Tuning Nonradiative Recombination via Cation Substitution in Inorganic Antiperovskite Nitrides

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Auteurs principaux: Monga, Sanchi, Bhattacharya, Saswata
Format: Preprint
Publié: 2025
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author Monga, Sanchi
Bhattacharya, Saswata
author_facet Monga, Sanchi
Bhattacharya, Saswata
contents 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 $\mathrm{X_3NSb}$ (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 Sr$_3$NSb ($\mathrm{Sr_3NSb_{hexa}}$). Substituting Ca with Sr narrows the band gap, suppresses octahedral and band-edge fluctuations, reduces nonadiabatic (NA) coupling by $\sim$54$\%$, and extends carrier lifetimes by a factor of 2.5. In \mathrm{Sr_3NSb_{hexa}}, the combination of larger band gap and enhanced band gap fluctuations$-$leading to faster dephasing$-$further slows down recombination by 41$\%$. In contrast, in \mathrm{Ba_3NSb_{hexa}}, enhanced NA coupling accelerates recombination relative to $\mathrm{Sr_3NSb_{hexa}}$. 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.
format Preprint
id arxiv_https___arxiv_org_abs_2509_04611
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Tuning Nonradiative Recombination via Cation Substitution in Inorganic Antiperovskite Nitrides
Monga, Sanchi
Bhattacharya, Saswata
Materials Science
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 $\mathrm{X_3NSb}$ (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 Sr$_3$NSb ($\mathrm{Sr_3NSb_{hexa}}$). Substituting Ca with Sr narrows the band gap, suppresses octahedral and band-edge fluctuations, reduces nonadiabatic (NA) coupling by $\sim$54$\%$, and extends carrier lifetimes by a factor of 2.5. In \mathrm{Sr_3NSb_{hexa}}, the combination of larger band gap and enhanced band gap fluctuations$-$leading to faster dephasing$-$further slows down recombination by 41$\%$. In contrast, in \mathrm{Ba_3NSb_{hexa}}, enhanced NA coupling accelerates recombination relative to $\mathrm{Sr_3NSb_{hexa}}$. 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.
title Tuning Nonradiative Recombination via Cation Substitution in Inorganic Antiperovskite Nitrides
topic Materials Science
url https://arxiv.org/abs/2509.04611