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探针超声辅助快速合成高荧光硫量子点。

Probe sonication-assisted rapid synthesis of highly fluorescent sulfur quantum dots.

机构信息

Department of Polymer and Process Engineering, Indian Institute of Technology Roorkee, Uttarakhand-247667, India.

Department of Electricaland Computer Engineering, University of Alberta, Edmonton, AB T6G 1H9, Canada.

出版信息

Nanotechnology. 2023 May 9;34(30). doi: 10.1088/1361-6528/acd00a.

Abstract

A new type of heavy-metal free single-element nanomaterial, called sulfur quantum dots (SQDs), has gained significant attention due to its advantages over traditional semiconductor QDs for several biomedical and optoelectronic applications. A straightforward and rapid synthesis approach for preparing highly fluorescent SQDs is needed to utilize this nanomaterial for technological applications. Until now, only a few synthesis approaches have been reported; however, these approaches are associated with long reaction times and low quantum yields (QY). Herein, we propose a novel optimized strategy to synthesize SQDs using a mix of probe sonication and heating, which reduces the reaction time usually needed from 125 h to a mere 15 min. The investigation employs cavitation and vibration effects of high energy acoustic waves to break down the bulk sulfur into nano-sized particles in the presence of highly alkaline medium and oleic acid. In contrast to previous reports, the obtained SQDs exhibited excellent aqueous solubility, desirable photostability, and a relatively high photoluminescence QY up to 10.4% without the need of any post-treatment. Additionally, the as-synthesized SQDs show excitation-dependent emission and excellent stability in different pH (2-12) and temperature (20 °C-80 °C) environments. Hence, this strategy opens a new pathway for rapid synthesis of SQDs and may facilitate the use of these materials for biomedical and optoelectronic applications.

摘要

一种新型的无重金属单元素纳米材料,称为硫量子点(SQDs),由于其在几种生物医学和光电应用方面优于传统半导体 QD,因此引起了广泛关注。为了将这种纳米材料用于技术应用,需要一种简单、快速的方法来制备具有高荧光性的 SQDs。到目前为止,仅报道了几种合成方法;然而,这些方法存在反应时间长和量子产率(QY)低的问题。在这里,我们提出了一种使用探针超声和加热混合的新型优化策略来合成 SQDs,这将反应时间从通常的 125 小时缩短到仅 15 分钟。该研究利用高能声波的空化和振动效应,在强碱介质和油酸存在的情况下,将块状硫分解成纳米级颗粒。与之前的报道相比,所获得的 SQDs 表现出出色的水溶性、理想的光稳定性和高达 10.4%的相对高光致发光 QY,而无需任何后处理。此外,所合成的 SQDs 表现出激发依赖性发射和在不同 pH(2-12)和温度(20°C-80°C)环境中的优异稳定性。因此,这种策略为 SQDs 的快速合成开辟了新途径,并可能促进这些材料在生物医学和光电应用中的使用。

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