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首页> 外文期刊>Chemical engineering journal >Decorating CoNi layered double hydroxides nanosheet arrays with fullerene quantum dot anchored on Ni foam for efficient electrocatalytic water splitting and urea electrolysis
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Decorating CoNi layered double hydroxides nanosheet arrays with fullerene quantum dot anchored on Ni foam for efficient electrocatalytic water splitting and urea electrolysis

机译:用富勒烯量子点锚定的Coni分层双氢氧化物纳米片阵列,用于高效电催化水分裂和尿素电解的Ni泡沫

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摘要

The design and construction of noble-metal-free electrocatalysts with superior activity, high efficiency and robust stability is still a big challenge for overall water and urea splitting. Herein, a novel hybrid electrocatalyst comprising fullerene quantum dot (FQD)-decorated CoNi layered double hydroxides (CoNi-LDH) nanosheet arrays anchored on porous Ni foam (NF) is elaborately fabricated. Beneficial from the synergetic effect between FQD and CoNi-LDH, the obtained FQD/CoNi-LDH/NF exhibits superior electrocatalytic activity for hydrogen and oxygen evolution as well as urea oxidation under ambient atmosphere. Impressively, to drive a current density of 10 mA cm(-2), it requires cell voltages of only 1.59 and 1.45 V for overall water and urea electrolysis, respectively, in a two-electrode electrolyzer consisting of FQD/CoNi-LDH/NF as both anode and cathode. Furthermore, this catalyst also displays outstanding reaction kinetics and favorable catalytic stability. Both experimental and density functional theory (DFT) calculation results demonstrate that the charge transfer from FQD to CoNi-LDH could account for the excellent catalytic performance of the newly-synthesized catalyst, and the decorated FQD finely modulates the electronic structure of CoNi-LDH, favoring the adsorption of active hydrogen atom, and thus promote the catalytic process. The present work would provide useful guidance for designing and developing multifunctional and efficient electrocatalysts for hydrogen production.
机译:无贵巴金属电催化剂的设计和施工具有优异的活动,高效率和鲁棒稳定性仍然是整体水和尿素分裂的重要挑战。本文中,制造了一种新的杂化电催化剂,其包含富勒烯量子点(FQD) - 锚固在多孔Ni泡沫(NF)上锚定的富烯量子点(FQD)纳米层状双氢氧化物(Coni-LDH)纳米晶片阵列。有益于FQD和CONI-LDH之间的协同效应,所获得的FQD / CONI-LDH / NF在环境气氛下表现出氢和氧气进化的优异电催化活性,以及​​尿素氧化。令人印象深刻地,驱动电流密度为10 mA cm(-2),它需要仅在由FQD / CONI-LDH / NF组成的双电极电解槽中为总水和尿素电解的1.59和1.45V的电池电压作为阳极和阴极。此外,该催化剂还显示出优异的反应动力学和良好的催化稳定性。实验和密度泛函理论(DFT)计算结果表明,从FQD到Coni-LDH的电荷转移可能考虑新合成催化剂的优异催化性能,并且装饰的FQD精细调制了Coni-LDH的电子结构,赞成活性氢原子的吸附,从而促进催化过程。本作本作的作品将为设计和开发多功能和高效的电催化剂提供用于氢生产的有用指导。

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