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首页> 外文期刊>Advanced Functional Materials >On the Role of Transition Metal Salts During Electrochemical Exfoliation of Graphite: Antioxidants or Metal Oxide Decorators for Energy Storage Applications
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On the Role of Transition Metal Salts During Electrochemical Exfoliation of Graphite: Antioxidants or Metal Oxide Decorators for Energy Storage Applications

机译:过渡金属盐在石墨电化学剥落中的作用:储能应用中的抗氧化剂或金属氧化物装饰剂

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摘要

A new approach is presented, based on the unexpectedly versatile role of transition metal ions, to produce high-quality graphene via an anodic electrochemical exfoliation route, and the capability of the resultant material in energy storage applications are illustrated. The method is based on graphene exfoliation in the presence of transition metals (Co2+ and Fe3+) which act as antioxidants, preventing surface oxidation of graphene, while other metals (Ru3+, Mn2+, Ir3+, and Sn4+) act as metal oxide decorators. The addition of Co2+ ions to the exfoliation solution produced few-layer graphene that is two orders of magnitude more conducting and contains 80% less oxygen than the material obtained in the absence of cobalt ion. By contrast, the use of Mn2+ and Ru3+ in the electrolyte form an interconnected honeycomb lamellar structure of MnO2 and RuO2 nanoparticles, respectively. The combination of Mn2+ and Ru3+ create a uniformly grown Ru-Mn oxide hybrid structure on the graphene sheets in a single stage process, which is found to be an efficient electrode for supercapacitors (specific capacitance of 500 F g(-1)) and as a bifunctional water splitting electrocatalyst. The use of these inexpensive salts will aid the scalable production of high-quality graphene and functionalized graphene for diverse applications.
机译:基于过渡金属离子出乎意料的通用作用,提出了一种新方法,可通过阳极电化学剥离途径生产高质量的石墨烯,并说明了所得材料在储能应用中的能力。该方法基于石墨烯的剥落,而过渡金属(Co2 +和Fe3 +)充当抗氧化剂,防止石墨烯的表面氧化,而其他金属(Ru3 +,Mn2 +,Ir3 +和Sn4 +)充当金属氧化物装饰剂。向剥离溶液中添加Co2 +离子会产生几层石墨烯,该石墨烯的导电率比不存在钴离子的材料高两个数量级,并且氧含量降低了80%。相反,在电解质中使用Mn2 +和Ru3 +分别形成了MnO2和RuO2纳米粒子的相互连接的蜂窝层状结构。 Mn2 +和Ru3 +的组合在单步过程中在石墨烯片上形成均匀生长的Ru-Mn氧化物杂化结构,被发现是超级电容器(比电容为500 F g(-1))的有效电极,并且双功能水分解电催化剂。这些廉价的盐的使用将有助于可扩展地生产高质量的石墨烯和功能化的石墨烯,以用于各种应用。

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