光致发光
钙钛矿(结构)
量子点
化学物理
激子
材料科学
钝化
分子物理学
配体(生物化学)
密度泛函理论
纳米晶
表面状态
光电子学
荧光
强度(物理)
纳米颗粒
解吸
曲面(拓扑)
纳米技术
纳米
存水弯(水管)
量子
纳秒
理论(学习稳定性)
量子产额
重组
化学
作者
Hawi N. Nyiera,Xin Yang,Yejing Liu,Seungjun Cha,Ou Chen,Guoxiang Hu,Kun Chen,Jing Zhao (21160)
标识
DOI:10.1021/acsami.6c03594
摘要
Perovskite quantum dots (PQDs) exhibit pronounced photoluminescence (PL) intensity and lifetime fluctuations at the single-particle level that arise from competition between radiative and trap-mediated nonradiative exciton recombination pathways. Although surface treatments are widely employed to mitigate these fluctuations, the mechanistic relationship among surface chemistry, trap state energetics, and exciton dynamics remains poorly understood. Here, we present an integrative and comparative study that correlates PL intensity fluctuation with fluorescence lifetime-intensity distribution (FLID) patterns in single CsPbBr 3 QDs. This work analyzes PQDs capped with conventional ligands, a zwitterionic ligand, or treated postsynthetically with excess bromide. Three distinct PL intensity fluctuation behaviors, blinking, flickering, and minimal fluctuations, were observed, with relative populations that strongly depend on surface passivation. FLID analysis reveals that these behaviors originate from nonradiative recombination pathways involving trap states of various energies. By correlating the observed FLID patterns with density functional theory calculations, we demonstrate how ligand binding strength and binding mode influence the accessibility of specific surface defect states. Strong, multidentate binding of the zwitterionic ligand enhances surface stability and suppresses both blinking and flickering by limiting dynamic ligand desorption and trap formation. In contrast, excess bromide treatment selectively alters shallow trap-mediated pathways, modifying PL fluctuation characteristics. These results provide an atomistic framework for understanding how surface chemistry and trap states evolve under different passivation methods and offer insight into strategies for improving the stability and optical performance of PQDs.
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