Investigating Mass Transfer Relationships in Stereolithography 3D Printed Electrodes for Redox Flow Batteries

被引:22
作者
van der Heijden, Maxime [1 ]
Kroese, Marit [1 ]
Borneman, Zandrie [2 ]
Forner-Cuenca, Antoni [1 ]
机构
[1] Eindhoven Univ Technol, Dept Chem Engn & Chem, Electrochem Mat & Syst, POB 513, NL-5600 MB Eindhoven, Netherlands
[2] Eindhoven Univ Technol, Dept Chem Engn & Chem, Membrane Mat & Proc, POB 513, NL-5600 MB Eindhoven, Netherlands
基金
荷兰研究理事会;
关键词
3D printing; carbonization; electrochemical energy storages; mass transport; porous electrodes; redox flow batteries; stereolithography;
D O I
10.1002/admt.202300611
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Porous electrodes govern the electrochemical performance and pumping requirements in redox flow batteries, yet conventional carbon-fiber-based porous electrodes have not been tailored to sustain the requirements of liquid-phase electrochemistry. 3D printing is an effective approach to manufacturing deterministic architectures, enabling the tuning of electrochemical performance and pressure drop. In this work, model grid structures are manufactured with stereolithography 3D printing followed by carbonization and tested as flow battery electrode materials. Microscopy, tomography, spectroscopy, fluid dynamics, and electrochemical diagnostics are employed to investigate the resulting electrode properties, mass transport, and pressure drop of ordered lattice structures. The influence of the printing direction, pillar geometry, and flow field type on the cell performance is investigated and mass transfer vs. electrode structure correlations are elucidated. It is found that the printing direction impacts the electrode performance through a change in morphology, resulting in enhanced performance for diagonally printed electrodes. Furthermore, mass transfer rates within the electrode are improved by helical or triangular pillar shapes or by using interdigitated flow field designs. This study shows the potential of stereolithography 3D printing to manufacture customized electrode scaffolds, which could enable multiscale structures with superior electrochemical performance and low pumping losses.
引用
收藏
页数:17
相关论文
共 69 条
[1]   3D-printed porous electrodes for advanced electrochemical flow reactors: A Ni/stainless steel electrode and its mass transport characteristics [J].
Arenas, L. F. ;
de Leon, C. Ponce ;
Walsh, F. C. .
ELECTROCHEMISTRY COMMUNICATIONS, 2017, 77 :133-137
[2]   Binder-jet powder-bed additive manufacturing (3D printing) of thick graphene-based electrodes [J].
Azhari, Amir ;
Marzbanrad, Ehsan ;
Yilman, Dilara ;
Toyserkani, Ehsan ;
Pope, Michael A. .
CARBON, 2017, 119 :257-266
[3]   Emerging electrochemical energy conversion and storage technologies [J].
Badwal, Sukhvinder P. S. ;
Giddey, Sarbjit S. ;
Munnings, Christopher ;
Bhatt, Anand I. ;
Hollenkamp, Anthony F. .
FRONTIERS IN CHEMISTRY, 2014, 2
[4]   Quantifying the impact of viscosity on mass-transfer coefficients in redox flow batteries [J].
Barton, John L. ;
Milshtein, Jarrod D. ;
Hinricher, Jesse J. ;
Brushett, Fikile R. .
JOURNAL OF POWER SOURCES, 2018, 399 :133-143
[5]  
Bauer J, 2016, NAT MATER, V15, P438, DOI [10.1038/NMAT4561, 10.1038/nmat4561]
[6]   Inertially enhanced mass transport using 3D-printed porous flow-through electrodes with periodic lattice structures [J].
Beck, Victor A. ;
Ivanovskaya, Anna N. ;
Chandrasekaran, Swetha ;
Forien, Jean-Baptiste ;
Baker, Sarah E. ;
Duoss, Eric B. ;
Worsley, Marcus A. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2021, 118 (32)
[7]   3D printed porous carbon anode for enhanced power generation in microbial fuel cell [J].
Bian, Bin ;
Shi, Dai ;
Cai, Xiaobing ;
Hu, Mingjun ;
Guo, Qiuquan ;
Zhang, Chuhong ;
Wang, Qi ;
Sun, Andy Xueliang ;
Yang, Jun .
NANO ENERGY, 2018, 44 :174-180
[8]   3D Printing for Electrochemical Energy Applications [J].
Browne, Michelle P. ;
Redondo, Edurne ;
Pumera, Martin .
CHEMICAL REVIEWS, 2020, 120 (05) :2783-2810
[9]   Application of carbon materials in redox flow batteries [J].
Chakrabarti, M. H. ;
Brandon, N. P. ;
Hajimolana, S. A. ;
Tariq, E. ;
Yufit, V. ;
Hashim, M. A. ;
Hussain, M. A. ;
Low, C. T. J. ;
Aravind, P. V. .
JOURNAL OF POWER SOURCES, 2014, 253 :150-166
[10]   Pathways to low-cost electrochemical energy storage: a comparison of aqueous and nonaqueous flow batteries [J].
Darling, Robert M. ;
Gallagher, Kevin G. ;
Kowalski, Jeffrey A. ;
Ha, Seungbum ;
Brushett, Fikile R. .
ENERGY & ENVIRONMENTAL SCIENCE, 2014, 7 (11) :3459-3477