Electrochemical fuels

Electrochemical fuels

Carbon-based fuels make up the backbone of today's energy infrastructure and have unparalleled energy efficiency. If an efficient (photo-)electrochemical route to producing carbon-based fuels from CO2 can be developed, then a range of new primary energy options, including solar, wind, geothermal, hydro, and nuclear, will be capable of providing hydrocarbon fuels for our future energy infrastructure. To enable the production of hydrocarbons in an electrochemical cell, the development of an efficient electrocatalyst to serve as the cathode is paramount. In the 1980s, copper was identified as a unique electrocatalyst material for its ability to produce hydrocarbons and alcohols with a faradaic selectivity in excess of 60%; however, the overpotential on copper electrodes is around 1 V. Since then, no other metal electrocatalysts have been found with selectivity as high as that of copper. The mechanism for how copper carries out this selective reduction, as well as the reason for the overpotential, have remained elusive. We are using density functional theory (DFT) to understand the reactivity and selectivity of the copper catalyst, and are using this knowledge to develop design principles that may enable more efficient electrocatalysts to be developed. The figure shows the elementary pathway that we have identified for this process, along with the corresponding free energetics of each elementary step as calculated with DFT. CO2 is first reduced by a proton-electron pair to form carboxy (COOH*), an adsorbate that bonds to the Cu electrocatalyst. (An asterisk, *, indicates a surface-adsorbed species.) The carboxy is then reduced to form CO*, liberating H2O in the process. In the potential-limiting step, CO* is protonated resulting in formyl (CHO*). This step is the most difficult from an energetic standpoint and determines the voltage requirements of the overall process. The formyl is further protonated to formaldehyde (CH2O*) and methoxy (CH3O*) before methane (CH4) is liberated, breaking the second C-O bond. This leaves O on the surface, which is cleared as water. Using the findings of this proposed mechanism, we are studying the energetics of CO2 reduction on other metal electrocatalyst surfaces in order to understand trends in CO2 reduction from first principles. We are using the design principles that we are developing to search for candidate materials that can perform the electroreduction of CO2 with higher efficiency than Cu without sacrificing selectivity. As candidate materials are developed using computational tools, we will work with experimental collaborators to test these materials for their activity in CO2 reduction.

Publications

Displaying 81 - 100 of 136

Kun Jiang, Seoin Back, Austin J. Akey, Chuan Xia, Yongfeng Hu, Wentao Liang, Diane Schaak, Eli Stavitski, Jens K. Nørskov, Samira Siahrostami, Haotian Wang. Nature Communications, 10, 3997. 2019.

Etienne Boutin, Min Wang, John C. Lin, Matthieu Mesnage, Daniela Mendoza, Benedikt Lassalle-Kaiser, Christopher Hahn, Thomas F. Jaramillo, Marc Robert. Angewandte Chemie International Edition, 58. 2019.

Theis L. Skafte, Zixuan Guan, Michael L. Machala, Chirranjeevi B. Gopal, Matteo Monti, Lev Martinez, Eugen Stamate, Simone Sanna, Jose A. Garrido Torres, Ethan J. Crumlin, Max García-Melchor, Michal Bajdich, William C. Chueh, Christopher Graves. Nature Energy. 2019.

Laurie A. King, McKenzie A. Hubert, Christopher Capuano, Judith Manco, Nemanja Danilovic, Eduardo Valle, Thomas R. Hellstern, Katherine Ayers, Thomas F. Jaramillo. Nature Nanotechnology, 14, 1071-1074. 2019.

Wei-Wei Zhao, Pallavi Bothra, Zhiyi Lu, Yanbin Li, Kai Liu, Li-Ping Mei, Zhenghang Zhao, Guangxu Chen, Seoin Back, Samira Siahrostami, Ambarish Kulkarni, Jens K. Nørskov, Michal Bajdich, Yi Cui. ACS Aplied Energy Materials. 2019.

Joseph A Gauthier, Meredith Fields, Michal Bajdich, Leanne D Chen, Robert B. Sandberg, Karen Chan, Jens K. Nørskov. 2019.

Hongxia Wang, Yan-Kai Tzeng, Yongfei Ji, Yanbin Li, Jun Li, Xueli Zheng, Ankun Yang, Yayuan Liu, Yongji Gong, Lili Cai, Yuzhang Li, Xiaokun Zhang, Wei Chen, Bofei Liu, Haiyu Lu, Nicholas A. Melosh, Zhi-Xun Shen, Karen Chan, Tianwei Tan, Steven Chu, Yi Cui. Nature Nanotechnology, 15, 131-137. 2020.

Lei Wang, Drew C. Higgins, Yongfei Ji, Carlos G. Morales-Guio, Karen Chan, Christopher Hahn, Thomas F. Jaramillo. Proceedings of the National Academy of Sciences. 2020.

Brian Andrew Rohr, Aayush R. Singh, Joseph A Gauthier, Michale John Statt, Jens K. Nørskov. Physical Chemistry Chemical Physics. 2020.

Joseph A. Gauthier, Leanne D. Chen, Michal Bajdich, Karen Chan. Physical Chemistry Chemical Physics

Christopher Hahn, Thomas F. Jaramillo. Joule, 4, 292-294. 2020.

Simranjit Grewal, Angela Macedo Andrade, Ziqi Liu, Jose Antonio Garrido Torres, Art J. Nelson, Ambarish Kulkarni, Michal Bajdich, Min Hwan Lee. Advanced Sustainable Systems . 2020.

Michael T. Tang, Hongjie Peng, Philomena Schlexer Lamoureux, Michal Bajdich, Frank Abild-Pedersen. Applied Catalysis B: Environmental, 279, 119384. 2020.

Thomas Ludwig, Joseph A. Gauthier, Colin F. Dickens, Kristopher S. Brown, Stefan Ringe, Karen Chan, Jens K. Nørskov. Journal of Physical Chemistry C. . 2020.

Hongjie Peng, Michael T. Tang, Xinyan Liu, Philomena Schlexer Lamoureux, Michal Bajdich, Frank Abild-Pedersen . Energy & Environmental Science. 2020.

David W. Palm, Christopher P. Muzzillo, Micha Ben-Naim, Imran Khan, Nicolas Gaillard, Thomas F. Jaramillo. Sustainable Energy Fuels, 5, 384-390. 2021.

Samuel M. Dull, Shicheng Xu, Timothy Goh, Dong Un Lee, Drew Higgins, Marat Orazov, David M. Koshy, Per Erik Vullum, Sebastian Kirsch, Gerold Huebner, Jan Torgersen, Thomas F. Jaramillo, Fritz Prinz. Cell Reports Physical Science, 2

Anna Winiwarter, Michael J. Boyd , Soren B. Scott, Drew C. Higgins , Brian Seger, Ib Chorkendorff, Thomas F. Jaramillo. ChemElectroChem, 8, 250-256. 2021.

Soo Hong Lee, John C. Lin, Maryam Farmand, Alan T. Landers, Jeremy T. Feaster, Jaime E. Avilés Acosta, Jeffrey W. Beeman, Yifan Ye, Junko Yano, Apurva Mehta, Ryan C. Davis, Thomas F. Jaramillo, Christopher Hahn, Walter S. Drisdell. Journal of the American Chemical Society, 143, 588-592. 2021.

Daniel Corral, Jeremy T. Feaster, Sadaf Sobhani, Joshua R. DeOtte, Dong Un Lee, Andrew A. Wong, Julie Hamilton, Victor A. Beck, Amitava Sarkar, Christopher Hahn, Thomas F. Jaramillo, Sarah E. Baker, Eric B. Duoss. Energy and Environmental Science. 2021.