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Carbon quantum dot-based composites for energy storage and electrocatalysis: Mechanism, applications and future prospects

机译:碳量子点基复合材料用于储能和电常见:机制,应用和未来前景

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摘要

Zero-dimensional (OD) carbon nanomaterials such as carbon (CQDs) and graphene quantum dots (GQDs) have been attracting attention due to their outstanding properties of biocompatibility, nontoxicity, chemical inertness, tunable photoluminescence, low cost and facile surface functionalization. Their potential applications range from biomedical, drug delivery, environmental, photocatalytic to energy storage sectors. Among these, investigations have largely focused on their behavior in environmental sensing, biosensing, and optoelectronics, yet energy storage and conversion systems are progressing rapidly as new promising methods are emerging to solve some of the outstanding challenges with energy at low cost and environmental footprint. By virtue of their rapid electron transfer and high surface area, CQD/GQDs are desirable in these electrochemical applications. Further, functional groups with rich heteroatoms (oxygen, nitrogen, sulfur, phosphorus, boron) on OD carbon nanomaterials offer desirable active sites for enhanced electrochemical properties. Our review presents recent advances in the fabrication of CQD/GQD based composites for electrochemical systems, their mechanism of action, applications in energy storage (electrochemical capacitors, lithium/sodium ion batteries) and electrocatalysis (oxygen reduction reaction, oxygen/hydrogen evolution reactions, CO2 electroreduction, biofuel cells and electrochemical biosensors) with an analysis of their potential prospects.
机译:零维(OD)碳纳米材料如碳(CQDS)和石墨烯量子点(GQDS)由于它们的突出性,无毒性,化学惰性,可调谐光致发光,低成本和面部官能化而引起了引起的关注。它们的潜在应用范围从生物医学,药物递送,环境,光催化到储能领域。其中,调查主要集中于它们在环境传感中的行为,生物传感和光电子,但能量储存和转换系统随着新的有希望的方法来解决与低成本和环境足迹的能量的一些出色挑战而迅速发展。借助于它们的快速电子传递和高表面积,在这些电化学应用中是期望CQD / GQD的。此外,在OD碳纳米材料上具有富杂杂原子(氧,氮,硫,磷,硼,硼)的官能团提供了所需的活性位点,用于增强电化学性质。我们的评论介绍了用于电化学系统的CQD / GQD基复合材料的最新进展,它们的作用机制,储能(电化学电容器,锂/钠离子电池)和电致分析(氧还原反应,氧气/氢进化反应, CO2电荷,生物燃料细胞和电化学生物传感器)分析了它们的潜在前景。

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