Advanced approach for active and durable proton exchange membrane fuel cells: Coupling synergistic effects of M-N-C nanocomposites

被引:0
作者
Jang, Yeju [1 ]
Yi, Seung Yeop [1 ]
Lee, Jinwoo [1 ]
机构
[1] Korea Adv Inst Sci & Technol KAIST, Dept Chem & Biomol Engn, 291 Daehak Ro, Daejeon 34141, South Korea
基金
新加坡国家研究基金会;
关键词
atomically dispersed catalysts; coupling synergistic effects; nanocomposites; oxygen reduction reactions; polymer electrolyte membrane fuel cells; NITROGEN-CARBON CATALYSTS; OXYGEN REDUCTION REACTION; DURABILITY; DESIGN; ELECTROCATALYSTS; NANOPARTICLES; PLATINUM; SITES;
D O I
10.1002/eom2.12488
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Atomically dispersed metal and nitrogen co-doped carbon (M-N-C) is a promising oxygen reduction reaction (ORR) catalyst for electrochemical energy storage and conversion applications but typically suffers from low durability and activity under the acidic conditions of practical polymer electrolyte exchange membrane fuel cells (PEMFCs). Recently, the performance of M-N-C nanocomposites under acidic ORR conditions has been enhanced by exploiting the synergistic coupling effects of their constituents (single-atom sites, nanoclusters, and nanoparticles). The unique geometric structures formed by the coupling of diverse sites in these nanocomposites provide optimal electronic structures and efficient reaction pathways, thus resulting in high activity and long-term durability. This work provides an overview of M-N-C nanocomposites as ORR electrocatalysts under practical PEMFC conditions, focusing on activity and durability enhancement methods and highlighting the strategies used to prepare electrocatalytically efficient M-N-C nanocomposites containing no or low amounts of platinum group metals. Progress in the development of advanced M-N-C nanocomposites as acidic ORR catalysts is discussed, and the pivotal role of synergistic effects resulting from the coupling sites within the nanocomposites is explored together with the characterization methods used to elucidate these effects. Finally, the challenges and prospects of developing M-N-C nanocomposites as next-generation electrocatalysts are presented.image
引用
收藏
页数:26
相关论文
共 126 条
[21]   Carbon-Based Electrocatalysts for Acidic Oxygen Reduction Reaction [J].
Cui, Pengbo ;
Zhao, Linjie ;
Long, Yongde ;
Dai, Liming ;
Hu, Chuangang .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2023, 62 (14)
[22]   What would it take for renewably powered electrosynthesis to displace petrochemical processes? [J].
De Luna, Phil ;
Hahn, Christopher ;
Higgins, Drew ;
Jaffer, Shaffiq A. ;
Jaramillo, Thomas F. ;
Sargent, Edward H. .
SCIENCE, 2019, 364 (6438) :350-+
[23]   Transition metal/carbon hybrids for oxygen electrocatalysis in rechargeable zinc-air batteries [J].
Douka, Abdoulkader Ibro ;
Yang, Huan ;
Huang, Lei ;
Zaman, Shahid ;
Yue, Ting ;
Guo, Wei ;
You, Bo ;
Xia, Bao Yu .
ECOMAT, 2021, 3 (01)
[24]   Low-PGM and PGM-Free Catalysts for Proton Exchange Membrane Fuel Cells: Stability Challenges and Material Solutions [J].
Du, Lei ;
Prabhakaran, Venkateshkumar ;
Xie, Xiaohong ;
Park, Sehkyu ;
Wang, Yong ;
Shao, Yuyan .
ADVANCED MATERIALS, 2021, 33 (06)
[25]   Neodymium-Evoked Valence Electronic Modulation to Balance Reversible Oxygen Electrocatalysis [J].
Fan, Chuang ;
Wang, Xuan ;
Wu, Xiangrui ;
Chen, Yaoshun ;
Wang, Zixiao ;
Li, Meng ;
Sun, Dongmei ;
Tang, Yawen ;
Fu, Gengtao .
ADVANCED ENERGY MATERIALS, 2023, 13 (02)
[26]   Multitechnique Characterization of a Polyaniline-Iron-Carbon Oxygen Reduction Catalyst [J].
Ferrandon, Magali ;
Kropf, A. Jeremy ;
Myers, Deborah J. ;
Artyushkova, Kateryna ;
Kramm, Ulrike ;
Bogdanoff, Peter ;
Wu, Gang ;
Johnston, Christina M. ;
Zelenay, Piotr .
JOURNAL OF PHYSICAL CHEMISTRY C, 2012, 116 (30) :16001-16013
[27]   Synaptic Resistor Circuits Based on Al Oxide and Ti Silicide for Concurrent Learning and Signal Processing in Artificial Intelligence Systems [J].
Gao, Dawei ;
Shenoy, Rahul ;
Yi, Suin ;
Lee, Jungmin ;
Xu, Mingjie ;
Rong, Zixuan ;
Deo, Atharva ;
Nathan, Dhruva ;
Zheng, Jian-Guo ;
Williams, R. Stanley ;
Chen, Yong .
ADVANCED MATERIALS, 2023, 35 (15)
[28]   Enabling Direct H2O2 Production in Acidic Media through Rational Design of Transition Metal Single Atom Catalyst [J].
Gao, Jiajian ;
Yang, Hong Bin ;
Huang, Xiang ;
Hung, Sung-Fu ;
Cai, Weizheng ;
Jia, Chunmiao ;
Miao, Shu ;
Chen, Hao Ming ;
Yang, Xiaofeng ;
Huang, Yanqiang ;
Zhang, Tao ;
Liu, Bin .
CHEM, 2020, 6 (03) :658-674
[29]   Mechanism of Particle-Mediated Inhibition of Demetalation for Single-Atom Catalytic Sites in Acidic Electrochemical Environments [J].
Gao, Xiao bin ;
Wang, Yucheng ;
Xu, Weicheng ;
Huang, Huan ;
Zhao, Kuangmin ;
Ye, Hong ;
Zhou, Zhi-You ;
Zheng, Nanfeng ;
Sun, Shi-Gang .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2023, 145 (28) :15528-15537
[30]  
Greeley J, 2009, NAT CHEM, V1, P552, DOI [10.1038/NCHEM.367, 10.1038/nchem.367]