Interface Optimization Between Porous Transport Layer and Catalyst Layer in Proton Exchange Membrane Water Electrolyzers

被引:1
作者
Zhu, Yanhua [1 ]
Liu, Yun [1 ]
Zhang, Fan [3 ]
Fan, Zihao [1 ]
Kang, Zhenye [1 ,2 ]
Wan, Xiaohan [4 ]
Wang, Guanxiong [4 ]
Li, Jing [1 ]
Tian, Chao [3 ]
Lei, Hui [5 ,6 ]
Wang, Weina [3 ,5 ,6 ,7 ]
Tian, Xinlong [1 ]
机构
[1] Hainan Univ, Sch Marine Sci & Engn, Sch Mech & Elect Engn, Sch Chem & Chem Engn,State Key Lab Marine Resource, Haikou 570228, Peoples R China
[2] Jilin Univ, Coll Chem, State Key Lab Inorgan Synth & Preparat Chem, Changchun 130012, Peoples R China
[3] Hainan Elect Power Co Ltd, State Power Investment Grp SP, Haikou 570100, Peoples R China
[4] Shenzhen Acad Aerosp Technol, Shenzhen 518057, Peoples R China
[5] SP Zhiyun Hainan Green Energy Technol Co Ltd, Haikou 570100, Peoples R China
[6] Hainan Rongchuang Shuneng Technol Co Ltd, Haikou 570100, Peoples R China
[7] Hainan Univ, Sch Informat & Commun Engn, Haikou 570228, Peoples R China
基金
中国国家自然科学基金;
关键词
Porous transport layer; Catalyst layer; Proton exchange membrane water electronlyzer (PEMWE); Interface; Schottky effect; GAS-DIFFUSION LAYER; CURRENT COLLECTORS; PERFORMANCE; MASS;
D O I
10.1007/s40242-025-5001-4
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The porous transport layer (PTL) and the catalyst layer are two critical components in the proton exchange membrane water electrolyzer (PEMWE). The gas/liquid two-phase transport and electron/heat transfer between the two layers have a significant impact on the performance of the whole device. Catalyst layers and PTLs prepared by different methods or structures have unique effects. The coordination between the PTL and catalyst layer can greatly impact the catalyst and PEMWE performance, which is induced by the interface between the two. However, this coupled effect has not been well studied and the optimized interface mechanism is still unclear. In this work, three types of PTLs, including carbon paper, Ti felt and sintered Ti particles, were adopted, and their interfacial relationships between catalyst layers were investigated. We found that the interface between PTL and catalyst layer can be regulated by PTL structure, surface property, and catalyst layer thickness. The surface coating improves the electron transport at the interface and in the PTL itself, thereby increasing the local current density and weakening the influence of Schottky basis and pinch-off effects, and thus improving the PEMWE performance. The catalyst layer thickness could affect the in-plane electrical conductivity, which adjusts the active site distribution and enhances the local current density uniformity. This work reveals the coupled effects of PTL and catalyst layer on the interface and PEMWE performance, which provides the optimization strategy for the interface in PEMWE.
引用
收藏
页码:484 / 494
页数:11
相关论文
共 57 条
[31]   Exploring the Interface of Skin-Layered Titanium Fibers for Electrochemical Water Splitting [J].
Liu, Chang ;
Shviro, Meital ;
Gago, Aldo S. ;
Zaccarine, Sarah F. ;
Bender, Guido ;
Gazdzicki, Pawel ;
Morawietz, Tobias ;
Biswas, Indro ;
Rasinski, Marcin ;
Everwand, Andreas ;
Schierholz, Roland ;
Pfeilsticker, Jason ;
Muller, Martin ;
Lopes, Pietro P. ;
Eichel, Rudiger-A ;
Pivovar, Bryan ;
Pylypenko, Svitlana ;
Friedrich, K. Andreas ;
Lehnert, Werner ;
Carmo, Marcelo .
ADVANCED ENERGY MATERIALS, 2021, 11 (08)
[32]   Performance enhancement of PEM electrolyzers through iridium-coated titanium porous transport layers [J].
Liu, Chang ;
Carmo, Marcelo ;
Bender, Guido ;
Everwand, Andreas ;
Lickert, Thomas ;
Young, James L. ;
Smolinka, Tom ;
Stolten, Detlef ;
Lehnert, Werner .
ELECTROCHEMISTRY COMMUNICATIONS, 2018, 97 :96-99
[33]   Efficient and Stable Proton Exchange Membrane Water Electrolysis Enabled by Stress Optimization [J].
Liu, Jiawei ;
Liu, Han ;
Yang, Yang ;
Tao, Yongbing ;
Zhao, Lanjun ;
Li, Shuirong ;
Fang, Xiaoliang ;
Lin, Zhiwei ;
Wang, Huakun ;
Tao, Hua Bing ;
Zheng, Nanfeng .
ACS CENTRAL SCIENCE, 2024, 10 (04) :852-859
[34]   Effects of pore size gradient in the substrate of a gas diffusion layer on the performance of a proton exchange membrane fuel cell [J].
Oh, Hwanyeong ;
Park, Jaeman ;
Min, Kyoungdoug ;
Lee, Eunsook ;
Jyoung, Jy-Young .
APPLIED ENERGY, 2015, 149 :186-193
[35]   Influence of the porous transport layer properties on the mass and charge transfer in a segmented PEM electrolyzer [J].
Parra-Restrepo, Julian ;
Bligny, Remi ;
Dillet, Jerome ;
Didierjean, Sophie ;
Stemmelen, Didier ;
Moyne, Christian ;
Degiovanni, Alain ;
Maranzana, Gael .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (15) :8094-8106
[36]   Catalysts for fuel cell transportation and hydrogen related uses [J].
Pivovar, Bryan .
NATURE CATALYSIS, 2019, 2 (07) :562-565
[37]  
Scheuermann AG, 2016, NAT MATER, V15, P99, DOI [10.1038/NMAT4451, 10.1038/nmat4451]
[38]   Hierarchically Structured Porous Transport Layers for Polymer Electrolyte Water Electrolysis [J].
Schuler, Tobias ;
Ciccone, Joseph M. ;
Krentscher, Bernd ;
Marone, Federica ;
Peter, Christian ;
Schmidt, Thomas J. ;
Buchi, Felix N. .
ADVANCED ENERGY MATERIALS, 2020, 10 (02)
[39]   Polymer Electrolyte Water Electrolysis: Correlating Performance and Porous Transport Layer Structure: Part II. Electrochemical Performance Analysis [J].
Schuler, Tobias ;
Schmidt, Thomas J. ;
Buchi, Felix N. .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2019, 166 (10) :F555-F565
[40]   Influence of Operating Conditions and Material Properties on the Mass Transport Losses of Polymer Electrolyte Water Electrolysis [J].
Suermann, Michel ;
Takanohashi, Kazuhiro ;
Lamibrac, Adrien ;
Schmidt, Thomas J. ;
Buchi, Felix N. .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2017, 164 (09) :F973-F980