Selective Electrochemical CO2 Reduction during Pulsed Potential Stems from Dynamic Interface

被引:95
|
作者
Kimura, Kevin W. [1 ]
Casebolt, Rileigh [1 ]
DaSilva, Jessica Cimada [1 ]
Kauffman, Elyse [1 ]
Kim, Jiyoon [2 ]
Dunbar, Tyler A. [1 ]
Pollock, Christopher J. [3 ]
Suntivich, Jin [2 ]
Hanrath, Tobias [1 ]
机构
[1] Cornell Univ, Robert F Smith Sch Chem & Biomol Engn, Ithaca, NY 14853 USA
[2] Cornell Univ, Mat Sci & Engn, Ithaca, NY 14853 USA
[3] Cornell Univ, Wilson Lab, Cornell High Energy Synchrotron Source CHESS, Ithaca, NY 14853 USA
来源
ACS CATALYSIS | 2020年 / 10卷 / 15期
基金
美国国家科学基金会;
关键词
electrochemical CO2 reduction; copper; pulsed potential; electrocatalysis; electrochemistry; interface; CARBON-DIOXIDE REDUCTION; CU ELECTRODES; ETHYLENE; RATIO;
D O I
10.1021/acscatal.0c02630
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
Pulsing the potential during the electrochemical CO2 reduction (CO2R) reaction using copper has been shown to influence product selectivity (i.e., to suppress the undesired hydrogen evolution reaction (HER)) and to improve electrocatalyst stability compared to the constant applied potential. However, the underlying mechanism and contribution of interfacial/surface phenomena behind the pulsed potential application remain largely unknown. We investigated the state of the copper surface during the pulsed potential electrochemical CO2R using in situ X-ray adsorption near-edge spectroscopy (XANES). We probed the surface valence of the metallic electrode and found that the Cu electrode remains metallic over a broad pulsed potential range and only oxidizes to form Cu(OH)(2) in the bulk when the pulsed potential reaches the highly oxidative limit (greater than 0.6 V vs reversible hydrogen electrode (RHE)). Our results suggest that the pulsed anodic potential influences the interfacial species on the electrode surface, i.e., the dynamic competition between protons and hydroxide adsorbates instead of bulk copper oxidation. We attribute the suppressed HER to the electroadsorption of hydroxides, which outcompetes protons for surface sites. As shown in a recent in situ infrared study [Iijima, G. et al.; ACS Catalysis 2019, 9, 6305], adsorbed hydroxides promote CO adsorption, a crucial CO2 reduction intermediate, by preventing CO from becoming inert through a near-neighbor effect. We corroborate this interpretation by demonstrating that the pulsed potential application can suppress the HER during the CO reduction just as the CO2R. Our results suggest that the pulsed potential mechanism favors CO2R over the HER due to two effects: (1) proton desorption/displacement during the anodic potential and (2) the accumulation of OHads, creating a higher pH-surface environment, promoting CO adsorption. We can describe this pulsed potential dynamic interfacial mechanism in a competing quaternary Langmuir isotherm model. The insights from this investigation have wide-ranging implications for applying pulsed potential profiles to improve other electrochemical reactions.
引用
收藏
页码:8632 / 8639
页数:8
相关论文
共 50 条
  • [31] A Highly Selective Copper-Indium Bimetallic Electrocatalyst for the Electrochemical Reduction of Aqueous CO2 to CO
    Rasul, Shahid
    Anjum, Dalaver H.
    Jedidi, Abdesslem
    Minenkov, Yury
    Cavallo, Luigi
    Takanabe, Kazuhiro
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2015, 54 (07) : 2146 - 2150
  • [32] Electrochemical CO2 reduction: From catalysts to reactive thermodynamics and kinetics
    Yu, Feihan
    Deng, Kang
    Du, Minshu
    Wang, Wenxuan
    Liu, Feng
    Liang, Daxin
    CARBON CAPTURE SCIENCE & TECHNOLOGY, 2023, 6
  • [33] Highly Selective Electrochemical Reduction of CO2 into Methane on Nanotwinned Cu
    Cai, Jin
    Zhao, Qing
    Hsu, Wei-You
    Choi, Chungseok
    Liu, Yang
    Martirez, John Mark P.
    Chen, Chih
    Huang, Jin
    Carter, Emily A.
    Huang, Yu
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2023, 145 (16) : 9136 - 9143
  • [34] Selective electrochemical CO2 reduction on Cu-Pd heterostructure
    Xie, Jia-Fang
    Chen, Jie-Jie
    Huang, Yu-Xi
    Zhang, Xing
    Wang, Wei-Kang
    Huang, Gui-Xiang
    Yu, Han-Qing
    APPLIED CATALYSIS B-ENVIRONMENTAL, 2020, 270 (270)
  • [35] Nanostructure engineering of Cu electrocatalyst for the selective C2+hydrocarbons in electrochemical CO2 reduction
    Kanase, Rohini Subhash
    Lee, Kelvin Berm
    Arunachalam, Maheswari
    Sivasankaran, Ramesh Poonchi
    Oh, Jihun
    Kang, Soon Hyung
    APPLIED SURFACE SCIENCE, 2022, 584
  • [36] Influence of Atomic Surface Structure on the Activity of Ag for the Electrochemical Reduction of CO2 to CO
    Clark, Ezra L.
    Ringe, Stefan
    Tang, Michael
    Walton, Amber
    Hahn, Christopher
    Jaramillo, Thomas F.
    Chan, Karen
    Bell, Alexis T.
    ACS CATALYSIS, 2019, 9 (05) : 4006 - 4014
  • [37] Electrochemical CO2 Reduction Reaction over Cu Nanoparticles with Tunable Activity and Selectivity Mediated by Functional Groups in Polymeric Binder
    Chang, Qiaowan
    Lee, Ji Hoon
    Liu, Yumeng
    Xie, Zhenhua
    Hwang, Sooyeon
    Marinkovic, Nebojsa S.
    Park, Ah-Hyung Alissa
    Kattel, Shyam
    Chen, Jingguang G.
    JACS AU, 2022, 2 (01): : 214 - 222
  • [38] Sub-Second Time-Resolved Surface-Enhanced Raman Spectroscopy Reveals Dynamic CO Intermediates during Electrochemical CO2 Reduction on Copper
    An, Hongyu
    Wu, Longfei
    Mandemaker, Laurens D. B.
    Yang, Shuang
    de Ruiter, Jim
    Wijten, Jochem H. J.
    Janssens, Joris C. L.
    Hartman, Thomas
    van der Stam, Ward
    Weckhuysen, Bert M.
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2021, 60 (30) : 16576 - 16584
  • [39] Cation Effect on Interfacial CO2 Concentration in the Electrochemical CO2 Reduction Reaction
    Malkani, Arnav S.
    Anibal, Jacob
    Xu, Bingjun
    ACS CATALYSIS, 2020, 10 (24): : 14871 - 14876
  • [40] Potential- and Time-Dependent Dynamic Nature of an Oxide-Derived PdIn Nanocatalyst during Electrochemical CO2 Reduction
    Bagchi, Debabrata
    Sarkar, Shreya
    Singh, Ashutosh Kumar
    Vinod, Chathakudath P.
    Peter, Sebastian C.
    ACS NANO, 2022, 16 (04) : 6185 - 6196