TY - JOUR
T1 - Materials informatics-guided superior electrocatalyst
T2 - A case of pyrolysis-free single-atom coordinated with N-graphene nanomesh
AU - Xia, Wei
AU - Hou, Zhufeng
AU - Tang, Jing
AU - Li, Jingjing
AU - Chaikittisilp, Watcharop
AU - Kim, Yena
AU - Muraoka, Koki
AU - Zhang, Hongjuan
AU - He, Jianping
AU - Han, Buxing
AU - Yamauchi, Yusuke
N1 - Publisher Copyright:
© 2022 Elsevier Ltd
PY - 2022/4
Y1 - 2022/4
N2 - In this work, we apply materials informatics (MI) techniques for property prediction of nanoporous carbon-based electrocatalyst for oxygen reduction reaction (ORR), which is a key, but sluggish reaction in proton exchange membrane fuel cells and metal–air batteries. Nitrogen-doped graphene nanomesh (NGM) was identified as an appropriate ORR catalyst by the MI techniques, which is a useful support to producing designed nitrogen-coordinated single-atom catalysts via pyrolysis-free pathway. Herein, single-atom catalysts (FePc/NGM) with predictable structures were fabricated by anchoring iron phthalocyanine (FePc) on the MI-guided NGM. Compared with the randomly creating Fe-Nx moieties on a carbon matrix via pyrolysis, FePc were riveted onto NGM via axial interactions between Fe-N4 moieties in FePc and nitrogen in NGM graphene matrix. As a result, Fe-N5 with superior catalytic activity for ORR was created. The elaborately designed FePc/NGM possesses an outstanding electrocatalytic activity owing to its low-dimensional structure and the significant change in electronic and geometric structures arising from the rehybridization of Fe 3d orbitals from FePc with the nitrogen orbitals from NGM at the axial direction. This work demonstrates that fusion of experiments with material informatics is indispensable for the practice of the inorganic synthetic chemistry.
AB - In this work, we apply materials informatics (MI) techniques for property prediction of nanoporous carbon-based electrocatalyst for oxygen reduction reaction (ORR), which is a key, but sluggish reaction in proton exchange membrane fuel cells and metal–air batteries. Nitrogen-doped graphene nanomesh (NGM) was identified as an appropriate ORR catalyst by the MI techniques, which is a useful support to producing designed nitrogen-coordinated single-atom catalysts via pyrolysis-free pathway. Herein, single-atom catalysts (FePc/NGM) with predictable structures were fabricated by anchoring iron phthalocyanine (FePc) on the MI-guided NGM. Compared with the randomly creating Fe-Nx moieties on a carbon matrix via pyrolysis, FePc were riveted onto NGM via axial interactions between Fe-N4 moieties in FePc and nitrogen in NGM graphene matrix. As a result, Fe-N5 with superior catalytic activity for ORR was created. The elaborately designed FePc/NGM possesses an outstanding electrocatalytic activity owing to its low-dimensional structure and the significant change in electronic and geometric structures arising from the rehybridization of Fe 3d orbitals from FePc with the nitrogen orbitals from NGM at the axial direction. This work demonstrates that fusion of experiments with material informatics is indispensable for the practice of the inorganic synthetic chemistry.
KW - Composite materials
KW - Electrocatalysis of oxygen reduction
KW - Materials informatics techniques
KW - Nanoporous carbon
KW - Two-dimensional
UR - https://www.scopus.com/pages/publications/85122654075
U2 - 10.1016/j.nanoen.2021.106868
DO - 10.1016/j.nanoen.2021.106868
M3 - 文章
AN - SCOPUS:85122654075
SN - 2211-2855
VL - 94
JO - Nano Energy
JF - Nano Energy
M1 - 106868
ER -