Oxygen Transport Routes in Ionomer Film on Polyhedral Platinum Nanoparticles

被引:41
作者
Fan, Linhao [1 ,2 ]
Wang, Yun [2 ]
Jiao, Kui [1 ]
机构
[1] Tianjin Univ, State Key Lab Engines, Tianjin 300350, Peoples R China
[2] Univ Calif Irvine, Dept Mech & Aerosp Engn, Renewable Energy Resources Lab, Irvine, CA 92697 USA
基金
中国国家自然科学基金;
关键词
molecular dynamics; oxygen permeation; ionomer film; Pt nanoparticle; polyhedral shape; route; MOLECULAR-DYNAMICS SIMULATIONS; REDUCTION REACTION; CATALYST LAYER; CARBON SUPPORT; SHAPE CONTROL; MEMBRANE; PERFORMANCE; ELECTROCATALYSTS; NANOCRYSTALS; RESISTANCES;
D O I
10.1021/acsnano.0c07856
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Understanding the O-2 permeation phenomenon in the ionomer thin film on platinum (Pt) nanoparticles is vital to improve the electrocatalyst performance of proton exchange membrane fuel cells at a low Pt loading. In this study, the ionomer film structure, O-2 density distribution, transport fluxes, and permeation routes are investigated for carbon-supported polyhedral Pt nanoparticles (cube and tetrahedron) in the facet, edge, and corner regions. The molecular dynamic simulation takes into account the molecular interactions among the ionomer, Pt nanoparticles, carbon support, and O-2 molecules. The results show that a dense ionomer ultrathin layer with a tight arrangement of perfluorosulfonic acid is present on the Pt facets (namely region A). In the ionomer near the Pt edges and corners (namely region B), the structure is less dense due to the weaker Pt attraction, resulting in a higher O-2 density than that in region A. O-2 fluxes in the different regions show that approximately 90% of O-2 molecules reach the Pt cube and tetrahedron nanoparticles via their upper corner and edge regions. In the vicinity of Pt nanoparticles, O-2 permeation routes are inferred to penetrating region B to the Pt upper corners or edges instead of region A to the Pt facets.
引用
收藏
页码:17487 / 17495
页数:9
相关论文
共 42 条
[1]   Current Status and Future Development of Catalyst Materials and Catalyst Layers for Proton Exchange Membrane Fuel Cells: An Industrial Perspective [J].
Banham, Dustin ;
Ye, Siyu .
ACS ENERGY LETTERS, 2017, 2 (03) :629-638
[2]   Inhomogeneous Transport in Model Hydrated Polymer Electrolyte Supported Ultrathin Films [J].
Borges, Daiane Damasceno ;
Franco, Alejandro A. ;
Malek, Kourosh ;
Gebel, Gerard ;
Mossa, Stefano .
ACS NANO, 2013, 7 (08) :6767-6773
[3]   Effects of Pt particle on structure and protons transport of Nafion membrane [J].
Chen, Lei ;
Xiang, Xing ;
Wang, Shanyou ;
Tao, Wenquan .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2020, 148
[4]   Analysis of Oxygen Transport in Cathode Catalyst Layer of Low-Pt-Loaded Fuel Cells [J].
Choo, Min-Ju ;
Oh, Keun-Hwan ;
Park, Jung-Ki ;
Kim, Hee-Tak .
CHEMELECTROCHEM, 2015, 2 (03) :382-388
[5]  
Fan L., J ELECTROCHEM SOC
[6]   Effects of Side Chain Length on the Structure, Oxygen Transport and Thermal Conductivity for Perfluorosulfonic Acid Membrane: Molecular Dynamics Simulation [J].
Fan, Linhao ;
Xi, Fuqiang ;
Wang, Xiaoyang ;
Xuan, Jin ;
Jiao, Kui .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2019, 166 (08) :F511-F518
[7]   Nanoparticle adhesion in proton exchange membrane fuel cell electrodes [J].
He, Qianping ;
Joy, David C. ;
Keffer, David J. .
JOURNAL OF POWER SOURCES, 2013, 241 :634-646
[8]   Synergistic effect of hydrothermal Co-liquefaction of Spirulina platensis and Lignin: Optimization of operating parameters by response surface methodology [J].
He, Zhixia ;
Wang, Bin ;
Zhang, Bo ;
Feng, Huan ;
Kandasamy, Sabariswaran ;
Chen, Haitao .
ENERGY, 2020, 201
[9]   An overview of development and challenges in hydrogen powered vehicles [J].
Hosseini, Seyed Ehsan ;
Butler, Brayden .
INTERNATIONAL JOURNAL OF GREEN ENERGY, 2020, 17 (01) :13-37
[10]   Nanophase-segregation and transport in Nafion 117 from molecular dynamics simulations:: Effect of monomeric sequence [J].
Jang, SS ;
Molinero, V ;
Çagin, T ;
Goddard, WA .
JOURNAL OF PHYSICAL CHEMISTRY B, 2004, 108 (10) :3149-3157