Accelerated discovery of cost-effective photoabsorber materials for near-infrared (λ=1600 nm) photodetector applications

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Zhao, Wayne, Yang, Ruo Xi, Kaplan, Aaron D., Persson, Kristin A.
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866913804495880192
author Zhao, Wayne
Yang, Ruo Xi
Kaplan, Aaron D.
Persson, Kristin A.
author_facet Zhao, Wayne
Yang, Ruo Xi
Kaplan, Aaron D.
Persson, Kristin A.
contents Current infrared sensing devices are based on costly materials with relatively few viable alternatives known. To identify promising candidate materials for infrared photodetection, we have developed a high-throughput screening methodology based on high-accuracy r$^2$SCAN and HSE calculations in density functional theory. Using this method, we identify ten already synthesized materials between the inverse perovskite family, barium silver pnictide family, the alkaline pnictide family, and ZnSnAs$_2$ as top candidates. Among these, ZnSnAs$_2$ emerges as the most promising candidate due to its experimentally verified band gap of 0.74 eV at 0 K, and its cost-effective synthesis through Bridgman growth. BaAgP also shows potential with an HSE-calculated band gap of 0.64 eV, although further experimental validation is required. Lastly, we discover an additional material, Ca$_3$BiP, which has not been previously synthesized, but exhibits a promising optical spectra and a band gap of 0.56 eV. The method applied in this work is sufficiently general to screen wider bandgap materials in high-throughput and now extended to narrow-band gap materials.
format Preprint
id arxiv_https___arxiv_org_abs_2504_16317
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Accelerated discovery of cost-effective photoabsorber materials for near-infrared (λ=1600 nm) photodetector applications
Zhao, Wayne
Yang, Ruo Xi
Kaplan, Aaron D.
Persson, Kristin A.
Materials Science
Optics
Current infrared sensing devices are based on costly materials with relatively few viable alternatives known. To identify promising candidate materials for infrared photodetection, we have developed a high-throughput screening methodology based on high-accuracy r$^2$SCAN and HSE calculations in density functional theory. Using this method, we identify ten already synthesized materials between the inverse perovskite family, barium silver pnictide family, the alkaline pnictide family, and ZnSnAs$_2$ as top candidates. Among these, ZnSnAs$_2$ emerges as the most promising candidate due to its experimentally verified band gap of 0.74 eV at 0 K, and its cost-effective synthesis through Bridgman growth. BaAgP also shows potential with an HSE-calculated band gap of 0.64 eV, although further experimental validation is required. Lastly, we discover an additional material, Ca$_3$BiP, which has not been previously synthesized, but exhibits a promising optical spectra and a band gap of 0.56 eV. The method applied in this work is sufficiently general to screen wider bandgap materials in high-throughput and now extended to narrow-band gap materials.
title Accelerated discovery of cost-effective photoabsorber materials for near-infrared (λ=1600 nm) photodetector applications
topic Materials Science
Optics
url https://arxiv.org/abs/2504.16317