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Single-charge transport through hybrid core-shell Au-ZnS quantum dots: a comprehensive analysis from a modified energy structure

机译:次充电运输通过混合核壳Au-ZnS量子点:一个全面的分析从能源结构修改

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摘要

We examined the modified electronic structure and single-carrier transport of individual hybrid core-shell metal-semiconductor Au-ZnS quantum dots (QDs) using a scanning tunnelling microscope. Nearly monodisperse ultra-small QDs are achieved by a facile wet chemical route. The exact energy structures are evaluated by scanning tunnelling spectroscopy (STS) measurements at 300 mK for the individual nanoobjects starting from the main building block Au nanocrystals (NCs) to the final Au-ZnS QDs. The study divulges the evolution of the energy structure and the charge transport from the single metallic building block core to the core-shell metal-semiconductor QDs. Furthermore, we successfully determined the contributions related to the quantum-confinement-induced excitonic band structure of the ZnS nano-shell and the charging energy of the system by applying a semi-empirical approach considering a double barrier tunnel junction (DBTJ) arrangement. We detect strong conductance peaks in Au-ZnS QDs due to the overlapping of the energy structure of the Au nano-core and the discrete energy states of the semiconductor ZnS nano-shell. Our findings will help in understanding the electronic properties of metal-semiconductor QDs. The outcomes therefore have the potential to fabricate tailored metal-semiconductor QDs for single-electron devices.
机译:我们对修改后的电子结构和单载波传输的混合动力车核壳金属半导体接触Au-ZnS量子使用扫描隧道点(量子点)显微镜。通过一个灵巧的湿化学路线。确切的能源结构进行扫描隧道光谱学(STS)测量在300年可为个人nanoobjects从主要构建块Au纳米晶体(nc)最后的量子点Au-ZnS。能源结构和电荷的进化运输从单一金属构件核心的核壳量子点金属半导体接触。此外,我们成功地确定了相关的贡献quantum-confinement-induced激子的乐队结构的硫化锌nano-shell和充电系统通过应用半经验的能量方法考虑双势垒隧道结(DBTJ)安排。在量子点Au-ZnS由于电导峰重叠的非盟的能源结构nano-core和离散的能量状态半导体的硫化锌nano-shell。帮助了解电子性质量子点的金属半导体接触。因此有可能制造定制金属半导体量子点的单电子设备。

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