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Understanding the Role of Nanoscale Heterointerfaces in Core/Shell Structures for Water Splitting: Covalent Bonding Interaction Boosts the Activity of Binary Transition-Metal Sulfides

机译:了解纳米级异助叶片在水分裂芯/壳结构中的作用:共价键合相互作用促进二元过渡金属硫化物的活性

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摘要

The appropriate catalyst model with a precisely designed interface is highly desirable for revealing the real active site at the atomic level. Herein, we report a proof-of-concept strategy for creating an exposed and embedding interface model by constructing a unique Co9S8 core with a full WS2 shell (Co9S8/FWS2) and a half WS2 shell (Co9S8/HWS2) to uncover the synergistic effect of heterointerfaces on the catalytic performances. Tailoring the heteroepitaxial growth of WS2 shell, Co9S8/HWS2 with exposed Co-S-W interfaces leads to the exceptional electron density changes on edged-S atoms with large amounts of lone-pair electrons. Meanwhile, the unique Co9S8/HWS2 could accelerate the kinetic adsorption of hydrogen- and oxygen-containing intermediates. Such Co9S8/HWS2 electrocatalysts show extremely low overpotentials of 78 and 290 mV at a current density of 10 mA cm(-2) for hydrogen evolution reaction (HER) and oxygen evolution reaction, respectively. Using Co9S8/HWS2 as both the cathode and anode, an alkali electrolyzer delivers a current density of 10 mA cm(-2) at a quite low cell voltage of 1.60 V. The results of both operando Raman spectroscopy and electron spin resonance indicate the presence of S-S terminal and S-S bridging with unsaturated S atoms during the HER process. The present work reveals the synergistic effects of nanoscale interfaces on overall electrocatalytic water splitting.
机译:具有精确设计的界面的适当催化剂模型非常希望在原子水平上揭示真正的活性位点。这里,我们通过用全WS2 Shell(CO9S8 / FWS2)和半WS2 Shell(CO9S8 / HWS2)构建唯一的CO9S8核心来报告概念概念策略,用于通过构造唯一的CO9S8核心和半WS2 Shell(CO9S8 / HWS2)来揭示协同效应催化性能对异煤。用暴露的Co-S-W接口定制WS2壳的异质生长,CO9S8 / HWS2导致具有大量单个孤立电子的边缘原子的异常电子密度变化。同时,独特的CO9S8 / HWS2可以加速含氢和含氧中间体的动力学吸附。这种CO9S8 / HWS2电催化剂分别显示出极低的10mA cm(-2)的电流密度为氢进化反应(其)和氧进化反应的极低过电位。使用CO9S8 / HWS2作为阴极和阳极,碱电解槽在1.60V的相当低的电池电压下提供电流密度为10 mA cm(-2)。操作道常拉曼光谱和电子自旋共振的结果表明存在SS终端和SS桥接在她过程中的不饱和S原子。本作本作揭示了纳米级界面对整体电催化水分裂的协同作用。

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  • 来源
    《ACS applied materials & interfaces》 |2020年第5期|共12页
  • 作者单位

    Jiangnan Univ Sch Chem &

    Mat Engn Minist Educ Key Lab Synthet &

    Biol Colloids Wuxi 214122 Jiangsu Peoples R China;

    Univ Bremen Inst Appl &

    Phys Chem D-28359 Bremen Germany;

    Jiangnan Univ Sch Chem &

    Mat Engn Minist Educ Key Lab Synthet &

    Biol Colloids Wuxi 214122 Jiangsu Peoples R China;

    Jiangnan Univ Sch Chem &

    Mat Engn Minist Educ Key Lab Synthet &

    Biol Colloids Wuxi 214122 Jiangsu Peoples R China;

    Jiangnan Univ Sch Chem &

    Mat Engn Minist Educ Key Lab Synthet &

    Biol Colloids Wuxi 214122 Jiangsu Peoples R China;

    Jiangnan Univ Sch Chem &

    Mat Engn Minist Educ Key Lab Synthet &

    Biol Colloids Wuxi 214122 Jiangsu Peoples R China;

    Jiangnan Univ Sch Chem &

    Mat Engn Minist Educ Key Lab Synthet &

    Biol Colloids Wuxi 214122 Jiangsu Peoples R China;

    Jiangnan Univ Sch Chem &

    Mat Engn Minist Educ Key Lab Synthet &

    Biol Colloids Wuxi 214122 Jiangsu Peoples R China;

    Jiangnan Univ Sch Chem &

    Mat Engn Minist Educ Key Lab Synthet &

    Biol Colloids Wuxi 214122 Jiangsu Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    materials chemistry; electrospinning; core/shell structures; heterointerfaces; water splitting;

    机译:材料化学;静电纺丝;核心/壳体结构;异待饲料;水分裂;

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