材料科学
光致发光
卤化物
发光
光电子学
相变
激子
二极管
密度泛函理论
显色指数
量子产额
Crystal(编程语言)
晶体结构
化学物理
相(物质)
发光二极管
钙钛矿(结构)
半导体
单晶
光发射
纳米技术
量子点
可见光谱
原子电子跃迁
工作(物理)
自发辐射
作者
Tao Song,Taiyu Li,Yaping Zhang,Xiaoting Zhang,Rongmin Wang,Qiang Wang,Pengfei Song
标识
DOI:10.1021/acsami.5c24463
摘要
Elucidating the structural phase transitions and luminescence mechanisms of metal halides is a challenging, yet critical endeavor. Their full potential is in developing materials with tailorable optoelectronic properties and multifunctional applications. In this study, we synthesized two distinct lead-free double perovskites Cs 2 NaInCl 6 and Cs 3.4 Na 0.6 InCl 7 using identical reactants under different synthesis conditions. We found that the phase transition between these two perovskites can be precisely controlled by adjusting the N, N -Dimethylformamide (DMF) concentration in the solvent. The optical properties and emission mechanisms of these materials were systematically elucidated through a combination of experimental analysis and density functional theory (DFT) calculations. The Sb 3+ -doped perovskites exhibit remarkable photoluminescence quantum yield (PLQY), with the yellow green-emitting Cs 3.4 Na 0.6 InCl 7 reaching 90.1% and the blue-emitting Cs 2 NaInCl 6 achieving an impressive 90.3%. By introducing more water solvents, we successfully synthesized orange-emitting crystal Cs 2 InCl 5 ·H 2 O:Sb 3+ . Finally, we fabricated white-light-emitting diodes (WLEDs) by integrating the synthesized blue-, yellow-green-, and orange-emitting crystals with a UV chip. The resulting device demonstrated excellent white light performance, exhibiting a high color rendering index (Ra) of 92.2, a correlated color temperature (CCT) of 5119 K, and CIE coordinates of (0.34, 0.38). This work provides new insights into the luminescence mechanisms of halide perovskites and demonstrates that crystal structure engineering is a feasible and promising approach for tuning their optical properties.
科研通智能强力驱动
Strongly Powered by AbleSci AI