Tuning Nonradiative Recombination via Cation Substitution in Inorganic Antiperovskite Nitrides
arXiv:2509.04611 · doi:10.1103/lky4-k5yp
Abstract
Inorganic antiperovskite nitrides have recently emerged as promising materials for photovoltaic applications, yet their nonradiative recombination dynamics remain largely unexplored. Here, we examine the influence of X-site cation substitution on the nonradiative electron-hole recombination in (X = Ca, Sr, and Ba). Ca- and Sr-based compounds adopt a cubic phase, whereas Ba stabilizes in a hexagonal structure, introducing pronounced symmetry-driven effects. To separate symmetry effects from cation chemistry, we also examine the hexagonal polymorph of SrNSb (). Substituting Ca with Sr narrows the band gap, suppresses octahedral and band-edge fluctuations, reduces nonadiabatic (NA) coupling by 54, and extends carrier lifetimes by a factor of 2.5. In \mathrm{Sr_3NSb_{hexa}}, the combination of larger band gap and enhanced band gap fluctuationsleading to faster dephasingfurther slows down recombination by 41. In contrast, in \mathrm{Ba_3NSb_{hexa}}, enhanced NA coupling accelerates recombination relative to . Overall, recombination lifetimes are dictated by the interplay between band gap, NA coupling strength, and decoherence time, with \mathrm{Sr_3NSb_{hexa}} exhibiting the longest lifetime. These findings highlight the coupled influence of cation chemistry and crystal symmetry in tailoring carrier dynamics for high-performance antiperovskite-based optoelectronics materials.
8 pages, 5 figures
References in corpus (3)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Simultaneous band gap narrowing and carrier lifetime prolongation of organic-inorganic trihalide perovskites
- Structure-Composition-Property Relationships in Antiperovskite Nitrides: Guiding a Rational Alloy Design