In-situ characterization technique in electrocatalytic nitrogen reduction to ammonia

被引:6
|
作者
Yang, Peng [1 ]
Guo, Heng [1 ,2 ]
Zhang, Fengyang [1 ,2 ]
Zhou, Ying [1 ,2 ]
Niu, Xiaobin [3 ]
机构
[1] Southwest Petr Univ, Sch New Energy & Mat, Sichuan Int Sci & Technol Cooperat Base, Chengdu 610500, Peoples R China
[2] Southwest Petr Univ, State Key Lab Oil & Gas Reservoir Geol & Exploita, Chengdu 610500, Peoples R China
[3] Univ Elect Sci & Technol China, Sch Mat & Energy, Chengdu 610054, Peoples R China
来源
CHINESE SCIENCE BULLETIN-CHINESE | 2022年 / 67卷 / 24期
关键词
electrochemical ammonia synthesis; reaction mechanism; catalyst; catalytic reaction; in-situ characterization technique; N-2; ELECTROREDUCTION; CATALYSTS; GOLD;
D O I
10.1360/TB-2022-0139
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
As a basic chemical raw material, ammonia is one of the most important chemicals and noncarbon-based energy carriers. Industrial ammonia synthesis mainly relies on the Haber-Bosch process, which requires Fe (or Ru)-based catalysts, high temperature, and high pressure. High-purity H-2 gas is produced by steam reforming of methane from natural gas or coal, resulting in 3%-5% of global natural gas consumption and 1%-2% of global CO2 emissions. In recent years, under the background of energy strategy and "double carbon", using renewable energy to develop low energy consumption, low carbon emission, and environmentally friendly technology for ammonia synthesis has become important. Electrochemical nitrogen reduction technology has received extensive attention in the field of synthetic ammonia. This method can potentially provide a new pathway to an alternate Haber-Bosch process, using nitrogen gas and water as raw materials to realize the conversion of nitrogen to ammonia under ambient temperature and pressure. In this process, the nitrogen gas is adsorbed on the surface of a catalyst and then activated by electrons, and the activated nitrogen species are further hydrogenated with the protons supplied by water. Although this electrochemical nitrogen reduction technology has rapidly developed in recent years, the efficiency of ammonia synthesis is still very low and many problems are to be solved: (1) N-2 is a stable, nonpolar molecule with a high bond energy of 941 Id mol(-1), and hence. N = N is difficult to activate; (2) most catalysts have slow kinetics for nitrogen adsorption and decomposition; (3) most metal atoms are more easily bonded to hydrogen atoms, leading to a competitive hydrogen evolution reaction; (4) the nitrogen reduction reaction is a multielectron, multiproton reaction process, which involves complex proton-coupled electron transfer processes and multiple reaction intermediates, so the relevant reaction mechanisms are very unclear. Importantly, ammonia synthesis catalysts with high activity and stability have not yet been developed. Therefore, to improve the selectivity and efficiency of ammonia synthesis. in-situ characterization techniques must be developed to monitor the changes in the catalyst structure and the dynamic evolution of the reaction species under the real conditions of catalytic reactions. This paper summarizes the application of various in-situ characterization techniques, such as X-ray diffraction. X-ray photoelectron spectroscopy, X-ray absorption spectroscopy, Fourier transform infrared spectroscopy. and Raman spectroscopy. particularly in the study of catalysts and catalytic reactions. More importantly. it summarizes the existing problems and challenges in combining multiple in-situ technologies and enhancing the spatial and temporal resolution of in-situ characterization technologies for the nitrogen-water system.
引用
收藏
页码:2921 / 2936
页数:16
相关论文
共 78 条
  • [1] Electroreduction of N2 to Ammonia at Ambient Conditions on Mononitrides of Zr, Nb, Cr, and V: A DFT Guide for Experiments
    Abghoui, Younes
    Garden, Anna L.
    Howat, Jakob G.
