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A Single-Step Electrochemical Synthesis of Luminescent WS_2 Quantum Dots

机译:发光WS_2量子点的单步电化学合成

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Transition-metal dichalcogenide quantum dots (TMDQDs) with few layers are in the forefront of recent research on tailored 2D layered materials owing to their unique band structure. Such quantum dots (QDs) draw wide interest as potential candidates for components in optoelectronic devices. Although a few attempts towards single step synthesis of MoS_2 QDs have been demonstrated, limited methods are available for WS_2 QDs. Herein, we demonstrate a one-step electrochemical synthesis of luminescent WS_2 QDs from their bulk material. This is achieved by a synergistic effect of perchlorate intercalation in non-aqueous electrolyte and the applied electric field. The average size of the WS_2 QDs is 3 :1 nm (N=102) with few layers. The QDs show a higher photoluminescence (PL) quantum efficiency (5%) and exhibit an excitation wavelength-dependent photoluminescence. This unprecedented electrochemical avenue offers a strategy to synthesize size tunable WS_2 nanostructures, which have been systematically investigated by various characterization techniques such as transmission electron microscopy (TEM), photoluminescence and UV/Vis spectroscopies, and X-ray diffraction (XRD). Time-dependent TEM investigations revealed that time plays a vital role in this electrochemical transformation. This electrochemical transformation provides a facile method to obtain WS_2 QDs from their bulk counterpart, which is expected to have a greater impact on the design and development of nanostructures derived from 2D materials.
机译:过渡金属二甲基化物量子点(TMDQDS)具有很少的层,是由于其独特的频带结构而定制的2D分层材料的最前沿。这种量子点(QDS)将广泛的兴趣作为光电器件中的组件的潜在候选。尽管已经证明了几次尝试单步合成MOS_2QD,但是有限的方法可用于WS_2 QD。这里,我们证明了来自其散装材料的发光WS_2QD的一步电化学合成。这是通过在非水电解质和施加的电场中的高氯酸盐嵌入的协同作用来实现。 WS_2 QD的平均大小为3:1nm(n = 102),几个层。 QDS显示出更高的光致发光(PL)量子效率(5%)并表现出激发波长依赖性的光致发光。该前所未有的电化学大道提供了一种合成尺寸可调WS_2纳米结构的策略,这些策略通过各种表征技术(例如透射电子显微镜(TEM),光致发光和UV / VIS光谱和X射线衍射(XRD))系统地研究。时间依赖的TEM调查显示,时间在这种电化学转化中起着至关重要的作用。这种电化学转化提供了一种容易从它们的散装对应物获得WS_2 QD的容易方法,这预计将对衍生自2D材料的纳米结构的设计和开发产生更大的影响。

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