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Implications of orbital hybridization on the electronic properties of doped quantum dots: the case of Cu:CdSe

机译:轨道杂化的影响掺杂量子点的电子特性:

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摘要

This paper investigates how chemical dopants affect the electronic properties of CdSe quantum dots (QDs) and why a model that incorporates the concepts of orbital hybridization must be used to understand these properties. Extended X-ray absorption fine structure spectroscopy measurements show that copper dopants in CdSe QDs occur primarily through a statistical doping mechanism. Ultraviolet photoemission spectroscopy (UPS) experiments provide a detailed insight on the valence band (VB) structure of doped and undoped QDs. Using UPS measurements, we are able to observe photoemission from the Cu d-levels above VB maximum of the QDs which allows a complete picture of the energy band landscape of these materials. This information provides insights into many of the physical properties of doped QDs, including the highly debated near-infrared photoluminescence in Cu doped CdSe QDs. We show that all our results point to a common theme of orbital hybridization in Cu doped CdSe QDs which leads to optically and electronically active states below the conduction band minimum. Our model is supported from current-voltage measurements of doped and undoped materials, which exhibit Schottky to Ohmic behavior with Cu doping, suggestive of a tuning of the lowest energy states near the Fermi level.
机译:探讨如何化学掺杂物影响CdSe量子的电子性质点(量子点),为什么一个模型,该模型包含了必须使用轨道杂化的概念理解这些属性。精细结构光谱吸收测量结果表明,在量子点CdSe铜掺杂物发生主要通过统计兴奋剂机制。(UPS)实验提供一个详细的了解价带(VB)掺杂和结构无掺杂量子点。从铜d水平观察光电发射VB量子点的最大允许一个以上能带景观的全貌这些材料。洞察的许多物理性质量子点掺杂,包括高度争议近红外在铜掺杂CdSe光致发光量子点。轨道杂化铜掺杂的共同主题量子点CdSe导致光州以下传导电子活跃乐队最低。电流电压测量的掺杂和纯的材料、展览肖特基欧姆与铜掺杂行为,暗示了一个调优最低的能量状态在费米能级附近。

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