English

Native point defects in HgCdTe infrared detector material: Identifying deep centers from first principles

Materials Science 2024-03-14 v2 Applied Physics Computational Physics

Abstract

We investigate the native point defects in the long-wavelength infrared (LWIR) detector material Hg0.75_{0.75}Cd0.25_{0.25}Te using a dielectric-dependent hybrid density functional combined with spin-orbit coupling. Characterizing these point defects is essential as they are responsible for intrinsic doping and nonradiative recombination centers in the detector material. The dielectric-dependent hybrid functional allows for an accurate description of the band gap (EgE_g) for Hg1x_{1-x}Cdx_{x}Te (MCT) over the entire compositional range, a level of accuracy challenging with standard hybrid functionals. Our comprehensive examination of the native point defects confirms that cation vacancies VHg(Cd)V_\text{Hg(Cd)} are the primary sources of pp-type conductivity in the LWIR material given their low defect formation energies and the presence of a shallow acceptor level (-/0) near the valence-band maximum (VBM). In addition to the shallow acceptor level, the cation vacancies exhibit a deep charge transition level (2-/-) situated near the midgap, characteristic of nonradiative recombination centers. Our results indicate that Hg interstitial could also be a deep center in the LWIR MCT through a metastable configuration under the Hg-rich growth conditions. While an isolated Te antisite does not show deep levels, the formation of VHgV_\text{Hg}-TeHg_\text{Hg} defect complex introduces a deep acceptor level within the band gap.

Keywords

Cite

@article{arxiv.2311.05283,
  title  = {Native point defects in HgCdTe infrared detector material: Identifying deep centers from first principles},
  author = {Wei Chen and Gian-Marco Rignanese and Jifeng Liu and Geoffroy Hautier},
  journal= {arXiv preprint arXiv:2311.05283},
  year   = {2024}
}

Comments

12 pages, 7 figures

R2 v1 2026-06-28T13:16:02.067Z