Electron-phonon interactions and superconductivity in Si, Ge, and Sn
K. J. Chang, Marvin L. Cohen
DOI 10.1103/PhysRevB.34.4552 · Physical Review B
Active bibliographic source — not scientific approval
Bibliographic access preserves source history; it does not approve extracted materials or validate reported claims. Review warnings on each occurrence separately.
Abstract
The pseudopotential-total-energy method is used to calculate the phonon frequency, the electron density of states at the Fermi level, and the electron-phonon coupling constant for the group-IV elements in the metallic β-Sn structure. For these elements, the normal-state behavior is similar to that found in other simple and transition metals; the phonon frequencies, force constants, and electron-phonon matrix elements increase with increasing average electron density. With use of a semiempirical treatment of the electron-phonon coupling calculated for one phonon wave vector, the superconducting transition temperatures at normal and high pressures are examined. The superconducting transition temperature decreases while the magnitude of its pressure coefficient increases in going to heavier elements. This behavior is in good agreement with experiment. For Si and Ge, the superconducting behavior is similar to that of white tin. Because of competition and compensation between the cutoff in the phonon spectrum and the electron-phonon matrix element, the electron-phonon coupling λ’s are similar for the three elements. Hence, the Debye temperature, which is the prefactor of the McMillan equation, dominates in determining the superconducting critical temperatures.
Source-reported materials — not catalogue approval
| Formula | Reported Tc (K) | Pressure (GPa) | Type |
|---|---|---|---|
| Si Archive — visibility unverified Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula. | 8.2 | Pressure not reported | unknown |
| Si Archive — visibility unverified Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula. | — | Pressure not reported | unknown |
| Ge Archive — visibility unverified Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula. | — | Pressure not reported | unknown |
| Sn Archive — visibility unverified Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula. | — | Pressure unresolved | unknown |
Similar papers
Effects of confinement and surface enhancement on superconductivity
similarity 0.93Emma Montevecchi & Joseph O. Indekeu
Source status unknown — claims are unverified
Electron-hole asymmetry and superconductivity
similarity 0.93J. E. Hirsch
Source status unknown — claims are unverified
Dependence of some electromagnetic properties of superconductors on coupling strength
similarity 0.92F. Marsiglio et al.
Source status unknown — claims are unverified
Energy-transport phenomena in single superconducting grains
similarity 0.92M. Frank et al.
Source status unknown — claims are unverified
Decoherence in Superconducting Quantum Bits by Phonon Radiation
similarity 0.92L. B. Ioffe et al.
Source status unknown — claims are unverified
Superconducting Open-Framework Allotrope of Silicon at Ambient Pressure
similarity 0.91Ha-Jun Sung et al.
Source status unknown — claims are unverified