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通过利用配体之间的化学键合制备的CdTe量子点组装体中的耦合电子态。

Coupled electronic states in CdTe quantum dot assemblies fabricated by utilizing chemical bonding between ligands.

作者信息

Lee Yong-Shin, Ito Tatsuya, Shimura Kunio, Watanabe Taichi, Bu Hang-Beom, Hyeon-Deuk Kim, Kim DaeGwi

机构信息

Department of Applied Physics, Osaka City University, Osaka 558-8585, Japan.

出版信息

Nanoscale. 2020 Apr 3;12(13):7124-7133. doi: 10.1039/d0nr00194e.

Abstract

Semiconductor quantum dot superlattices (QDSLs) have attracted much attention as key materials for realizing new optoelectronic devices such as solar cells with high conversion efficiency and thermoelectric elements with high electrical conductivity. To improve the charge transport properties of QDSL-based optoelectronic devices, it is important that the QD structures form minibands, which are the coupled electronic states between QDs. A shorter inter-QD distance and a periodic arrangement of QDs are the essential conditions for the formation of minibands. In this study, we use CdTe QDs capped with short ligands of N-acetyl-l cysteine (NAC) to fabricate three-dimensional QD assemblies by utilizing chemical bonding between NACs. Absorption spectra clearly display the quantum resonance phenomenon originating from the coupling of the wave functions between the adjacent QDs in CdTe QD assemblies. Furthermore, we demonstrate the formation of minibands in CdTe QD assemblies by examining both, the excitation energy dependence of photoluminescence (PL) spectra and the detection energy dependence of PL excitation spectra. The fabrication method of QD assemblies utilizing chemical bonding between NACs can be applied to all QDs capped with NAC as a ligand.

摘要

半导体量子点超晶格(QDSLs)作为实现新型光电器件(如具有高转换效率的太阳能电池和具有高电导率的热电元件)的关键材料,已引起广泛关注。为了改善基于QDSL的光电器件的电荷传输特性,重要的是量子点(QD)结构形成微带,微带是量子点之间的耦合电子态。较短的量子点间距离和量子点的周期性排列是形成微带的必要条件。在本研究中,我们使用用N - 乙酰 - L - 半胱氨酸(NAC)短配体封端的碲化镉量子点,通过利用NAC之间的化学键合来制备三维量子点组装体。吸收光谱清楚地显示了源自碲化镉量子点组装体中相邻量子点之间波函数耦合的量子共振现象。此外,我们通过研究光致发光(PL)光谱对激发能量的依赖性和PL激发光谱对探测能量的依赖性,证明了碲化镉量子点组装体中微带的形成。利用NAC之间的化学键合的量子点组装体制备方法可应用于所有用NAC作为配体封端的量子点。

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