TY - JOUR
T1 - Selective Etching of Metal-Organic Frameworks for Open Porous Structures
T2 - Mass-Efficient Catalysts with Enhanced Oxygen Reduction Reaction for Fuel Cells
AU - Li, Jingjing
AU - Xia, Wei
AU - Xu, Xingtao
AU - Jiang, Dong
AU - Cai, Ze Xing
AU - Tang, Jing
AU - Guo, Yanna
AU - Huang, Xianli
AU - Wang, Tao
AU - He, Jianping
AU - Han, Buxing
AU - Yamauchi, Yusuke
N1 - Publisher Copyright:
© 2023 American Chemical Society.
PY - 2023/12/20
Y1 - 2023/12/20
N2 - Fe-Nx-C-based single-atom (SA-Fe-N-C) catalysts have shown favorable oxygen reduction reaction (ORR) activity. However, their application in proton exchange membrane fuel cells is hindered by reduced performance owing to the thick catalyst layer, restricting mass transfer and the O2 supply. Metal-organic frameworks (MOFs) are a promising class of crystal materials, but their narrow pores exacerbate the sluggish mass-transport properties within the catalyst layer. This study developed an approach for constructing an open-pore structure in MOFs via chelation-assisted selective etching, resulting in atomically dispersed Fe atoms anchored on an N, S co-doped carbon framework. The open-pore structure reduces oxygen transport resistance in the membrane electrode assembly (MEA) with unprecedented ORR activity and stability, as evidenced by finite element simulations. In an acidic electrolyte, the OP-Fe-NC catalyst shows a half-wave potential of 0.89 V vs RHE, surpassing Pt/C by 20 mV, and a current density of 29 mA cm-2 at 0.9 ViR-free in the MEA. This study provides an effective structural strategy for fabricating electrocatalysts with high mass efficiency and atomic precision for energy storage and conversion devices.
AB - Fe-Nx-C-based single-atom (SA-Fe-N-C) catalysts have shown favorable oxygen reduction reaction (ORR) activity. However, their application in proton exchange membrane fuel cells is hindered by reduced performance owing to the thick catalyst layer, restricting mass transfer and the O2 supply. Metal-organic frameworks (MOFs) are a promising class of crystal materials, but their narrow pores exacerbate the sluggish mass-transport properties within the catalyst layer. This study developed an approach for constructing an open-pore structure in MOFs via chelation-assisted selective etching, resulting in atomically dispersed Fe atoms anchored on an N, S co-doped carbon framework. The open-pore structure reduces oxygen transport resistance in the membrane electrode assembly (MEA) with unprecedented ORR activity and stability, as evidenced by finite element simulations. In an acidic electrolyte, the OP-Fe-NC catalyst shows a half-wave potential of 0.89 V vs RHE, surpassing Pt/C by 20 mV, and a current density of 29 mA cm-2 at 0.9 ViR-free in the MEA. This study provides an effective structural strategy for fabricating electrocatalysts with high mass efficiency and atomic precision for energy storage and conversion devices.
UR - https://www.scopus.com/pages/publications/85179808024
U2 - 10.1021/jacs.3c05544
DO - 10.1021/jacs.3c05544
M3 - 文章
C2 - 38071659
AN - SCOPUS:85179808024
SN - 0002-7863
VL - 145
SP - 27262
EP - 27272
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 50
ER -