Liao Jin-Feng, Zhang Zhipeng, Wang Gang, Zhou Lei, Yi Ningbo, Tang Zikang, Xing Guichuan
Joint Key Laboratory of the Ministry of Education, Institute of Applied Physics and Materials Engineering, University of Macau, Macau, 999078, P. R. China.
School of Chemistry and Chemical Engineering, Southwest University, Chongqing, 400715, P. R. China.
Angew Chem Int Ed Engl. 2025 Feb 10;64(7):e202419085. doi: 10.1002/anie.202419085. Epub 2024 Nov 9.
Zero-dimensional (0D) structured lead-free metal halides have recently attracted widespread attention due to their high photoluminescence quantum yield (PLQY) and negligible self-absorption, showing enormous potential as optical waveguides towards miniaturized photonic devices. However, due to the great difficulty in growth of rod-like nano/micro-sized morphologies, such applications have been less explored. Herein, a new-type emissive organic-inorganic manganese (II) halide crystal (TPSMnCl, TPS=CHS, triphenylsulfonium) in the form of microrods is synthesized via a facile chloride ion (Cl) induced oriented growth method. Due to a combination of attractive features such as a high PLQY of 86 %, negligible self-absorption and smooth crystal surface, TPSMnCl microrods are well suited for use in optical waveguide with an ultra-low optical loss coefficient of 1.20 ⋅ 10 dB μm, superior to that of most organic-inorganic metal halide hybrids, organic materials, polymers and metal nanoclusters to the best of our knowledge. Importantly, TPSMnCl microrods can further work as dual-mode optical waveguides, combining active and passive light transmission functionalities in one single crystal. In addition, TPSMnCl microrods also display remarkable performance in lighting and anti-counterfeiting due to their distinct optical properties and commendable stability.
零维(0D)结构的无铅金属卤化物因其高光致发光量子产率(PLQY)和可忽略不计的自吸收特性,近来受到广泛关注,在微型光子器件的光波导应用方面展现出巨大潜力。然而,由于生长棒状纳米/微米尺寸形态极具难度,此类应用的探索较少。在此,通过一种简便的氯离子(Cl)诱导取向生长法,合成了一种新型的微棒状发光有机-无机锰(II)卤化物晶体(TPSMnCl,TPS = CHS,三苯基锍)。由于具备如86%的高PLQY、可忽略不计的自吸收以及光滑的晶体表面等吸引人的特性组合,TPSMnCl微棒非常适合用于光波导,其具有1.20⋅10 dB μm的超低光损耗系数,据我们所知优于大多数有机-无机金属卤化物杂化物、有机材料、聚合物和金属纳米团簇。重要的是,TPSMnCl微棒可进一步用作双模光波导,在单个晶体中兼具主动和被动光传输功能。此外,TPSMnCl微棒因其独特的光学性质和良好的稳定性,在照明和防伪方面也表现出卓越性能。