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利用坚果壳绿色合成碳量子点以提高染料敏化太阳能电池的性能。

Green synthesis of carbon quantum dots from nutshells for enhanced performance in dye-sensitized solar cells.

作者信息

Yu Yang, Ouyang Yuxia, Xu Fei, Wang Tiefeng, Wei Xiaoyan, Wang Tongtong, Yao Yi

机构信息

College of Advanced Materials Engineering, Jiaxing Nanhu University Jiaxing Zhejiang 314001 China

School of Energy Resources, University of Wyoming Laramie WY 82071 USA

出版信息

RSC Adv. 2025 Mar 13;15(10):7938-7947. doi: 10.1039/d4ra08649j. eCollection 2025 Mar 6.

Abstract

This study presents a sustainable approach to large scale synthesis of carbon quantum dots (CQDs) from nutshells, a widely available waste from biomass, using hydrogen peroxide (HO) as the oxidizing agent in a hydrothermal process. The conditions of synthesis, including concentration of HO, reaction temperature and time, have been systematically optimized. The results show that optimal conditions include a concentration of 2.5% HO, a reaction temperature of 180 °C and a reaction time of 12 hours. The obtained CQDs have an average size of 3 nm and excellent fluorescence. The 2 L Parr reactor has been used to increase the production process and make it more viable for industrial applications. By-products of the reaction, including gas, liquid and solid residues, have been analyzed to understand the distribution of carbon. In addition, CQDs have been incorporated in dye-sensitive solar cells (DSSCs) where they have significantly improved the photovoltaic performance, with increased current density and overall efficiency. This work highlights the potential of biomass-based CQDs for the sustainable production of nanomaterials and for energy conversion applications, and offers a scalable and environmentally friendly alternative to synthesis of CQDs.

摘要

本研究提出了一种可持续的方法,以生物质广泛产生的废料果壳为原料,在水热过程中使用过氧化氢(H₂O₂)作为氧化剂大规模合成碳量子点(CQDs)。合成条件,包括H₂O₂浓度、反应温度和时间,已得到系统优化。结果表明,最佳条件为H₂O₂浓度2.5%、反应温度180℃和反应时间12小时。所制备的碳量子点平均尺寸为3纳米,具有优异的荧光性能。已使用2升帕尔反应釜来扩大生产过程,使其在工业应用中更具可行性。对反应副产物,包括气体、液体和固体残渣进行了分析,以了解碳的分布情况。此外,碳量子点已被应用于染料敏化太阳能电池(DSSC)中,显著提高了其光伏性能,增加了电流密度和整体效率。这项工作突出了基于生物质的碳量子点在纳米材料可持续生产和能量转换应用方面的潜力,并为碳量子点的合成提供了一种可扩展且环境友好的替代方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3870/11904774/4c58cee988b3/d4ra08649j-f1.jpg

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