Dipartimento di Scienza dei Materiali, Università degli Studi di Milano-Bicocca, via R. Cozzi 55, 20125Milano, Italy.
Department of Chemistry, Ghent University, 9000Ghent, Belgium.
Nano Lett. 2022 Nov 23;22(22):8900-8907. doi: 10.1021/acs.nanolett.2c02975. Epub 2022 Nov 4.
Colloidal CdTe nanoplatelets featuring a large absorption coefficient and ultrafast tunable luminescence coupled with heavy-metal-based composition present themselves as highly desirable candidates for radiation detection technologies. Historically, however, these nanoplatelets have suffered from poor emission efficiency, hindering progress in exploring their technological potential. Here, we report the synthesis of CdTe nanoplatelets possessing a record emission efficiency of 9%. This enables us to investigate their fundamental photophysics using ultrafast transient absorption, temperature-controlled photoluminescence, and radioluminescence measurements, elucidating the origins of exciton- and defect-related phenomena under both optical and ionizing excitation. For the first time in CdTe nanoplatelets, we report the cumulative effects of a giant oscillator strength transition and exciton fine structure. Simultaneously, thermally stimulated luminescence measurements reveal the presence of both shallow and deep trap states and allow us to disclose the trapping and detrapping dynamics and their influence on the scintillation properties.
具有大吸收系数和超快可调谐发光的胶体 CdTe 纳米板,加上重金属基组成,使其成为辐射探测技术的理想候选材料。然而,从历史上看,这些纳米板的发射效率很差,阻碍了探索其技术潜力的进展。在这里,我们报告了具有创纪录的 9%发射效率的 CdTe 纳米板的合成。这使我们能够使用超快瞬态吸收、温度控制光致发光和辐射发光测量来研究它们的基本光物理,阐明在光学和电离激发下激子和缺陷相关现象的起源。我们首次在 CdTe 纳米板中报告了巨大的振子强度跃迁和激子精细结构的累积效应。同时,热激励发光测量揭示了浅陷和深陷阱态的存在,并使我们能够揭示俘获和去俘获动力学及其对闪烁性能的影响。