Zhou Wei, Yu Yang, Han Peigeng, Li Cheng, Wu Tong, Ding Zhiling, Liu Runze, Zhang Ruiling, Luo Cheng, Li Hui, Zhao Kun, Han Keli, Lu Ruifeng
Institute of Ultrafast Optical Physics, Department of Applied Physics and MIIT Key Laboratory of Semiconductor Microstructure and Quantum Sensing, Nanjing University of Science and Technology, Nanjing, 210094, P. R. China.
Institute of Molecular Sciences and Engineering, Institute of Frontier and Interdisciplinary Science, Shandong University, Qingdao, 266237, P. R. China.
Adv Mater. 2024 Jan;36(2):e2302140. doi: 10.1002/adma.202302140. Epub 2023 Oct 18.
Metal halide nanocrystals (NCs) with high photoluminescence quantum yield (PLQY) are desirable for lighting, display, and X-ray detection. Herein, the novel lanthanide-based halide NCs are committed to designing and optimizing the optical and scintillating properties, so as to unravel the PL origin, exciton dynamics, and optoelectronic applications. Sb-doped zero-dimensional (0D) Cs TbCl NCs exhibit a green emission with a narrow full width of half maximum of 8.6 nm, and the best PLQY of 48.1% is about three times higher than that of undoped NCs. Experiments and theoretical calculations indicate that 0D crystalline and electronic structures make the exciton highly localized on [TbCl ] octahedron, which boosts the Cl -Tb charge transfer process, thus resulting in bright Tb emission. More importantly, the introduction of Sb not only facilitates the photon absorption transition, but also builds an effective thermally boosting energy transfer channel assisted by [SbCl ] -induced self-trapped state, which is responsible for the PL enhancement. The high luminescence efficiency and negligible self-absorption of the Cs TbCl : Sb nanoscintillator enable a more sensitive X-ray detection response compared with undoped sample. The study opens a new perspective to deeply understand the excited state dynamics of metal halide NCs, which helps to design high-performance luminescent lanthanide-based nanomaterials.
具有高光致发光量子产率(PLQY)的金属卤化物纳米晶体(NCs)在照明、显示和X射线检测方面具有应用前景。在此,新型镧系卤化物NCs致力于设计和优化其光学和闪烁性能,以揭示其PL起源、激子动力学和光电应用。Sb掺杂的零维(0D)Cs TbCl NCs呈现出绿色发射,半高宽窄至8.6nm,最佳PLQY为48.1%,约为未掺杂NCs的三倍。实验和理论计算表明,0D晶体和电子结构使激子高度定域在[TbCl ]八面体上,这促进了Cl -Tb电荷转移过程,从而产生明亮的Tb发射。更重要的是,Sb的引入不仅促进了光子吸收跃迁,还通过[SbCl ]诱导的自陷态建立了有效的热增强能量转移通道,这是PL增强的原因。与未掺杂样品相比,Cs TbCl : Sb纳米闪烁体的高发光效率和可忽略的自吸收使其具有更灵敏的X射线检测响应。该研究为深入理解金属卤化物NCs的激发态动力学开辟了新视角,有助于设计高性能的基于镧系的发光纳米材料。