Two-step electrochemical reduction of CO2 towards multi-carbon products at high current densities

被引:66
作者
Cuellar, N. S. Romero [1 ,2 ,3 ]
Scherer, C. [1 ,2 ,3 ]
Kackar, B. [2 ]
Eisenreich, W. [2 ]
Huber, C. [2 ]
Wiesner-Fleischer, K. [1 ]
Fleischer, M. [1 ]
Hinrichsen, O. [2 ,3 ]
机构
[1] Siemens AG, Corp Technol, Otto Hahn Ring 6, D-81739 Munich, Germany
[2] Tech Univ Munich, Dept Chem, Lichtenbergstr 4, D-85748 Garching, Germany
[3] Catalysis Res Ctr, Ernst Otto Fischer Str 1, D-85748 Garching, Germany
关键词
Cascade electrolysis; Ethanol; Ethylene; n-Propanol; CO/CO2; mixtures; CARBON-DIOXIDE; AQUEOUS-SOLUTIONS; ELECTROREDUCTION; INSIGHTS; MONOXIDE; CONVERSION; CATALYST; EFFICIENT; PH; HYDROCARBONS;
D O I
10.1016/j.jcou.2019.10.016
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Two-step electrochemical reduction of CO2 is investigated as an alternative to increase selectivity towards C-2 and C-3 products. In this type of proposed cascade electrocatalytic operation, CO is produced in a first step and subsequently reduced to multi-carbon products in a second step with significantly higher Faradaic efficiencies compared to a one-step process. Research efforts have been focused on the feasibility of the isolated second step with pure CO as reactant, however the interdependencies of both steps need to be considered. Accordingly, two-step electrochemical reduction of CO2 is studied in this work as an integrated system. Taking into account that the study of this technology at high current densities is crucial for industrial applicability, gas diffusion electrodes and flow-cells were used for operation at current densities above - 200 mA cm(-2). Firstly, each step was characterized separately, the first using a silver gas diffusion electrode to generate a mixture of humidified CO, H-2, and unreacted CO2; the second step using copper nanoparticles on a carbon-based gas diffusion structure to obtain C-2 and C-3 products. This step was studied using synthetic mixtures of CO2 and CO with different ratios. Furthermore, experiments with isotope labeled (CO2)-C-13 and (CO)-C-13 were performed in order to obtain some insights on the (electrochemical) reaction path of gas mixtures containing CO2 and CO. Subsequently, the two units were integrated into a system, where the full gas output of the first unit was directly fed to the second unit. The total Faradaic efficiency towards multi-carbon products of this initial system was limited to 20% at total current density of - 470 mA cm(-2). These initial results together with the isotopic labeling studies indicate that the presence of significant amounts of unreacted CO2 from the first step is detrimental for the second step. A significant improvement was achieved by introducing a CO2 absorption column between the two units and after splitting the overall charge flow applied in each cell in accordance with the main reaction at each step. With this set-up a total Faradaic efficiency towards C-2 and C-3 products of 62% at a total current density of - 300 mA cm(-2) was achieved. The results confirm the need for a gas separation technique between the two steps for a feasible two-step electrochemical reduction of CO2.
引用
收藏
页码:263 / 275
页数:13
相关论文
共 57 条
[21]  
Hori Y, 2008, MOD ASP ELECTROCHEM, P89
[22]   Upscaling and continuous operation of electrochemical CO2 to CO conversion in aqueous solutions on silver gas diffusion electrodes [J].
Jeanty, Philippe ;
Scherer, Christian ;
Magori, Erhard ;
Wiesner-Fleischer, Kerstin ;
Hinrichsen, Olaf ;
Fleischer, Maximilian .
JOURNAL OF CO2 UTILIZATION, 2018, 24 :454-462
[23]   Electrochemical conversion of CO2 to useful chemicals: current status, remaining challenges, and future opportunities [J].
Jhong, Huei-Ru Molly ;
Ma, Sichao ;
Kenis, Paul J. A. .
CURRENT OPINION IN CHEMICAL ENGINEERING, 2013, 2 (02) :191-199
[24]   High-rate electroreduction of carbon monoxide to multi-carbon products [J].
Jouny, Matthew ;
Luc, Wesley ;
Jiao, Feng .
NATURE CATALYSIS, 2018, 1 (10) :748-755
[25]   Three-dimensional porous hollow fibre copper electrodes for efficient and high-rate electrochemical carbon dioxide reduction [J].
Kas, Recep ;
Hummadi, Khalid Khazzal ;
Kortlever, Ruud ;
de Wit, Patrick ;
Milbrat, Alexander ;
Luiten-Olieman, Mieke W. J. ;
Benes, Nieck E. ;
Koper, Marc T. M. ;
Mul, Guido .
NATURE COMMUNICATIONS, 2016, 7
[26]   Influence of dilute feed and pH on electrochemical reduction of CO2 to CO on Ag in a continuous flow electrolyzer [J].
Kim, Byoungsu ;
Ma, Sichao ;
Jhong, Huei-Ru Molly ;
Kenis, Paul J. A. .
ELECTROCHIMICA ACTA, 2015, 166 :271-276
[27]   Copper nanoparticle ensembles for selective electroreduction of CO2 to C2-C3 products [J].
Kim, Dohyung ;
Kley, Christopher S. ;
Li, Yifan ;
Yang, Peidong .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2017, 114 (40) :10560-10565
[28]   Electrochemical reduction of CO2 to formate at high current density using gas diffusion electrodes [J].
Kopljar, D. ;
Inan, A. ;
Vindayer, P. ;
Wagner, N. ;
Klemm, E. .
JOURNAL OF APPLIED ELECTROCHEMISTRY, 2014, 44 (10) :1107-1116
[29]   New insights into the electrochemical reduction of carbon dioxide on metallic copper surfaces [J].
Kuhl, Kendra P. ;
Cave, Etosha R. ;
Abram, David N. ;
Jaramillo, Thomas F. .
ENERGY & ENVIRONMENTAL SCIENCE, 2012, 5 (05) :7050-7059
[30]   MASS ISOTOPOMER ANALYSIS - THEORETICAL AND PRACTICAL CONSIDERATIONS [J].
LEE, WNP ;
BYERLEY, LO ;
BERGNER, EA ;
EDMOND, J .
BIOLOGICAL MASS SPECTROMETRY, 1991, 20 (08) :451-458