Regulating active hydrogen adsorbed on grain boundary defects of nano-nickel for boosting ammonia electrosynthesis from nitrate

被引:169
作者
Zhou, Jian [1 ]
Wen, Ming [1 ]
Huang, Rong [2 ,3 ]
Wu, Qingsheng [1 ]
Luo, Yixing [1 ]
Tian, Yakun [1 ]
Wei, Guangfeng [1 ]
Fu, Yongqing [4 ]
机构
[1] Tongji Univ, Sch Chem Sci & Engn, State Key Lab Pollut Control & Resource Reuse, Shanghai Key Lab Chem Assessment & Sustainabil, Shanghai 200092, Peoples R China
[2] East China Normal Univ, Key Lab Polar Mat & Devices MOE, Shanghai 200062, Peoples R China
[3] East China Normal Univ, Sch Phys & Elect Sci, Dept Elect, Shanghai 200062, Peoples R China
[4] Northumbria Univ, Fac Engn & Environm, Newcastle Upon Tyne NE99, England
关键词
ELECTROCATALYTIC REDUCTION; COPPER; PERSPECTIVES; FUNDAMENTALS; CATHODE; STRAIN;
D O I
10.1039/d2ee04095f
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The electrochemical nitrate reduction reaction (NitRR) into ammonia is a promising route for sustainable ammonia synthesis under ambient conditions. Since the hydrogen evolution reaction (HER) is its main competing reaction, many researchers apply materials (e.g., copper-based materials) which are inert in water splitting for enhancing the conversion efficiency of nitrate into ammonia. The HER active metals (e.g., nickel) are usually considered unsuitable for such applications. However, the NitRR relies strongly on H* which is produced from water splitting, and HER active metals such as Ni can produce massive H* for the consumption of the intermediates. Therefore, HER active metals could be promising candidates for the NitRR if the destination of H* can be well regulated, but this has not been well investigated. Herein, a strategy of grain boundary (GB) defect engineering of nickel nanoparticles has been developed to electrocatalyze the NitRR, which achieves a high NH3 rate of 15.49 mmol h(-1) cm(-2) with a faradaic efficiency of 93.0%. This NH3 rate, to the best of our knowledge, is much higher than those reported for the commonly used materials including copper or noble metal-based catalysts. Both experimental and computational simulation results reveal that the GBs can significantly suppress the HER by regulating the H* to favor its consumption in the NitRR pathway rather than forming hydrogen. The adsorption of NO3* can also be promoted, thus effectively enhancing the key rate-determining step of NO3* to NO2*.
引用
收藏
页码:2611 / 2620
页数:10
相关论文
共 71 条
  • [1] The Significance of Properly Reporting Turnover Frequency in Electrocatalysis Research
    Anantharaj, Sengeni
    Karthik, Pitchiah Esakki
    Noda, Suguru
    [J]. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2021, 60 (43) : 23051 - 23067
  • [2] Do the Evaluation Parameters Reflect Intrinsic Activity of Electrocatalysts in Electrochemical Water Splitting?
    Anantharaj, Sengeni
    Kundu, Subrata
    [J]. ACS ENERGY LETTERS, 2019, 4 (06) : 1260 - 1264
  • [3] Nitrate adsorption and reduction on Cu(100) in acidic solution
    Bae, Sang-Eun
    Stewart, Karen L.
    Gewirth, Andrew A.
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2007, 129 (33) : 10171 - 10180
  • [4] Role of Electronic Structure on Nitrate Reduction to Ammonium: A Periodic Journey
    Carvalho, O. Quinn
    Marks, Rylee
    Nguyen, Hoan K. K.
    Vitale-Sullivan, Molly E.
    Martinez, Selena C.
    Arnadottir, Liney
    Stoerzinger, Kelsey
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2022, : 14809 - 14818
  • [5] Direct rotating ring-disk measurement of the sodium borohydride diffusion coefficient in sodium hydroxide solutions
    Chatenet, M.
    Molina-Concha, M. B.
    El-Kissi, N.
    Parrour, G.
    Diard, J. -P.
    [J]. ELECTROCHIMICA ACTA, 2009, 54 (18) : 4426 - 4435
  • [6] Combination of Pd-Cu Catalysis and Electrolytic H2 Evolution for Selective Nitrate Reduction Using Protonated Polypyrrole as a Cathode
    Chen, Chen
    Li, Kan
    Li, Chen
    Sun, Tonghua
    Jia, Jinping
    [J]. ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2019, 53 (23) : 13868 - 13877
  • [7] Grain-Boundary-Rich Copper for Efficient Solar-Driven Electrochemical CO2 Reduction to Ethylene and Ethanol
    Chen, Zhiqiang
    Wang, Tuo
    Liu, Bin
    Cheng, Dongfang
    Hu, Congling
    Zhang, Gong
    Zhu, Wenjin
    Wang, Huaiyuan
    Zhao, Zhi-Jian
    Gong, Jinlong
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2020, 142 (15) : 6878 - 6883
  • [8] Nitrate reduction to ammonium: from CuO defect engineering to waste NOx-to-NH3 economic feasibility
    Daiyan, Rahman
    Tran-Phu, Thanh
    Kumar, Priyank
    Iputera, Kevin
    Tong, Zizheng
    Leverett, Joshua
    Khan, Muhammad Haider Ali
    Asghar Esmailpour, Ali
    Jalili, Ali
    Lim, Maggie
    Tricoli, Antonio
    Liu, Ru-Shi
    Lu, Xunyu
    Lovell, Emma
    Amal, Rose
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2021, 14 (06) : 3588 - 3598
  • [9] Metallic Co Nanoarray Catalyzes Selective NH3 Production from Electrochemical Nitrate Reduction at Current Densities Exceeding 2 A cm-2
    Deng, Xiaohui
    Yang, Yongpeng
    Wang, Lei
    Fu, Xian-Zhu
    Luo, Jing-Li
    [J]. ADVANCED SCIENCE, 2021, 8 (07)
  • [10] Powering denitrification: the perspectives of electrocatalytic nitrate reduction
    Duca, Matteo
    Koper, Marc T. M.
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2012, 5 (12) : 9726 - 9742