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由可再生前体制备的碳点太阳能电池。

Carbon-Nanodot Solar Cells from Renewable Precursors.

机构信息

Materials Research Institute, Queen Mary University of London, Mile End Road, E14NS, London, UK.

National University of Singapore, Faculty of Engineering, 9 Engineering Drive 1, Singapore, 117575, Singapore.

出版信息

ChemSusChem. 2017 Mar 9;10(5):1004-1013. doi: 10.1002/cssc.201601741. Epub 2017 Feb 14.

DOI:10.1002/cssc.201601741
PMID:28107609
Abstract

It has recently been shown that waste biomass can be converted into a wide range of functional materials, including those with desirable optical and electronic properties, offering the opportunity to find new uses for these renewable resources. Photovoltaics is one area in which finding the combination of abundant, low-cost and non-toxic materials with the necessary functionality can be challenging. In this paper the performance of carbon nanodots derived from a wide range of biomaterials obtained from different biomass sources as sensitisers for TiO -based nanostructured solar cells was compared; polysaccharides (chitosan and chitin), monosaccharide (d-glucose), amino acids (l-arginine and l-cysteine) and raw lobster shells were used to produce carbon nanodots through hydrothermal carbonisation. The highest solar power conversion efficiency (PCE) of 0.36 % was obtained by using l-arginine carbon nanodots as sensitisers, whereas lobster shells, as a model source of chitin from actual food waste, showed a PCE of 0.22 %. By comparing this wide range of materials, the performance of the solar cells was correlated with the materials characteristics by carefully investigating the structural and optical properties of each family of carbon nanodots, and it was shown that the combination of amine and carboxylic acid functionalisation is particularly beneficial for the solar-cell performance.

摘要

最近已经证明,废生物质可以转化为各种功能材料,包括具有理想光学和电子性能的材料,为这些可再生资源提供了新的用途。光伏是一个发现具有丰富、低成本和无毒特性的材料与必要功能相结合具有挑战性的领域。在本文中,比较了源自广泛的生物材料的碳纳米点在 TiO2 基纳米结构太阳能电池中的敏化剂的性能;使用甲壳素和壳聚糖的多糖、葡萄糖的单糖、精氨酸和半胱氨酸的氨基酸以及生龙虾壳通过水热碳化来生产碳纳米点。使用 l-精氨酸碳纳米点作为敏化剂时,获得了最高的太阳能转换效率(PCE)为 0.36%,而作为实际食物废物中甲壳素的模型来源的龙虾壳的 PCE 为 0.22%。通过比较这些广泛的材料,通过仔细研究每一组碳纳米点的结构和光学性质,将太阳能电池的性能与材料特性相关联,结果表明,胺和羧酸官能化的组合特别有利于太阳能电池的性能。

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