Investigation of the Optical Properties of Aminated Carbon Dots Based on Citric Acid and Ethylenediamine

IF 0.8 4区 物理与天体物理 Q4 OPTICS
I. V. Margaryan, A. M. Mitroshin, A. Yu. Dubavik, E. V. Kundelev
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引用次数: 0

Abstract

The most important parameter determining the efficiency of carbon dots as light absorbers in photocatalytic systems is the strength of their binding to the catalyst. It is rather difficult to estimate the contribution of this parameter of carbon dots to the overall efficiency of the photocatalytic system, since the post-synthetic modification of the surface of carbon dots is accompanied by a significant change in their optical and structural properties. In this work, we performed post-synthetic modification of the surface of carbon dots based on citric acid by amination with ethylenediamine molecules by activating the carboxyl groups of carbon dots with 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide and N-hydroxysuccinimide molecules. The use of this amination approach made it possible to change the charge of carbon dots without changing their main optical and structural properties, which can be further used to assess the contribution of the strength of their binding with Dubois-type molecular catalysts to the overall efficiency of the photocatalytic system.

Abstract Image

Abstract Image

研究基于柠檬酸和乙二胺的氨基化碳点的光学特性
摘要 决定碳点在光催化系统中作为光吸收剂的效率的最重要参数是碳点与催化剂的结合强度。由于对碳点表面进行合成后修饰会显著改变其光学和结构特性,因此很难估算碳点的这一参数对光催化系统整体效率的贡献。在这项工作中,我们用 1-乙基-3-(3-二甲氨基丙基)碳二亚胺和 N-羟基琥珀酰亚胺分子激活碳点的羧基,通过与乙二胺分子胺化,对基于柠檬酸的碳点表面进行了合成后修饰。使用这种胺化方法可以在不改变碳点主要光学和结构特性的情况下改变碳点的电荷,这可以进一步用于评估碳点与杜波依斯型分子催化剂的结合强度对光催化系统整体效率的贡献。
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来源期刊
Optics and Spectroscopy
Optics and Spectroscopy 物理-光谱学
CiteScore
1.60
自引率
0.00%
发文量
55
审稿时长
4.5 months
期刊介绍: Optics and Spectroscopy (Optika i spektroskopiya), founded in 1956, presents original and review papers in various fields of modern optics and spectroscopy in the entire wavelength range from radio waves to X-rays. Topics covered include problems of theoretical and experimental spectroscopy of atoms, molecules, and condensed state, lasers and the interaction of laser radiation with matter, physical and geometrical optics, holography, and physical principles of optical instrument making.
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