材料科学
电致发光
甲脒
光电子学
激子
光致发光
二极管
量子效率
发光二极管
钝化
表面粗糙度
载流子
整改
表面状态
价(化学)
表面电荷
准分子
配体(生物化学)
油胺
有机发光二极管
表面光洁度
热的
纳米晶
作者
Lung-Chien Chen,Kuan-Yu Ke,Robin Khosla,Chenfeng Li,Tai-Chen Kuo,Chong-Yi Li,Sih‐An Chen,Zong‐Liang Tseng
标识
DOI:10.1142/s0217979226400291
摘要
Two-dimensional (2-D) formamidinium lead bromide (FAPbBr[Formula: see text] nanosheets (NSs) have great potential for pure green light-emitting diodes (LEDs) because of their high exciton binding energy, narrow emission bandwidth, and good carrier transport properties. However, their device efficiency is still limited by surface defect-induced nonradiative recombination and the charge transport barrier caused by insulating long-chain ligands. In this study, these problems were improved by combining thermal control and surface ligand engineering. By optimizing the hot-injection temperature to [Formula: see text]C, high-quality FAPbBr 3 NSs with lower surface roughness were obtained. In addition, didodecyldimethylammonium bromide (DDAB) was introduced to replace the native long-chain insulating ligands. Time-resolved photoluminescence (TRPL) results show that the optimized 0.2[Formula: see text]mmol DDAB treatment can effectively passivate surface defects and extend the average carrier lifetime to 28.03[Formula: see text]ns. The DDAB treatment also shifts the valence band of FAPbBr 3 NSs upward by 0.3[Formula: see text]eV, leading to better band alignment and enhanced charge injection. As a result, LEDs based on DDAB-treated FAPbBr 3 NSs show an electroluminescence (EL) peak at 523[Formula: see text]nm, a maximum external quantum efficiency (EQE) of 9.76%, which is about 30% higher than that of the untreated device, and a maximum luminance of 13,989[Formula: see text]cd/m 2 , about 80% higher than that of the untreated device.
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