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Improved electrochemical performance of nickel-cobalt hydroxides by electrodeposition of interlayered reduced graphene oxide

机译:通过电沉积层间还原氧化石墨烯改善镍钴氢氧化物的电化学性能

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摘要

Efficient, economical, and eco-friendly water splitting catalysts are in priority to replace the fossil fuels. In the presented work, reduced graphene oxide is formed through electrochemical reduction and applied as an effective interlayer between nickel foam substrate and nickel-cobalt hydroxide catalyst to augment its activity toward hydrogen evolution reaction. Through subsequent cyclic voltammetry deposition of nickel-cobalt hydroxide over the surface of supported interlayer, the prepared electrocatalyst exhibited remarkable performance by reaching a current density of 10 mA cm(-2) at a small overpotential of 60 mV in 1.0 M KOH electrolyte, much lower than that of the same electrocatalyst without interlayer (78 mV). The proposed strategy made the active metallic catalyst phase acquiring a small Tafel slope and superior durability for hydrogen production in alkaline medium. By utilizing the reduce graphene oxide interlayer, the electrical conductivity of the final nickel-cobalt hydroxide electrode was boosted. Furthermore, a clear transition from ordered reticulated arrays of nanosheets to roughened and disordered nanosheet-comprised nanospheres is demonstrated for surface morphology of nickel-cobalt electrocatalyst that indeed prompts the increase in its electrochemically active surface area. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:高效,经济和环保的水分解催化剂是替代化石燃料的首要任务。在提出的工作中,还原的氧化石墨烯是通过电化学还原形成的,并被用作泡沫镍和氢氧化镍钴催化剂之间有效的中间层,以增强其对析氢反应的活性。通过随后的循环伏安法在支持的中间层表面上沉积镍钴氢氧化物,制备的电催化剂通过在1.0 M KOH电解质中的60 mV小过电势下达到10 mA cm(-2)的电流密度,表现出显着的性能。低于没有夹层的相同电催化剂(78 mV)。所提出的策略使活性金属催化剂相具有小的塔菲尔斜率和对于在碱性介质中制氢的优异耐久性。通过利用还原性氧化石墨烯夹层,最终的镍钴氢氧化物电极的电导率得以提高。此外,对于镍钴电催化剂的表面形态而言,从纳米片的有序网状阵列到粗糙化和无序的纳米片组成的纳米球的清晰过渡被证明确实促进了其电化学活性表面积的增加。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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