个人信息

  • 教师姓名:尹良君

  • 教师拼音名称:yinliangjun

  • 电子邮箱:ljyin@uestc.edu.cn

  • 所在单位:电子科学与工程学院

  • 学历:博士研究生毕业

  • 办公地点:国家电磁辐射控制材料工程技术研究中心 C318B

  • 性别:男

  • 学位:工学博士学位

  • 职称:教授

  • 在职信息:在职人员

  • 毕业院校:中国科技大学

  • 硕士生导师

  • 曾获荣誉:省部级人才计划

  • 所属院系: 电子科学与工程学院(示范性微电子学院)

  • 学科:电子信息材料与元器件

其他联系方式

  • 通讯/办公地址:

  • 移动电话:

  • 邮箱:

论文成果

Highly Efficient and Robust MoS2 Nanoflake-Modified-TiN-Ceramic-Membrane Electrode for Electrocatalytic Hydrogen Evolution Reaction

发布时间:2025-05-23  点击次数:

所属单位:[1] CAS Key Laboratory of Materials for Energy Conversion, Department of Materials Science and Engineering, University of Science and Technology of China, Anhui, Hefei, 230026, China; [2] New Energy Research Center, Research Institute of Petroleum Exploration & Development [RIPED], PetroChina, Beijing, 100083, China; [3] School of Materials Science and Engineering, He’nan Key Laboratory of Special Protective Materials, Luoyang Institute of Science and Technology, Henan, Luoyang, 471023, China; [4] School of Energy Science and Engineering, University of Electronic Science and Technology of China, 2006 Xiyuan Road, Chengdu, 611731, China; [5] CAS Key Laboratory of Mechanical Behaviors and Design of Materials, Department of Modern Mechanics, University of Science and Technology of China, Anhui, Hefei, 230026, China; [6] Department of Materials Science and Engineering, University of Ioannina, Ioannina, GR-45110, Greece

发表刊物:ACS Applied Energy Materials

关键字:Membranes - Hydrogen production - Charge transfer - Electrocatalysis - Molybdenum disulfide - Pore structure - Binders - Electrocatalysts - Ceramic materials - Layered semiconductors - Titanium nitride

摘要:Electrode design and fabrication are of major importance for hydrogen evolution reaction applications, as far as high-efficiency and low-cost production of hydrogen are concerned. This paper reports on a titanium-nitride-ceramic-membrane electrode modified by MoS2nanoflakes. Porous TiN-ceramic membranes were fabricated by phase-inversion tape-casting, followed by pressureless sintering. The as-prepared TiN membranes contained straight finger-like pores with an average diameter of 80 μm and smaller pores with an average diameter of 1-3 μm. Then, MoS2nanoflakes were perpendicularly, densely, and uniformly grown on the surface of the TiN grains through the one-pot hydrothermal method. The optimized MoS2/TiN membrane electrode displayed a low overpotential of 113 mV at 10 mA cm-2, a Tafel slope of 78 mV dec-1, a small charge transfer resistance of 1.44 Ω, and a high double-layer capacitance of 504 mF cm-2. It also exhibited excellent stability with slight degradation after 80 h testing at an overpotential of 150 mV in 0.5 M H2SO4. The high conductivity of the TiN substrate, the similar chemical bonds, which favored the rapid electron transfer between MoS2and TiN, the abundant exposed active sites of MoS2nanoflakes, and the unique dual-pore structure resulted in the above superior electrocatalytic activity. The proposed successful utilization of conventional ceramic-membrane technology to prepare electrocatalysts based on membrane electrodes has potential for large-scale application in industrial hydrogen production. ? 2021 American Chemical Society

文献类型:Journal article (JA)

卷号:4

期号:7

页面范围:6730-6739

ISSN号:25740962

是否译文:否

    清水河校区:成都市高新区(西区)西源大道2006号 邮编: 611731  
    沙河校区:成都市建设北路二段四号 邮编:610054
    蜀ICP备 05006379 号   I 川公网安备 51019002000280 号