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Long-lasting photoluminescence quantum yield of cesium lead halide perovskite-type quantum dots

机译:铯铅卤化铯钙钛矿型量子点的长持久的光致发光量子产率

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摘要

Cesium lead halide perovskite (CsPbX3, X = Cl, Br, I) quantum dots (QDs) and their partly Mn2+-substituted QDs (CsPb1-xMnxX3) attract considerable attention owing to their unique photoluminescence (PL) efficiencies. The two types of QDs, having different PL decay dynamics, needed to be further investigated in a form of aggregates to understand their solid-state-induced exciton dynamics in conjunction with their behaviors upon degradation to achieve practical applications of those promising QDs. However, thus far, these QDs have not been sufficiently investigated to obtain deep insights related to the long-term stability of their PL properties as aggregated solid-states. Therefore, in this study, we comparatively examined CsPbX3- and CsPb1-xMnxX3-type QDs stocked for 50 d under dark ambient conditions by using excitation wavelength-dependent PL quantum yield and time-resolved PL spectroscopy. These investigations were performed with powder samples in addition to solutions to determine the influence of the inter-QD interaction of the aged QD aggregates on their radiative decays. It turns out that the Mn2+-substituted QDs exhibited long-lasting PL quantum efficiencies, while the unsubstituted CsPbX3-type QDs exhibited a drastic reduction of their PL efficiencies. And the obtained PL traces were clearly sensitive to the sample status. This is discussed with the possible interaction depending on the size and distance of the QD aggregates.
机译:铯铅卤化卤化镓钙钛矿(CSPBX3,X = CL,BR,I)量子点(QDS)及其部分MN2 + -substituedQDS(CSPB1-XMNXX3)由于它们独特的光致发光(PL)效率而引起了相当大的关注。具有不同PL衰减动态的两种类型的QDS需要进一步以聚集体的形式研究,以便在降解时结合其行为来了解它们的固态引起的激子动态,以实现有前途QD的那些实际应用。然而,到目前为止,这些QD没有得到充分研究,以获得与其PL性能的长期稳定性相关的深度见解,例如聚集的固态。因此,在本研究中,通过使用激发波长依赖性PL量子产量和时间分辨的PL光谱,在暗环境条件下,在暗环境条件下相比,我们在暗环境条件下进行了储存的CSPBX3和CSPB1-XMNXX3型QDS。除溶液外,这些研究除了溶液外,还针对溶液,以确定老化QD聚集体对其辐射衰减的QD间相互作用的影响。事实证明,MN2 + -substited QD表现出持久的PL量子效率,而未取代的CSPBX3型QD率表现出PL效率的急剧减少。所获得的PL迹线对样本状态显然敏感。这是根据QD聚合的尺寸和距离的可能交互来讨论。

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