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从合成到光催化活性的碳量子点的化学调控。

Chemical regulation of carbon quantum dots from synthesis to photocatalytic activity.

机构信息

Key Laboratory of Instrumentation Science, and Dynamic Measurement, Ministry of Education, Science and Technology on Electronic Test and Measurement Laboratory, Taiyuan 030051, China.

出版信息

Chem Asian J. 2013 May;8(5):1035-41. doi: 10.1002/asia.201300076. Epub 2013 Feb 25.

Abstract

Carbon quantum dots (CQDs) were synthesized by heating various carbon sources in HNO3 solution at reflux, and the effects of HNO3 concentration on the size of the CQDs were investigated. Furthermore, the oxygen-containing surface groups of as-prepared CQDs were selectively reduced by NaBH4 , leading to new surface states. The experimental results show that the sizes of CQDs can be tuned by HNO3 concentration and then influence their photoluminescent behaviors; the photoluminescent properties are related to both the size and surface state of the CQDs, but the photocatalytic activities are determined by surface states alone. The different oxygen-containing groups on the surface of the CQDs can induce different degrees of the band bending upward, which determine the separation and combination of the electron-hole pairs. The high upward band bending, which is induced by C=O and COOH groups, facilitates separation of the electron-hole pairs and then enhances high photocatalytic activity. In contrast, the low upward band bending induced by C-OH groups hardly prevents the electron-hole pairs from surface recombination and then exhibits strong photoluminescence. Therefore, both the photocatalytic activities and optical properties of CQDs can be tuned by their surface states.

摘要

碳量子点(CQDs)是通过在回流的 HNO3 溶液中加热各种碳源合成的,研究了 HNO3 浓度对 CQDs 尺寸的影响。此外,通过 NaBH4 选择性还原制备的 CQDs 上的含氧表面基团,导致新的表面状态。实验结果表明,CQDs 的尺寸可以通过 HNO3 浓度进行调节,从而影响其光致发光行为;光致发光性质与 CQDs 的尺寸和表面状态有关,但光催化活性仅由表面状态决定。CQDs 表面的不同含氧基团会引起不同程度的能带向上弯曲,这决定了电子-空穴对的分离和结合。C=O 和 COOH 基团诱导的高能带向上弯曲有利于电子-空穴对的分离,从而增强了高光催化活性。相比之下,C-OH 基团诱导的低能带向上弯曲几乎不会阻止电子-空穴对的表面复合,从而表现出强的光致发光。因此,CQDs 的光催化活性和光学性质都可以通过其表面状态进行调节。

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