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胶体纳米晶到强吸收钙钛矿的能量传递。

Energy transfer from colloidal nanocrystals to strongly absorbing perovskites.

机构信息

Department of Material Science & Engineering, The University of Texas at Dallas, Richardson, TX 75080, USA.

出版信息

Nanoscale. 2017 Jun 29;9(25):8695-8702. doi: 10.1039/c7nr02234d.

Abstract

Integration of colloidal nanocrystal quantum dots (NQDs) with strongly absorbing semiconductors offers the possibility of developing optoelectronic and photonic devices with new functionalities. We examine the process of energy transfer (ET) from photoactive CdSe/ZnS core/shell NQDs into lead-halide perovskite polycrystalline films as a function of distance from the perovskite surface using time-resolved photoluminescence (TRPL) spectroscopy. We demonstrate near-field electromagnetic coupling between vastly dissimilar excitation in two materials that can reach an efficiency of 99% at room temperature. Our experimental results, combined with electrodynamics modeling, reveal the leading role of non-radiative ET at close distances, augmented by the waveguide emission coupling and light reabsorption at separations >10 nm. These results open the way to combining materials with different dimensionalities to achieve novel nanoscale architectures with improved photovoltaic and light emitting functionalities.

摘要

胶体纳米晶量子点(NQDs)与强吸收半导体的集成提供了开发具有新功能的光电和光子器件的可能性。我们使用时间分辨光致发光(TRPL)光谱研究了光活性 CdSe/ZnS 核/壳 NQD 中的能量转移(ET)过程,该过程随距离钙钛矿表面的距离而变化。我们证明了两种材料之间在很大程度上不同的激发之间的近场电磁耦合可以在室温下达到 99%的效率。我们的实验结果结合电动力学模型揭示了近距离非辐射 ET 的主导作用,通过波导发射耦合和分离> 10nm 时的光再吸收得到增强。这些结果为结合具有不同维度的材料以实现具有改进的光伏和发光功能的新型纳米结构开辟了道路。

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