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Wavefunction Engineering of Type-I/Type-II Excitons of CdSe/CdS Core-Shell Quantum Dots

机译:CdSe / CdS核壳量子点的I / II型激子的波函数工程

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摘要

Nanostructured semiconductors have the unique shape/size-dependent band gap tunability, which has various applications. The quantum confinement effect allows controlling the spatial distribution of the charge carriers in the core-shell quantum dots (QDs). Upon increasing shell thickness (e.g., from 0.25–3.25 nm) of core-shell QDs, the radial distribution function (RDF) of hole shifts towards the shell suggesting the confinement region switched from Type-I to Type-II excitons. As a result, there is a jump in the transition energy towards the higher side (blue shift). However, an intermediate state appeared as pseudo Type II excitons, in which holes are co-localized in the shell as well core whereas electrons are confined in core only, resulting in a dual absorption band (excitation energy), carried out by the analysis of the overlap percentage using the Hartree-Fock method. The findings are a close approximation to the experimental evidences. Thus, the understanding of the motion of e-h in core-shell QDs is essential for photovoltaic, LEDs, etc.
机译:纳米结构半导体具有独特的形状/尺寸相关的带隙可调性,具有多种应用。量子限制效应允许控制核壳量子点(QD)中电荷载流子的空间分布。随着核壳量子点的壳厚度增加(例如,从0.25–3.25 nm),孔的径向分布函数(RDF)向壳移动,表明约束区域从I型激子转换为II型激子。结果,跃迁能量向较高侧跳跃(蓝移)。但是,中间状态为伪II型激子,其中空穴在壳以及核中共定位,而电子仅局限在核中,从而产生双吸收带(激发能),通过分析使用Hartree-Fock方法的重叠百分比。这些发现与实验证据非常接近。因此,了解核壳量子点中e-h的运动对于光伏,LED等至关重要。

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