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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Temperature-Dependent Photoluminescence of CdSe-Core CdS/CdZnS/ZnS-Multishell Quantum Dots
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Temperature-Dependent Photoluminescence of CdSe-Core CdS/CdZnS/ZnS-Multishell Quantum Dots

机译:CdSe-核心CdS / CdZnS / ZnS-多壳量子点的温度依赖性光致发光

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The photoluminescence (PL) spectra of CdSe-core CdS/CdZnS/ZnS-multishell quantum dots (QDs) were studied to understand the radiative and nonradiative relaxation processes in the temperature range from 80 to 360 K. The mechanism of temperature-dependent nonradiative relaxation processes in the CdSe QDs with changing the shell structures was found to evolve from thermal activation of carrier trapping by surface defects/traps in CdSe core QDs to the multiple longitudinal-optical (LO) phonon-assisted thermal escape of carriers in the core/shell QDs. An increase in PL intensity with increasing temperature was clearly observed in the core/shell QDs with a thick CdS monoshell and a CdS/ZnCdS/ZnS multishell. The PL enhancement was considered to come from derealization of charge carriers localized at the CdSe/CdS interface with the potential depth of ~30 meV. The experimental results indicated that the improvement of PL quantum efficiency in CdSe-core CdS/CdZnS/ZnS-multishell QDs could be understood in terms of the reduction of nonradiative recombination centers at the interfaces and on the surface of the multishell, as Well as the confinement of electrons and holes into the QDs by an outer ZnS shell.
机译:研究了CdSe核CdS / CdZnS / ZnS多壳量子点(QDs)的光致发光(PL)光谱,以了解80至360 K温度范围内的辐射弛豫和非辐射弛豫过程。发现CdSe量子点中随着壳结构变化的过程从载流子通过CdSe核心量子点中的表面缺陷/陷阱的热活化演变为核/壳中的载流子的多个纵向光子(LO)声子辅助热逃逸QD。在具有厚CdS单壳和CdS / ZnCdS / ZnS多壳的核/壳量子点中,可以清楚地观察到PL强度随温度升高而增加。 PL增强被认为是由于CdSe / CdS界面处的载流子的去实现而造成的,其潜在深度约为30 meV。实验结果表明,从减少多壳界面和表面的非辐射复合中心以及减少多壳界面的非辐射复合中心的角度,可以理解CdSe核CdS / CdZnS / ZnS多壳量子点中PL量子效率的提高。 ZnS外壳将电子和空穴限制在量子点中。

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