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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Two-dimensional dual carbon-coupled defective nickel quantum dots towards highly efficient overall water splitting
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Two-dimensional dual carbon-coupled defective nickel quantum dots towards highly efficient overall water splitting

机译:二维双碳耦合缺陷镍量子点朝向高效的整体水分裂

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摘要

Rational design of highly efficient and cost-effective bifunctional electrocatalyst for both oxygen evolution reaction (OER) and hydrogen evolution reaction (HER) is extremely desirable but still challenging for electrochemical water splitting. Herein, we report the synthesis of hybrid composites consisting of defective nickel quantum dots (Ni QD) encapsulated in N-doped carbon (NC) anchored on the surface of reduced graphene oxide (Ni QD@NC@rGO) through a low-temperature pyrolysis of rGO-wrapped two dimensional (2D) sheet-like nickel zeolite imidazolate framework. The as-fabricated Ni QD@NC@rGO catalysts only require overpotentials of 265 and 133 mV to deliver a current density of 10 mA cm(-2) for OER and HER in 1.0 M KOH, respectively. Remarkably, an alkaline electrolyzer constructed with Ni QD@NC@rGO catalyst for both anode and cathode can drive a current density of 10 mA cm(-2) at a low cell voltage of 1.563 V, superior to that of the Pt@CI lIrO(2)@C couple (1.614 V). The enhanced electrocatalytic performance of Ni QD@NC@rGO can be mainly attributed to its 2D hierarchically porous structure and the synergistic effect of the highly dispersed Ni QD, in-situ coupled thin layer NC and rGO, giving rise to a large surface active sites exposure, enhanced electron/ion transfer ability and optimal Gibbs free energy of adsorption.
机译:用于氧气进化反应(Oer)和氢进化反应(她)的高效且经济高效的双官能电催化剂的合理设计是非常理想的,但仍然挑战电化学水分裂。在此,我们报告了一种杂种复合材料的合成,其包括缺陷的镍量子点(Ni QD),其包封在锚定的N-掺杂的碳(NC)上,通过低温热解锚定的N-掺杂的碳(Ni QC @ Rgo)上锚定RGO包裹的二维(2D)片状镍沸石咪唑酯骨架。 AS制造的Ni QD @ NC @ Rgo催化剂仅需要265和133mV的过电位,以分别为oer和她的10 mA cm(-2)的电流密度分别为1.0 m KOH。值得注意的是,用Ni QD @ NC @ rgo催化剂为阳极和阴极构成的碱性电解器可以在低电池电压为1.563V的低电池电压下驱动电流密度,优于Pt @ Ci Liro。 (2)@c夫妇(1.614 v)。 Ni QD @ NC @ rgo的增强电催化性能主要归因于其2D分层多孔结构和高度分散的Ni QD,原位耦合薄层NC和RGO的协同效应,从而产生大表面活性位点曝光,增强的电子/离子转移能力和最佳的吸附性Gibbs自由能。

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