BAs and boride III-V alloys
arXiv:cond-mat/0009063 · doi:10.1103/PhysRevB.62.13522
Abstract
Boron arsenide, the typically-ignored member of the III-V arsenide series BAs-AlAs-GaAs-InAs is found to resemble silicon electronically: its Gamma conduction band minimum is p-like (Gamma_15), not s-like (Gamma_1c), it has an X_1c-like indirect band gap, and its bond charge is distributed almost equally on the two atoms in the unit cell, exhibiting nearly perfect covalency. The reasons for these are tracked down to the anomalously low atomic p orbital energy in the boron and to the unusually strong s-s repulsion in BAs relative to most other III-V compounds. We find unexpected valence band offsets of BAs with respect to GaAs and AlAs. The valence band maximum (VBM) of BAs is significantly higher than that of AlAs, despite the much smaller bond length of BAs, and the VBM of GaAs is only slightly higher than in BAs. These effects result from the unusually strong mixing of the cation and anion states at the VBM. For the BAs-GaAs alloys, we find (i) a relatively small (~3.5 eV) and composition-independent band gap bowing. This means that while addition of small amounts of nitrogen to GaAs lowers the gap, addition of small amounts of boron to GaAs raises the gap (ii) boron ``semi-localized'' states in the conduction band (similar to those in GaN-GaAs alloys), and (iii) bulk mixing enthalpies which are smaller than in GaN-GaAs alloys. The unique features of boride III-V alloys offer new opportunities in band gap engineering.
18 pages, 14 figures, 6 tables, 61 references. Accepted for publication in Phys. Rev. B. Scheduled to appear Oct. 15 2000
Cited by in corpus (10)
- Pressure effects on the structural and electronic properties of ABX4 scintillating crystals
- Basic Physical Properties of Cubic Boron Arsenide
- Band structure and carrier effective masses of boron arsenide: effects of quasiparticle and spin-orbit coupling corrections
- Point defects and dopants of boron arsenide from first-principles calculations: donor compensation and doping asymmetry
- Optical properties of cubic boron arsenide
- The electronic band structure and optical properties of boron arsenide
- The direct and indirect optical absorptions of cubic BAs and BSb
- Photoluminescence mapping and time-domain thermo-photoluminescence for rapid imaging and measurement of thermal conductivity of boron arsenide
- Finite temperature optoelectronic properties of BAs from first principles
- Impacts of Point Defects on Shallow Doping in Cubic Boron Arsenide: A First Principles Study