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Application of functionalized graphene in Li-O-2 batteries

机译:官能化石墨烯在Li-O-2电池中的应用

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Li-O-2 batteries (LOB) are considered as one of the most promising energy storage devices using renewable electricity to power electric vehicles because of its exceptionally high energy density. Carbon materials have been widely employed in LOB for its light weight and facile availability. In particular, graphene is a suitable candidate due to its unique two-dimensional structure, high conductivities, large specific surface areas, and good stability at high charge potential. However, the intrinsic catalytic activity of graphene is insufficient for the sluggish kinetics of oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) in LOB. Therefore, various surface functionalization schemes for graphene have been developed to tailor the surface chemistry of graphene. In this review, the properties and performances of functionalized graphene cathodes are discussed from theoretical and experimental aspects, including heteroatomic doping, oxygen functional group modifications, and catalyst decoration. Heteroatomic doping breaks electric neutrality of sp(2) carbon of graphene, which forms electron-deficient or electron-rich sites. Oxygen functional groups mainly create defective edges on graphene oxides with C-O, C=O, and -COO-. Catalyst decoration is widely attempted by various transition and precious metal and metal oxides. These induced reactive sites usually improve the ORR and/or OER in LOB by manipulating the adsorption energies of O-2, LiO2, Li2O2, and promoting electron transportation of cathode. In addition, functionalized graphene is used in anode and separators to prevent shuttle effect of redox mediators and suppress growth of Li dendrite.
机译:锂氧电池(Li-O-2 Battery,LOB)因其极高的能量密度而被认为是最有前途的利用可再生电力为电动汽车提供动力的储能装置之一。碳材料因其重量轻、使用方便而被广泛应用于LOB。尤其是石墨烯,由于其独特的二维结构、高导电性、大的比表面积以及在高电荷势下的良好稳定性,是一种合适的候选材料。然而,石墨烯的固有催化活性不足以满足LOB中缓慢的氧还原反应(ORR)和析氧反应(OER)动力学。因此,人们开发了各种石墨烯表面功能化方案来定制石墨烯的表面化学。本文从理论和实验两个方面对功能化石墨烯阴极的性质和性能进行了综述,包括杂原子掺杂、氧官能团修饰和催化剂修饰。杂原子掺杂破坏了石墨烯中sp(2)碳的电中性,形成缺电子或富电子位。氧官能团主要通过C-O、C=O和-COO-在石墨烯氧化物上形成缺陷边缘。各种过渡金属、贵金属和金属氧化物广泛尝试催化剂装饰。这些诱导反应位点通常通过控制O-2、LiO2、Li2O2的吸附能和促进阴极的电子传输来改善LOB中的ORR和/或OER。此外,功能化石墨烯用于阳极和分离器,以防止氧化还原介质的穿梭效应,抑制锂树枝晶的生长。

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