Zhang Yuqing, He Yong, Tang Zhenyu, Yu Wenjin, Zhang Zehao, Chen Zhijian, Xiao Lixin, Shi Jun-Jie, Wang Shufeng, Qu Bo
State Key Laboratory for Artificial Microstructures and Mesoscopic Physics, Department of Physics, Peking University, Beijing, 100871, P. R. China.
Small. 2022 Jun;18(22):e2107161. doi: 10.1002/smll.202107161. Epub 2022 May 8.
All-inorganic lead-free Cs Cu I perovskite-derivant quantum dots (QDs) have attracted tremendous attention due to their nontoxicity and unique optoelectronic properties. However, the traditional hot-injection method requires high temperatures and multiple ligands to confine the growth of QDs. Herein, a strategy is reported to spontaneously synthesize ultrasmall Cs Cu I QDs within metal-organic-frameworks (MOFs) MOF-74 at room temperature (RT) with an average diameter of 4.33 nm. The obtained Cs Cu I QDs exhibit an evident deep-blue emission with Commission Internationale de L'Eclairage coordinates of (0.17, 0.07), owing to the strong quantum confinement effect. Due to the protection of MOF-74, the Cs Cu I QDs demonstrate superior stability, and the photoluminescence quantum yield retains 89% of the initial value after the storage of 1440 h under the environment with relative humidity exceeding 70%. Besides, triplet-triplet annihilation upconversion emission is observed within the composite of Cs Cu I @MOF-74, which brings out apparent temperature-dependent photoluminescence. This study reveals a facile method for fabricating ultrasmall lead-free perovskite-derivant QDs at RT without multiple ligands. Besides, the temperature-dependent photoluminescence of Cs Cu I @MOF-74 may open up a new way to develop the applications of temperature sensors or other related optoelectronic devices.
全无机无铅CsCuI钙钛矿衍生物量子点(QDs)因其无毒和独特的光电特性而备受关注。然而,传统的热注入法需要高温和多种配体来限制量子点的生长。在此,报道了一种在室温(RT)下在金属有机框架(MOF)MOF-74内自发合成超小CsCuI量子点的策略,其平均直径为4.33nm。由于强烈的量子限制效应,所获得的CsCuI量子点呈现出明显的深蓝色发射,国际照明委员会坐标为(0.17,0.07)。由于MOF-74的保护,CsCuI量子点表现出优异的稳定性,在相对湿度超过70%的环境中储存1440小时后,光致发光量子产率保留了初始值的89%。此外,在CsCuI@MOF-74复合材料中观察到三重态-三重态湮灭上转换发射,这带来了明显的温度依赖性光致发光。这项研究揭示了一种在室温下无需多种配体即可制备超小无铅钙钛矿衍生物量子点的简便方法。此外,CsCuI@MOF-74的温度依赖性光致发光可能为开发温度传感器或其他相关光电器件的应用开辟一条新途径。