Bridging Thermal Catalysis and Electrocatalysis: Catalyzing CO2 Conversion with Carbon-Based Materials

被引:37
|
作者
Koshy, David M. [1 ,2 ]
Nathan, Sindhu S. [1 ,2 ]
Asundi, Arun S. [1 ,2 ]
Abdellah, Ahmed M. [3 ]
Dull, Samuel M. [1 ]
Cullen, David A. [4 ]
Higgins, Drew [3 ]
Bao, Zhenan [1 ,2 ]
Bent, Stacey F. [1 ,2 ]
Jaramillo, Thomas F. [1 ,2 ]
机构
[1] Stanford Univ, Dept Chem Engn, 443 Via Ortega, Stanford, CA 94305 USA
[2] SLAC Natl Accelerator Lab, SUNCAT Ctr Interface Sci & Catalysis, 2575 Sand Hill Rd, Menlo Pk, CA 94025 USA
[3] McMaster Univ, Dept Chem Engn, 1280 Main St W, Hamilton, ON L8S 4L8, Canada
[4] Oak Ridge Natl Lab, Ctr Nanophase Mat Sci, 1 Bethel Valley Rd, Oak Ridge, TN 37830 USA
基金
美国国家科学基金会; 加拿大创新基金会; 加拿大自然科学与工程研究理事会;
关键词
carbon dioxide; catalysis; electrochemistry; nitrogen-doped carbon; reverse water-gas shift; GAS SHIFT REACTION; ELECTROCHEMICAL REDUCTION; EVOLUTION; SURFACE; SITES; DIOXIDE; METHANE; DESIGN; PHASE;
D O I
10.1002/anie.202101326
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Understanding the differences between reactions driven by elevated temperature or electric potential remains challenging, largely due to materials incompatibilities between thermal catalytic and electrocatalytic environments. We show that Ni, N-doped carbon (NiPACN), an electrocatalyst for the reduction of CO2 to CO (CO2R), can also selectively catalyze thermal CO2 to CO via the reverse water gas shift (RWGS) representing a direct analogy between catalytic phenomena across the two reaction environments. Advanced characterization techniques reveal that NiPACN likely facilitates RWGS on dispersed Ni sites in agreement with CO2R active site studies. Finally, we construct a generalized reaction driving-force that includes temperature and potential and suggest that NiPACN could facilitate faster kinetics in CO2R relative to RWGS due to lower intrinsic barriers. This report motivates further studies that quantitatively link catalytic phenomena across disparate reaction environments.
引用
收藏
页码:17472 / 17480
页数:9
相关论文
共 50 条
  • [21] Carbon-based materials for low concentration CO2 capture and electrocatalytic reduction
    Hu, Yanxi
    Ding, Yangyang
    Xie, Liangyiqun
    Li, Hanyu
    Jiang, Yujing
    Gong, Ke
    Zhang, Aidi
    Zhu, Wenlei
    Wang, Yuanyuan
    Carbon, 2024, 230
  • [22] Synthesizing Liquid Fuels Over Carbon-Based Catalysts Via Co2 Conversion
    Amoo, Cederick Cyril
    Ge, Qingjie
    Ordomsky, Vitaly
    Sun, Jian
    ADVANCED SCIENCE, 2025,
  • [23] Defects in Carbon-Based Materials for Electrocatalysis: Synthesis, Recognition, and Advances
    Jia, Yi
    Yao, Xiangdong
    ACCOUNTS OF CHEMICAL RESEARCH, 2023, 56 (08) : 948 - 958
  • [24] THERMAL CONDUCTIVITY OF CARBON-BASED MATERIALS
    Kutuzov, S. V.
    Vasil'chenko, G. N.
    Chirka, T. V.
    Panov, E. N.
    REFRACTORIES AND INDUSTRIAL CERAMICS, 2013, 54 (01) : 39 - 43
  • [25] Thermal properties of carbon-based materials
    Watkins, Evan
    Parekh, Mihir
    Bhattacharya, Sriparna
    Rao, Rahul
    Rao, Apparao M.
    MATERIALS CHEMISTRY AND PHYSICS, 2024, 322
  • [26] Thermal conductivity of carbon-based materials
    Kutuzov S.V.
    Vasil'Chenko G.N.
    Chirka T.V.
    Panov E.N.
    Refractories and Industrial Ceramics, 2013, 54 (1) : 39 - 43
  • [27] Carbon-based catalytic materials for energy conversion
    Chen, Jiesheng
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2018, 256
  • [28] Carbon-based secondary compounds at elevated CO2
    Penuelas, J
    Estiarte, M
    Llusia, J
    PHOTOSYNTHETICA, 1997, 33 (02) : 313 - 316
  • [29] Experimental Study on the Thermal Reduction of CO2 by Activated Solid Carbon-Based Fuels
    Zhang, Siyuan
    Liang, Chen
    Zhu, Zhiping
    Cui, Ruifang
    ENERGIES, 2024, 17 (09)
  • [30] Carbon-based catalysts for electrochemical CO2 reduction
    Jia, Chen
    Dastafkan, Kamran
    Ren, Wenhao
    Yang, Wanfeng
    Zhao, Chuan
    SUSTAINABLE ENERGY & FUELS, 2019, 3 (11): : 2890 - 2906