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Advances in the Applications of Graphene-Based Nanocomposites in Clean Energy Materials

机译:石墨烯纳米复合材料在清洁能源材料中的应用进展

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摘要

Extensive use of fossil fuels can lead to energy depletion and serious environmental pollution. Therefore, it is necessary to solve these problems by developing clean energy. Graphene materials own the advantages of high electrocatalytic activity, high conductivity, excellent mechanical strength, strong flexibility, large specific surface area and light weight, thus giving the potential to store electric charge, ions or hydrogen. Graphene-based nanocomposites have become new research hotspots in the field of energy storage and conversion, such as in fuel cells, lithium-ion batteries, solar cells and thermoelectric conversion. Graphene as a catalyst carrier of hydrogen fuel cells has been further modified to obtain higher and more uniform metal dispersion, hence improving the electrocatalyst activity. Moreover, it can complement the network of electroactive materials to buffer the change of electrode volume and prevent the breakage and aggregation of electrode materials, and graphene oxide is also used as a cheap and sustainable proton exchange membrane. In lithium-ion batteries, substituting heteroatoms for carbon atoms in graphene composite electrodes can produce defects on the graphitized surface which have a good reversible specific capacity and increased energy and power densities. In solar cells, the performance of the interface and junction is enhanced by using a few layers of graphene-based composites and more electron-hole pairs are collected; therefore, the conversion efficiency is increased. Graphene has a high Seebeck coefficient, and therefore, it is a potential thermoelectric material. In this paper, we review the latest progress in the synthesis, characterization, evaluation and properties of graphene-based composites and their practical applications in fuel cells, lithium-ion batteries, solar cells and thermoelectric conversion.
机译:大量使用化石燃料可导致能源消耗和严重的环境污染。因此,需要通过开发清洁能量来解决这些问题。石墨烯材料拥有电催化活性高,电导率高,机械强度优异,柔韧性强,比表面积大,重量轻,因此赋予电荷,离子或氢气的潜力。基于石墨烯的纳米复合材料已成为储能和转化领域的新研究热点,例如燃料电池,锂离子电池,太阳能电池和热电转换。将石墨烯作为氢燃料电池的催化剂载体进行了进一步修饰以获得更高且更均匀的金属分散体,因此改善了电催化剂活性。此外,它可以补充电活性材料的网络,以缓冲电极体积的变化,并防止电极材料的破损和聚集,并将氧化物氧化物作为廉价和可持续的质子交换膜。在锂离子电池中,将碳原子中的杂原子替代石墨烯复合电极可以在石墨化表面上产生缺陷,其具有良好的可逆特定容量和增加的能量和功率密度。在太阳能电池中,通过使用几层基于基于石墨烯基复合材料,收集更多的电子空穴对在太阳能电池中提高了界面和结的性能。因此,增加了转换效率。石墨烯具有高塞贝克系数,因此,它是潜在的热电材料。在本文中,我们审查了基于石墨烯复合材料的合成,表征,评价和性质及其在燃料电池,锂离子电池,太阳能电池和热电转换中的实际应用中的最新进展。

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