光致发光
激子
量子产额
钙钛矿(结构)
卤化物
材料科学
产量(工程)
光电子学
量子阱
量子
化学物理
纳米技术
凝聚态物理
化学
结晶学
光学
物理
无机化学
荧光
量子力学
冶金
激光器
作者
Songhao Guo,Willa Mihalyi‐Koch,Yuhong Mao,Xinyu Li,Kejun Bu,Huilong Hong,Matthew P. Hautzinger,Hui Luo,Dong Wang,Jiazhen Gu,Yifan Zhang,Dongzhou Zhang,Qingyang Hu,Yang Ding,Wenge Yang,Yongping Fu,Song Jin,Xujie Lü
标识
DOI:10.1038/s41467-024-47225-4
摘要
Abstract Designing two-dimensional halide perovskites for high-performance optoelectronic applications requires deep understanding of the structure-property relationship that governs their excitonic behaviors. However, a design framework that considers both intra and interlayer structures modified by the A-site and spacer cations, respectively, has not been developed. Here, we use pressure to synergistically tune the intra and interlayer structures and uncover the structural modulations that result in improved optoelectronic performance. Under applied pressure, (BA) 2 (GA)Pb 2 I 7 exhibits a 72-fold boost of photoluminescence and 10-fold increase of photoconductivity. Based on the observed structural change, we introduce a structural descriptor χ that describes both the intra and interlayer characteristics and establish a general quantitative relationship between χ and photoluminescence quantum yield: smaller χ correlates with minimized trapped excitons and more efficient emission from free excitons. Building on this principle, we design a perovskite (CMA) 2 (FA)Pb 2 I 7 that exhibits a small χ and an impressive photoluminescence quantum yield of 59.3%.
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