Predicted band-gap pressure coefficients of all diamond and zinc-blende semiconductors: Chemical trends

Su-Huai Wei and Alex Zunger
Phys. Rev. B 60, 5404 – Published 15 August 1999
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Abstract

We have studied systematically the chemical trends of the band-gap pressure coefficients of all group IV, III-V, and II-VI semiconductors using first-principles band-structure method. We have also calculated the individual “absolute” deformation potentials of the valence-band maximum (VBM) and conduction-band minimum (CBM). We find that (1) the volume deformation potentials of the Γ6c CBM are usually large and always negative, while (2) the volume deformation potentials of the Γ8v VBM state are usually small and negative for compounds containing occupied valence d state but positive for compounds without occupied valence d orbitals. Regarding the chemical trends of the band-gap pressure coefficients, we find that (3) apΓΓ decreases as the ionicity increases (e.g., from GeGaAsZnSe), (4) apΓΓ increases significantly as anion atomic number increases (e.g., from GaNGaPGaAsGaSb), (5) apΓΓ decreases slightly as cation atomic number increases (e.g., from AlAsGaAsInAs), (6) the variation of apΓL are relatively small and follow similar trends as apΓΓ, and (7) the magnitude of apΓX are small and usually negative, but are sometimes slightly positive for compounds containing first-row elements. Our calculated chemical trends are explained in terms of the energy levels of the atomic valence orbitals and coupling between these orbital. In light of the above, we suggest that “empirical rule” of the pressure coefficients should be modified.

  • Received 25 February 1999

DOI:https://doi.org/10.1103/PhysRevB.60.5404

©1999 American Physical Society

Authors & Affiliations

Su-Huai Wei and Alex Zunger

  • National Renewable Energy Laboratory, Golden, Colorado 80401

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Issue

Vol. 60, Iss. 8 — 15 August 1999

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