    Vegge, Tejs
    Skulason, Egill
    [J]. ACS CATALYSIS, 2016, 6 (02): : 635 - 646
  • [2] Combined nitrogen production, ammonia synthesis, and power generation for efficient hydrogen storage
    Aziz, Muhammad
    Oda, Takuya
    Morihara, Atsushi
    Kashiwagi, Takao
    [J]. LEVERAGING ENERGY TECHNOLOGIES AND POLICY OPTIONS FOR LOW CARBON CITIES, 2017, 143 : 674 - 679
  • [3] XPS analysis of nanostructured materials and biological surfaces
    Baer, D. R.
    Engelhard, M. H.
    [J]. JOURNAL OF ELECTRON SPECTROSCOPY AND RELATED PHENOMENA, 2010, 178 : 415 - 432
  • [4] Role of Catalyst in Controlling N2 Reduction Selectivity: A Unified View of Nitrogenase and Solid Electrodes
    Bagger, Alexander
    Wan, Hao
    Stephens, Ifan E. L.
    Rossmeisl, Jan
    [J]. ACS CATALYSIS, 2021, 11 (11) : 6596 - 6601
  • [5] Combining in situ characterization methods in one set-up: looking with more eyes into the intricate chemistry of the synthesis and working of heterogeneous catalysts
    Bentrup, Ursula
    [J]. CHEMICAL SOCIETY REVIEWS, 2010, 39 (12) : 4718 - 4730
  • [6] Altering Hydrogenation Pathways in Photocatalytic Nitrogen Fixation by Tuning Local Electronic Structure of Oxygen Vacancy with Dopant
    Bo, Yanan
    Wang, Haiyun
    Lin, Yunxiang
    Yang, Tian
    Ye, Run
    Li, Yu
    Hu, Canyu
    Du, Pengye
    Hu, Yangguang
    Liu, Zhi
    Long, Ran
    Gao, Chao
    Ye, Bangjiao
    Song, Li
    Wu, Xiaojun
    Xiong, Yujie
    [J]. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2021, 60 (29) : 16085 - 16092
  • [7] Mechanism of molybdenum nitrogenase
    Burgess, BK
    Lowe, DJ
    [J]. CHEMICAL REVIEWS, 1996, 96 (07) : 2983 - 3011
  • [8] THE NITROGENASE FEMO-COFACTOR AND P-CLUSTER PAIR - 2.2-ANGSTROM RESOLUTION STRUCTURES
    CHAN, MK
    KIM, JS
    REES, DC
    [J]. SCIENCE, 1993, 260 (5109) : 792 - 794
  • [9] Coupling N2 and CO2 in H2O to synthesize urea under ambient conditions
    Chen, Chen
    Zhu, Xiaorong
    Wen, Xiaojian
    Zhou, Yangyang
    Zhou, Ling
    Li, Hao
    Tao, Li
    Li, Qiling
    Du, Shiqian
    Liu, Tingting
    Yan, Dafeng
    Xie, Chao
    Zou, Yuqin
    Wang, Yanyong
    Chen, Ru
    Huo, Jia
    Li, Yafei
    Cheng, Jun
    Su, Hui
    Zhao, Xu
    Cheng, Weiren
    Liu, Qinghua
    Lin, Hongzhen
    Luo, Jun
    Chen, Jun
    Dong, Mingdong
    Cheng, Kai
    Li, Conggang
    Wang, Shuangyin
    [J]. NATURE CHEMISTRY, 2020, 12 (08) : 717 - 724
  • [10] Single-Atom Gold Isolated Onto Nanoporous MoSe2 for Boosting Electrochemical Nitrogen Reduction
    Chen, Dechao
    Luo, Min
    Ning, Shoucong
    Lan, Jiao
    Peng, Wei
    Lu, Ying-Rui
    Chan, Ting-Shan
    Tan, Yongwen
    [J]. SMALL, 2022, 18 (04)