异质结
钙钛矿(结构)
材料科学
发光二极管
卤化物
光电子学
二极管
载流子
Crystal(编程语言)
纳米技术
无机化学
结晶学
计算机科学
化学
程序设计语言
作者
Alexandra J. Ramadan,Woo Hyeon Jeong,Robert D. J. Oliver,Junke Jiang,Akash Dasgupta,Zhongcheng Yuan,Joel A. Smith,Jae Eun Lee,Silvia G. Motti,Olivia Gough,Zhenlong Li,Laura M. Herz,Michael B. Johnston,Hyosung Choi,Jacky Even,Claudine Katan,Bo Ram Lee,Henry J. Snaith
标识
DOI:10.1002/adfm.202309653
摘要
Abstract Two dimensional/three‐dimensional (2D/3D) metal halide perovskite heterostructures have attracted great interest in photovoltaic and light‐emitting diode (LEDs) applications. In both, their implementation results in an improvement in device efficiency yet the understanding of these heterostructures remains incomplete. In this work the role of organic cations, essential for the formation of 2D perovskite structures is unraveled, in a range of metal halide perovskite heterostructures. These heterostructures are used to fabricate efficient green perovskite LEDs and a strong dependence between cation content and device performance is shown. The crystal structure, charge‐carrier transport and dynamics, and the electronic structure of these heterostructures are studied and it is shown that the presence of crystalline 2D perovskite inhibits electron injection and ultimately lowers device performance. This work highlights the importance of optimizing the composition of these heterostructures in ensuring optimal device performance across all parameters and suggests that developing routes to inject charge‐carriers directly into 2D perovskite structures will be important in ensuring the continued development of perovskite LEDs based on these heterostructures.
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