First-principles prediction of structure, energetics, formation enthalpy, elastic constants, polarization, and piezoelectric constants of AlN, GaN, and InN: Comparison of local and gradient-corrected density-functional theory - art. no. 045208

Citation
A. Zoroddu et al., First-principles prediction of structure, energetics, formation enthalpy, elastic constants, polarization, and piezoelectric constants of AlN, GaN, and InN: Comparison of local and gradient-corrected density-functional theory - art. no. 045208, PHYS REV B, 6404(4), 2001, pp. 5208
Citations number
38
Categorie Soggetti
Apllied Physucs/Condensed Matter/Materiales Science
Journal title
PHYSICAL REVIEW B
ISSN journal
01631829 → ACNP
Volume
6404
Issue
4
Year of publication
2001
Database
ISI
SICI code
0163-1829(20010715)6404:4<5208:FPOSEF>2.0.ZU;2-B
Abstract
A number of diverse bulk properties of the zinc-blende and wurtzite III-V n itrides AlN, GaN, and InN, are predicted from first principles within densi ty-functional theory using the plane-wave ultrasoft pseudopotential method, within both the local density approximation (LDA) and generalized gradient approximation (GGA) to the exchange-correlation functional. Besides struct ure and cohesion. we study formation enthalpies (a key ingredient in predic ting defect solubilities and surface stability), spontaneous polarizations and piezoelectric constants (central parameters for nanostructure modeling) , and elastic constants. Our study bears out the relative merits of the two density-functional approaches in describing diverse properties of the III- V nitrides (and of the parent species N-2, Al, Ga, and In). None of the two schemes gives entirely successful results. However, the GGA associated wit h the multiprojector ultrasoft pseudopotential method slightly outperforms the LDA overall as to lattice parameters, cohesive energies. and formation enthalpies of wurtzite nitrides. This is relevant to the study of propertie s such as polarization, vibrational frequencies, elastic constants, nonstoc hiometric substitution, and absorption. A major exception is the formation enthalpy of InN, which is underestimated by the GGA (similar to0 vs -0.2 eV ).