Kinetic-Controlled Growth of Bi Nanostructures for Electrocatalytic CO2 Reduction

被引:8
|
作者
Dong, Wan Jae [1 ]
Hong, Dae Myung [1 ]
Park, Jae Yong [1 ]
Kim, Sungjoo [1 ]
Yoo, Chul Jong [2 ]
Lee, Jong-Lam [1 ,2 ]
机构
[1] Pohang Univ Sci & Technol POSTECH, Dept Mat Sci & Engn, Pohang 790784, Gyungbuk, South Korea
[2] Pohang Univ Sci & Technol POSTECH, Div Adv Mat Sci, Pohang 790784, Gyungbuk, South Korea
基金
新加坡国家研究基金会;
关键词
bismuth; nano-sheet; nano-branch; kinetic-controlled growth; carbon dioxide reduction; formic acid;
D O I
10.1149/1945-7111/abdc6f
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Bi-based catalysts have attracted great attention for efficient electrocatalytic carbon dioxide (CO2) reduction to formic acid (HCOOH). However, the effect of the growth kinetics of Bi nanostructures on morphology and their catalytic performance has not been studied. Here, we varied the Bi3+ precursor concentration in the electrolyte to control the electrochemical growth rate of Bi nanostructures. It was found that the growth rate determines not only the geometric structure but also the microstructure of Bi nanostructures. The slow growth with a low precursor concentration (1 mM) produced Bi nano-sheet (NS) with high crystallinity in (012) preferred orientation. But, the polycrystalline Bi nano-branch (NB) with a larger surface area was formed by a faster growth condition (precursor concentration = 30 mM). As a result, Bi NB achieved a higher FEHCOOH of 97.1% than Bi NS (FEHCOOH = 81.5%) at -1.0 V-RHE. This work reveals that the growth condition of the Bi nanostructures plays a significant role in designing the catalysts for the efficient CO2 reduction reaction. (c) 2021 The Electrochemical Society ("ECS"). Published on behalf of ECS by IOP Publishing Limited.
引用
收藏
页数:6
相关论文
共 50 条
  • [41] Solvents and Supporting Electrolytes in the Electrocatalytic Reduction of CO2
    Koenig, Maximilian
    Vaes, Jan
    Klemm, Elias
    Pant, Deepak
    ISCIENCE, 2019, 19 : 135 - 160
  • [42] Electrocatalytic behaviors of metal nanoparticles for CO2 reduction
    Lee, Yongjin
    Im, SangHyeok
    Lee, Dongil
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2016, 251
  • [43] Electrocatalytic CO2 Reduction to Alcohols: Progress and Perspectives
    Long, Ying
    Chen, Zhijie
    Wu, Lan
    Liu, Xiaoqing
    Hou, Ya-Nan
    Vernuccio, Sergio
    Wei, Wei
    Wong, Wai-Yeung
    Ni, Bing-Jie
    SMALL SCIENCE, 2024, 4 (08):
  • [44] Mesoporous tin oxide for electrocatalytic CO2 reduction
    Ge, Hongtao
    Gu, Zhengxiang
    Han, Peng
    Shen, Hanchen
    Al-Enizi, Abdullah M.
    Zhang, Lijuan
    Zheng, Gengfeng
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2018, 531 : 564 - 569
  • [45] Cascade Electrocatalytic and Thermocatalytic Reduction of CO2 to Propionaldehyde
    Zhang, Jie
    Kang, Xingsi
    Yan, Yuchen
    Ding, Xue
    He, Lin
    Li, Yanguang
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2024, 63 (12)
  • [46] Heterogeneous molecular catalysts for electrocatalytic CO2 reduction
    Nathan Corbin
    Joy Zeng
    Kindle Williams
    Karthish Manthiram
    Nano Research, 2019, 12 : 2093 - 2125
  • [47] Heterogeneous molecular catalysts for electrocatalytic CO2 reduction
    Corbin, Nathan
    Zeng, Joy
    Williams, Kindle
    Manthiram, Karthish
    NANO RESEARCH, 2019, 12 (09) : 2093 - 2125
  • [48] Electrocatalytic CO2 reduction using modified electrodes
    Elias, Shlomi
    Quinson, Jonathan
    Britovsek, George J. P.
    Kucernak, Anthony R. J.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2011, 242
  • [49] Electrocatalytic reduction of CO2 on chiral Cu surfaces
    Fang, Yuxi
    Han, Lu
    Che, Shunai
    CHINESE JOURNAL OF STRUCTURAL CHEMISTRY, 2023, 42 (08)
  • [50] Electrocatalytic CO2 Reduction to Fuels: Progress and Opportunities
    Resasco, Joaquin
    Bell, Alexis T.
    TRENDS IN CHEMISTRY, 2020, 2 (09): : 825 - 836