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Fermi Level and Potential An evaluation with the Sommerfeld expansion
‡  E. Fermi,  Rend. Lincei   3 , 145-9 (1926) P.A.M. Dirac,  Proceedings of the Royal Society, Series A   112 , 661-77 (1926) The electron spin quantum number is represented by a half-integer ( ± 1/2),  for this reason electrons are part of a bigger family of particles known as fermions ‡  = I- ½ >  =  I + ½ >
+ + - - Ψ ( α )  = - Ψ ( β ) Energy level Ψ q Unlike bosons, the antisymmetric nature of fermions wavefunctions prevents them from occupying the same quantum states Ψ (q) =  Ψ (q+L) L ∞ ∞
The Fermi distribution μ  is linked to the Helmoltz free energy F F=U-TS and calculated over the  density of states
The Fermi sea of electrons T = 0 K METALS
E F The Fermi sea of electrons T = 0 K METALS
E F The Fermi sea of electrons T = 0 K METALS
E F The Fermi sea of electrons T = 0 K METALS
E F The Fermi sea of electrons T = 0 K E> μ ; f(E)=0 E < μ ; f(E)=1 E= μ ; f(E)=undefined METALS
E F The Fermi sea of electrons f E T = 0 K μ =E F f E 1.0 E> μ ; f(E)=0 E < μ ; f(E)=1 E= μ ; f(E)=undefined METALS
E F The Fermi sea of electrons f E E F Δ E≈k B T 1.0 T = 0.01 K METALS
E F The Fermi sea of electrons f E μ 1.0 METALS
E F The Fermi sea of electrons f E μ 1.0 Holes Electrons above E F METALS
Metals at ordinary temperatures are electronically  highly degenerate  i.e.  kT<<E F
kT Integration by parts
1 Taylor series:
Taylor series:
E μ =E F f E 1.0 n
 
 
≈
0
1.0 0.5 μ 4 μ 3 μ 1 ≈ E F μ 2 T 4 > T 3 > T 2 >T 1 >0 Classical distribution  ->

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The Fermi Level 1

  • 1. Fermi Level and Potential An evaluation with the Sommerfeld expansion
  • 2. ‡ E. Fermi, Rend. Lincei 3 , 145-9 (1926) P.A.M. Dirac, Proceedings of the Royal Society, Series A 112 , 661-77 (1926) The electron spin quantum number is represented by a half-integer ( ± 1/2), for this reason electrons are part of a bigger family of particles known as fermions ‡  = I- ½ >  =  I + ½ >
  • 3. + + - - Ψ ( α ) = - Ψ ( β ) Energy level Ψ q Unlike bosons, the antisymmetric nature of fermions wavefunctions prevents them from occupying the same quantum states Ψ (q) = Ψ (q+L) L ∞ ∞
  • 4. The Fermi distribution μ is linked to the Helmoltz free energy F F=U-TS and calculated over the density of states
  • 5. The Fermi sea of electrons T = 0 K METALS
  • 6. E F The Fermi sea of electrons T = 0 K METALS
  • 7. E F The Fermi sea of electrons T = 0 K METALS
  • 8. E F The Fermi sea of electrons T = 0 K METALS
  • 9. E F The Fermi sea of electrons T = 0 K E> μ ; f(E)=0 E < μ ; f(E)=1 E= μ ; f(E)=undefined METALS
  • 10. E F The Fermi sea of electrons f E T = 0 K μ =E F f E 1.0 E> μ ; f(E)=0 E < μ ; f(E)=1 E= μ ; f(E)=undefined METALS
  • 11. E F The Fermi sea of electrons f E E F Δ E≈k B T 1.0 T = 0.01 K METALS
  • 12. E F The Fermi sea of electrons f E μ 1.0 METALS
  • 13. E F The Fermi sea of electrons f E μ 1.0 Holes Electrons above E F METALS
  • 14. Metals at ordinary temperatures are electronically highly degenerate i.e. kT<<E F
  • 18. E μ =E F f E 1.0 n
  • 19.  
  • 20.  
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  • 22. 0
  • 23. 1.0 0.5 μ 4 μ 3 μ 1 ≈ E F μ 2 T 4 > T 3 > T 2 >T 1 >0 Classical distribution ->