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Amorphous nickel-cobalt bimetal-organic framework nanosheets with crystalline motifs enable efficient oxygen evolution reaction: Ligands hybridization engineering

机译:无定形镍 - 钴双金属 - 有机框架纳米型含有结晶图谱的含量高效氧气进化反应:配体杂交工程

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摘要

Development of high-efficiency and low-cost electrocatalyst for oxygen evolution reaction(OER) is very important for use at alkaline water electrolysis.Metal-organic frameworks(MOF) provide a rich platform for designing multi-functional materials due to their controllable composition and ultra-high surface area.Herein,we report our findings in the development of amorphous nickel-cobalt bimetal-organic framework nanosheets with crystalline motifs via a simple "ligands hybridization engineering" strategy.These complexes' ligands contain inorganic ligands(H_2 O and NO_3) and organic ones,hexamethylenetetramine(HMT).Further,we investigated a series of mixed-metal with multi-ligands materials as OER catalysts to explore their possible advantages and features.It is found that the Ni doping is an effective approach for optimizing the electronic configuration,changing lattice ordering degree,and thus enhancing activities of HMT-based electrocatalysts.Also,the crystalline-amorphous boundaries of various HMTbased electrocatalyst can be easily controlled by simply changing amounts of Ni-precursor added.As a result,the optimized ultrathin(Co,0.3 Ni)-HMT nanosheets can reach a current density of 10 mA cm^(-2)at low overpotential of 330 mV with a small Tafel slope of 66 mV dec^(-1).Our findings show that the electronic structure changes induced by Ni doping,2 D nanosheet structure,and MOF frameworks with multiligands compositions play critical roles in the enhancement of the kinetically sluggish electrocatalytic OER.The present study emphasizes the importance of ligands and active metals via hybridization for exploring novel efficient electrocatalysts.

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  • 来源
    《天然气化学(英文版)》 |2021年第2期|251-259|共9页
  • 作者单位

    College of Materials Science and Engineering Guilin University of Technology Guilin 541004 Guangxi China;

    College of Physics and Technology Guangxi Normal University Guilin 541004 Guangxi China;

    College of Civil Engineering and Architecture Guilin University of Technology Guilin 541004 Guangxi China;

    College of Civil Engineering and Architecture Guilin University of Technology Guilin 541004 Guangxi China;

    College of Materials Science and Engineering Guilin University of Technology Guilin 541004 Guangxi China;

    College of Materials Science and Engineering Guilin University of Technology Guilin 541004 Guangxi China;

    College of Materials Science and Engineering Guilin University of Technology Guilin 541004 Guangxi China;

    College of Materials Science and Engineering Guilin University of Technology Guilin 541004 Guangxi China;

    College of Materials Science and Engineering Guilin University of Technology Guilin 541004 Guangxi China;

    College of Physics and Technology Guangxi Normal University Guilin 541004 Guangxi China;

    Fujian Provincial Key Laboratory of Electrochemical Energy Storage Materials Fuzhou University Fuzhou 350002 Fujian China;

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