4.8 Article

Accurate Band Gaps for Semiconductors from Density Functional Theory

Journal

JOURNAL OF PHYSICAL CHEMISTRY LETTERS
Volume 2, Issue 3, Pages 212-217

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jz101565j

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Funding

  1. Dow-Solar, Midland, MI

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An essential issue in developing semiconductor devices for photo-voltaics and thermoelectrics is to design materials with appropriate band gaps plus the proper positioning of dopant levels relative to the bands. Local density (LDA) and generalized gradient approximation (GCA) density functionals generally underestimate band gaps for semiconductors and sometimes incorrectly predict a metal. Hybrid functionals that include some exact Hartree-Fock exchange are known to be better. We show here for CuInSe, the parent compound of the promising CISS CU(InxGa1-x)Se-2 solar devices, that LDA and GGA obtain gaps of 0.0-0.01 eV (experiment is 1.04 eV), while the historically first global hybrid functional, B3PW91, is suprisingly better than B3LYP with band gaps of 1.07 and 0.95 eV, respectively. Futhermore, we show that for 27 related binary and ternary semiconductors, B3PW91 predicts gaps with a mean average deviation (MAD) of only 0.09 eV, which is substantially better than all modern hybrid functionals.

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