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Graphene Quantum Dots-Based Advanced Electrode Materials: Design, Synthesis and Their Applications in Electrochemical Energy Storage and Electrocatalysis

机译:基于石墨烯量子点的先进电极材料:设计,合成及其在电化学能量储存和电常分中的应用

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摘要

Graphene quantum dots (GQDs) have aroused great interest in the scientific community in recent years due to their unique physicochemical properties and potential applications in different fields. To date, much research has been conducted on the ingenious design and rational construction of GQDs-based nanomaterials used as electrode materials and/or electrocatalysts. Despite these efforts, research on the efficient synthesis and application of GQDs-based nanomaterials is still in the early stages of development and timely updates of recent research progress on new design concepts, synthetic strategies, and significant breakthroughs in GQDs-based nanomaterials are highly desired. In light of the above, the effect of synthetic methods on the final product of the GQDs, the GQDs synthesis mechanism, and specific perspectives regarding the effect of the unique surface and structural properties of GQDs (e.g., defects, heteroatom doping, surface/edge state, size, conductivity) on the electrochemical energy-related systems are discussed in-depth in this review. Additionally, this review also focuses on the design of GQDs-based composites and their applications in the fields of electrochemical energy storage (e.g., supercapacitors and batteries) and electrocatalysis (e.g., fuel cell, water splitting, CO(2)reduction), along with constructive suggestions for addressing the remaining challenges in the field.
机译:由于其独特的物理化学特性和不同领域的潜在应用,石墨烯量子点(GQDS)近年来兴起了近年来的科学界。迄今为止,已经对使用作为电极材料和/或电催化剂的GQDS的纳米材料的巧妙设计和合理构建进行了许多研究。尽管有这些努力,对基于GQDS的纳米材料的有效合成和应用的研究仍处于开发的早期阶段,并及时更新新的设计概念,合成策略和基于GQDS的纳米材料中的显着突破性的研究进展。鉴于以上,合成方法对GQDS的最终产物的影响,GQDS合成机制,以及关于GQD的独特表面和结构性质的效果的特定视角(例如,缺陷,杂原子掺杂,表面/边缘在本次审查中讨论了电化学能量相关系统上的状态,大小,电导率)。此外,该综述还侧重于基于GQDS的复合材料的设计及其在电化学能量存储(例如,超级电容器和电池)和电致划分领域的应用(例如,燃料电池,水分裂,CO(2)减少)具有解决现场剩余挑战的建设性建议。

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  • 来源
    《Advanced energy materials》 |2020年第29期|2001275.1-2001275.49|共49页
  • 作者单位

    Univ Waterloo Waterloo Inst Nanotechnol Dept Chem Engn Waterloo ON N2L 3G1 Canada;

    Univ Waterloo Waterloo Inst Nanotechnol Dept Chem Engn Waterloo ON N2L 3G1 Canada;

    Univ Waterloo Waterloo Inst Nanotechnol Dept Chem Engn Waterloo ON N2L 3G1 Canada;

    Univ Waterloo Waterloo Inst Nanotechnol Dept Chem Engn Waterloo ON N2L 3G1 Canada;

    Univ Waterloo Waterloo Inst Nanotechnol Dept Chem Engn Waterloo ON N2L 3G1 Canada;

    Univ Waterloo Waterloo Inst Nanotechnol Dept Chem Engn Waterloo ON N2L 3G1 Canada;

    Univ Waterloo Waterloo Inst Nanotechnol Dept Chem Engn Waterloo ON N2L 3G1 Canada;

    Univ Waterloo Waterloo Inst Nanotechnol Dept Chem Engn Waterloo ON N2L 3G1 Canada|Jilin Normal Univ Key Lab Funct Mat Phys & Chem Minist Educ Changchun 130103 Peoples R China;

    Univ Waterloo Waterloo Inst Nanotechnol Dept Chem Engn Waterloo ON N2L 3G1 Canada;

    Jilin Normal Univ Key Lab Funct Mat Phys & Chem Minist Educ Changchun 130103 Peoples R China;

    Univ Waterloo Waterloo Inst Nanotechnol Dept Chem Engn Waterloo ON N2L 3G1 Canada;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    electrocatalysis; electrode materials; electrochemical energy storage; graphene quantum dots;

    机译:电催化;电极材料;电化学储存;石墨烯量子点;

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