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具有巨大自旋-谷耦合的发光单层二硫化钨量子点的制备。

Fabrication of luminescent monolayered tungsten dichalcogenides quantum dots with giant spin-valley coupling.

机构信息

Department of Materials Science and Engineering, University of Sheffield , Sheffield S1 3JD, United Kingdom.

出版信息

ACS Nano. 2013 Sep 24;7(9):8214-23. doi: 10.1021/nn403682r. Epub 2013 Sep 3.

DOI:10.1021/nn403682r
PMID:23968363
Abstract

A high yield (>36 wt %) method has been developed of preparing monolayered tungsten dichalcogenide (WS2) quantum dots (QDs) with lateral size ∼8-15 nm from multilayered WS2 flakes. The monolayered WS2 QDs are, like monolayered WS2 sheets, direct semiconductors despite the flake precursors being an indirect semiconductor. However, the QDs have a significantly larger direct transition energy (3.16 eV) compared to the sheets (2.1 eV) and enhanced photoluminescence (PL; quantum yield ∼4%) in the blue-green spectral region at room temperature. UV/vis measurements reveal a giant spin-valley coupling of the monolayered WS2 QDs at around 570 meV, which is larger than that of monolayered WS2 sheets (∼400 meV). This spin-valley coupling was further confirmed by PL as direct transitions from the conduction band minimum to split valence band energy levels, leading to multiple luminescence peaks centered at around 369 (3.36 eV) and 461 nm (2.69 eV, also contributed by a new defect level). The discovery of giant spin-valley coupling and the strong luminescence of the monolayered WS2 QDs make them potentially of interests for the applications in semiconductor-based spintronics, conceptual valley-based electronics, quantum information technology and optoelectronic devices. However, we also demonstrate that the fabricated monolayered WS2 QDs can be a nontoxic fluorescent label for high contrast bioimaging application.

摘要

一种高产率(>36wt%)的方法已被开发出来,用于从多层 WS2 薄片中制备横向尺寸约为 8-15nm 的单层二硫化钨(WS2)量子点(QD)。尽管片状前体是间接半导体,但单层 WS2 QD 与单层 WS2 片一样,是直接半导体。然而,与片状物(2.1eV)相比,QD 的直接跃迁能(3.16eV)显著更大,并且在室温下的蓝绿色光谱区域具有增强的光致发光(PL;量子产率约为 4%)。UV/vis 测量显示,单层 WS2 QD 具有约 570meV 的巨大自旋-谷耦合,大于单层 WS2 片(约 400meV)。PL 进一步证实了这种自旋-谷耦合,这是由于从导带底到分裂价带能级的直接跃迁,导致多个发光峰位于约 369nm(3.36eV)和 461nm(2.69eV,也由新的缺陷能级贡献)。单层 WS2 QD 的巨大自旋-谷耦合和强发光特性使它们在基于半导体的自旋电子学、概念性基于谷的电子学、量子信息技术和光电设备的应用中具有潜在的应用价值。然而,我们还证明,所制备的单层 WS2 QD 可以作为高对比度生物成像应用的无毒荧光标记。

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