Oxygen vacancy-attired dual-active-sites Cu/Cu0.76Co2.24O4 drives electron transfer for efficient ammonia borane dehydrogenation

被引:38
|
作者
Wang, Chenyang [1 ,2 ]
Ren, Yangyang [1 ]
Zhao, Jianling [1 ]
Sun, Shuo [1 ]
Du, Xihua [1 ]
Wang, Mengmeng [1 ]
Ma, Gang [1 ]
Yu, Haoran [1 ]
Li, Lanlan [1 ]
Yu, Xiaofei [1 ]
Zhang, Xinghua [1 ]
Lu, Zunming [1 ]
Yang, Xiaojing [1 ]
机构
[1] Hebei Univ Technol, Sch Mat Sci & Engn, Tianjin 300130, Peoples R China
[2] Yuncheng Univ, Dept Appl Chem, Yuncheng 044000, Peoples R China
基金
中国国家自然科学基金;
关键词
Dehydrogenation; Ammonia borane; Dual-active-sites catalysts; Oxygen vacancy; Electron transfer; SHELLED HOLLOW MICROSPHERES; HYDROGEN GENERATION; HIGHLY EFFICIENT; PERFORMANCE; NANOPARTICLES; EVOLUTION; CATALYSTS; STORAGE; CU;
D O I
10.1016/j.apcatb.2022.121494
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In the ammonia borane (AB) hydrolysis reaction, overcoming the weak activation of H2O by metal catalysts can be achieved by introducing transition metal oxides (TMOs) for catalyst active-sites design. Herein, we uncovered that oxygen vacancy (VO)-attired Cu/Cu0.76Co2.24O4 dual-active-sites catalysts significantly increase the hydrogen production rate of AB hydrolysis. The turnover frequency of Cu/Cu0.76Co2.24O4-VO dehydrogenation in 0.10 M NaOH can reach 50.33 molH2/(molcat.min), which is 45.9 times that of metal Cu. By means of a joint experimental and computational study, the VO defects promote the formation of electron-rich surface of Cu0.76Co2.24O4, and the Cu also enriches the surface electrons due to the strong interaction with TMOs, which enhances the activation of O-H and B-H bonds, respectively, and significantly accelerates the rate-determining step of the reaction. This work demonstrates the important role of constructive defects in regulating surface electrons of dual-active-sites catalysts on the performance enhancement and provides a broader idea for the design of excellent AB hydrolysis catalysts.
引用
收藏
页数:12
相关论文
共 6 条
  • [1] Enhanced peroxymonosulfate activation over heterogeneous catalyst Cu0.76Co2.24O4/SBA-15 for efficient degradation of sulfapyridine antibiotic
    He, Jiahong
    Xie, Taiping
    Luo, Tianhong
    Xu, Qiang
    Ye, Feng
    An, Jibin
    Yang, Jun
    Wang, Jiankang
    ECOTOXICOLOGY AND ENVIRONMENTAL SAFETY, 2021, 216
  • [2] Interfacial charge transfer induced dual-active-sites of heterostructured Cu0.8Ni0.2WO4 nanoparticles in ammonia borane methanolysis for fast hydrogen production
    Liao, Jinyun
    Shao, Youxiang
    Feng, Yufa
    Zhang, Jing
    Song, Chunxia
    Zeng, Wei
    Tang, Jinting
    Dong, Huafeng
    Liu, Quanbing
    Li, Hao
    APPLIED CATALYSIS B-ENVIRONMENT AND ENERGY, 2023, 320
  • [3] Building dual active sites Co3O4/Cu electrode to break scaling relations for enhancement of electrochemical reduction of nitrate to high-value ammonia
    Fu, Wenyang
    Hu, Zhongzheng
    Du, Yingying
    Su, Pei
    Su, Yi
    Zhang, Qizhan
    Zhou, Minghua
    JOURNAL OF HAZARDOUS MATERIALS, 2022, 434
  • [4] Efficient degradation of SCP by Co2(OH)2CO3/CuCo2S4-enhanced electron transfer-activated PMS: Dual role of Cu active site
    Peng, Cheng
    Wang, Qiongfang
    Zhang, Xin
    Dong, Lei
    Yuan, Yulin
    Zhang, Min
    Rao, Pinhua
    Gao, Naiyun
    Deng, Jing
    SEPARATION AND PURIFICATION TECHNOLOGY, 2025, 362
  • [5] Nitrogen promoted electron transfer to create highly active Cu2+ and Mn3+ sites for efficient catalytic ozonation of Ammonia over copper and nitrogen co-doped Cryptomelane-Type manganese oxide at ambient temperature
    Wang, Lisha
    Shao, Qi
    Wen, Tiancheng
    Ji, Yekun
    Zhang, Jian
    Long, Chao
    Chemical Engineering Journal, 2024, 493
  • [6] Nitrogen promoted electron transfer to create highly active Cu 2+and Mn 3+sites for efficient catalytic ozonation of Ammonia over copper and nitrogen co-doped Cryptomelane-Type manganese oxide at ambient temperature
    Wang, Lisha
    Shao, Qi
    Wen, Tiancheng
    Ji, Yekun
    Zhang, Jian
    Long, Chao
    CHEMICAL ENGINEERING JOURNAL, 2024, 493