 0.200 32.3 3 0.200 0.0202 10.8 4 0.200 0.0404 21.6
  • 64.
  • 65. Tro, Chemistry: A Molecular Approach
  • 66.
  • 67. Isomerization of Methyl Isonitrile Tro, Chemistry: A Molecular Approach methyl isonitrile rearranges to acetonitrile in order for the reaction to occur, the H 3 C-N bond must break; and a new H 3 C-C bond form
  • 68. Energy Profile for the Isomerization of Methyl Isonitrile the collision frequency is the number of molecules that approach the peak in a given period of time the activation energy is the difference in energy between the reactants and the activated complex the activated complex is a chemical species with partial bonds As the reaction begins, the C-N bond weakens enough for the C  N group to start to rotate
  • 69.
  • 70. Tro, Chemistry: A Molecular Approach
  • 71.
  • 72. Ex. 13.7 Determine the activation energy and frequency factor for the reaction O 3( g )  O 2( g ) + O ( g ) given the following data: Tro, Chemistry: A Molecular Approach Temp, K k, M -1 ∙s -1 Temp, K k, M -1 ∙s -1 600 3.37 x 10 3 1300 7.83 x 10 7 700 4.83 x 10 4 1400 1.45 x 10 8 800 3.58 x 10 5 1500 2.46 x 10 8 900 1.70 x 10 6 1600 3.93 x 10 8 1000 5.90 x 10 6 1700 5.93 x 10 8 1100 1.63 x 10 7 1800 8.55 x 10 8 1200 3.81 x 10 7 1900 1.19 x 10 9
  • 73. Ex. 13.7 Determine the activation energy and frequency factor for the reaction O 3( g )  O 2( g ) + O ( g ) given the following data: Tro, Chemistry: A Molecular Approach use a spreadsheet to graph ln( k ) vs. (1/T)
  • 74. Ex. 13.7 Determine the activation energy and frequency factor for the reaction O 3( g )  O 2( g ) + O ( g ) given the following data: Tro, Chemistry: A Molecular Approach E a = m∙(- R ) solve for E a A = e y -intercept solve for A
  • 75.
  • 76. Ex. 13.8 – The reaction NO 2( g ) + CO ( g )  CO 2( g ) + NO ( g ) has a rate constant of 2.57 M -1 ∙ s -1 at 701 K and 567 M -1 ∙ s -1 at 895 K. Find the activation energy in kJ/mol most activation energies are tens to hundreds of kJ/mol – so the answer is reasonable T 1 = 701 K, k 1 = 2.57 M -1 ∙s -1 , T 2 = 895 K, k 2 = 567 M -1 ∙s -1 E a , kJ/mol Check: Solution: Concept Plan: Relationships: Given: Find: E a T 1 , k 1 , T 2 , k 2
  • 77.
  • 78.
  • 79. Effective Collisions Kinetic Energy Factor Tro, Chemistry: A Molecular Approach for a collision to lead to overcoming the energy barrier, the reacting molecules must have sufficient kinetic energy so that when they collide it can form the activated complex
  • 80. Effective Collisions Orientation Effect Tro, Chemistry: A Molecular Approach
  • 81.
  • 82.
  • 83.
  • 84.
  • 85.
  • 86.
  • 87.
  • 88. Rate Laws of Elementary Steps Tro, Chemistry: A Molecular Approach
  • 89.
  • 90.
  • 91.
  • 92.
  • 93. An Example Tro, Chemistry: A Molecular Approach 2 H 2 (g ) + 2 NO ( g )  2 H 2 O ( g ) + N 2( g ) Rate obs = k [H 2 ][NO] 2 2 NO ( g )  N 2 O 2( g ) Fast H 2 (g ) + N 2 O 2( g )  H 2 O ( g ) + N 2 O ( g ) Slow Rate = k 2 [H 2 ][N 2 O 2 ] H 2 (g ) + N 2 O ( g )  H 2 O ( g ) + N 2( g ) Fast k 1 k - 1 for Step 1 Rate forward = Rate reverse
  • 94. Ex 13.9 Show that the proposed mechanism for the reaction 2 O 3( g )  3 O 2( g ) matches the observed rate law Rate = k [O 3 ] 2 [O 2 ] -1 Tro, Chemistry: A Molecular Approach O 3( g )  O 2( g ) + O ( g ) Fast O 3 (g ) + O ( g )  2 O 2( g ) Slow Rate = k 2 [O 3 ][O] k 1 k - 1 for Step 1 Rate forward = Rate reverse
  • 95.
  • 96. Ozone Depletion over the Antarctic Tro, Chemistry: A Molecular Approach
  • 97. Energy Profile of Catalyzed Reaction Tro, Chemistry: A Molecular Approach polar stratospheric clouds contain ice crystals that catalyze reactions that release Cl from atmospheric chemicals
  • 98.
  • 99. Types of Catalysts Tro, Chemistry: A Molecular Approach
  • 100. Catalytic Hydrogenation H 2 C=CH 2 + H 2 -> CH 3 CH 3 Tro, Chemistry: A Molecular Approach
  • 101.
  • 102. Enzyme-Substrate Binding Lock and Key Mechanism Tro, Chemistry: A Molecular Approach
  • 103. Enzymatic Hydrolysis of Sucrose Tro, Chemistry: A Molecular Approach
  • 104. Chapter 13 Chemical Kinetics 2008, Prentice Hall Chemistry: A Molecular Approach , 1 st Ed. Nivaldo Tro Roy Kennedy Massachusetts Bay Community College Wellesley Hills, MA