量子点
钙钛矿(结构)
卤化物
激子
非谐性
材料科学
光谱学
化学物理
Crystal(编程语言)
发射光谱
光电子学
分子物理学
荧光
航程(航空)
光致发光
波函数
纳米颗粒
凝聚态物理
单晶
纳米技术
分子动力学
量子
电子结构
发光
作者
Leon G. Feld,Simon C. Boehme,Sebastian Sabisch,Nadav Frenkel,Nuri Yazdani,Viktoriia Morad,Chenglian Zhu,Taehee Kim,Stefano Canossa,Mariia Svyrydenko,Rui Tao,Maryna I. Bodnarchuk,Gur Lubin,Miri Kazes,Vanessa Wood,Dan Oron,Gabriele Rainò,Maksym V. Kovalenko
标识
DOI:10.1038/s41467-026-68607-w
摘要
In lead halide perovskites (APbX3), the effect of the A-site cation on optical and electronic properties has initially been thought to be marginal. Yet, evidence of beneficial effects on solar-cell performance and light emission is accumulating. Here, we report that the A-site cation in soft APbBr3 colloidal quantum dots (QDs) controls the phonon-induced localization of the exciton wavefunction. Insights from ab-initio molecular-dynamics simulations and single-particle fluorescence spectroscopy demonstrate that anharmonic crystal vibrations and the resulting disorder act as an additional confinement potential. Avoiding the trade-off between single-photon purity and optical stability faced by downsizing conventional QDs into the strong confinement regime, dynamical phonon-induced confinement in large organic-inorganic perovskite QDs enables bright (106 photons/s), stable ( > 1 h), and pure (> 95%) single-photon emission tunable across a wide spectral range (495-745 nm). Strong electron-phonon interaction in soft perovskite QDs provides an unconventional route toward developing scalable room-temperature quantum-light sources.
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