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Bifunctional Electrocatalytic Activity of Boron-Doped Graphene Derived from Boron Carbide

机译:碳化硼衍生的掺硼石墨烯的双功能电催化活性

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摘要

A single material that can perform water oxidation and oxygen reduction reactions (ORR), also called bifunctional catalyst, represents a novel concept that emerged from recent materials research and that has led to applications in new-generation energy-storage systems, such as regenerative fuel cells. Here, metal/metal-oxide free, doped graphene derived from rhombohedral boron carbide (B4C) is demonstrated to be an effective bifunctional catalyst for the first time. B4C, one of the hardest materials in nature next to diamond and cubic boron nitride, is converted and separated in bulk to form heteroatom (boron, B) doped graphene (BG, yield ≈7% by weight, after the first cycle). This structural conversion of B4C to graphene is accompanied by in situ boron doping and results in the formation of an electrochemically active material from a non-electrochemically active material, broadening its potential for application in various energy-related technologies. The electrocatalytic efficacy of BG is studied using various voltammetric techniques. The results show a four-electron transfer mechanism as well as a high methanol tolerance and stability towards ORR. The results are comparable to those from commercial 20 wt% Pt/C in terms of performance. Furthermore, the bifunctionality of the BG is also demonstrated by its performance in water oxidation.
机译:可以执行水氧化和氧还原反应(ORR)的单一材料,也称为双功能催化剂,代表了一种新概念,该新概念是最近材料研究中出现的,并已导致在新一代能量存储系统中的应用,例如再生燃料细胞。在这里,首次证明了衍生自菱形碳化硼(B4C)的不含金属/金属氧化物的掺杂石墨烯是一种有效的双功能催化剂。 B4C是自然界中最坚硬的材料之一,仅次于金刚石和立方氮化硼,经过转化和大量分离,形成了杂原子(硼,B)掺杂的石墨烯(BG,在第一个循环后,产率约为7%)。 B4C向石墨烯的这种结构转化伴随着原位硼掺杂,并导致由非电化学活性材料形成电化学活性材料,从而扩大了其在各种能源相关技术中的应用潜力。使用各种伏安技术研究了BG的电催化功效。结果显示出四电子转移机理以及高的甲醇耐受性和对ORR的稳定性。在性能方面,结果可与市售20 wt%Pt / C的结果相比。此外,BG的双功能性还通过其在水氧化中的性能来证明。

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