TY - JOUR
T1 - Atomically dispersed Fe-Nx species within a porous carbon framework
T2 - an efficient catalyst for Li-CO2 batteries
AU - Ding, Junchao
AU - Xue, Hairong
AU - Xiao, Rui
AU - Xu, Yunyun
AU - Song, Li
AU - Gong, Hao
AU - Fan, Xiaoli
AU - Chang, Kun
AU - Huang, Xianli
AU - Wang, Tao
AU - He, Jianping
N1 - Publisher Copyright:
© 2022 The Royal Society of Chemistry
PY - 2022/1/27
Y1 - 2022/1/27
N2 - Li-CO2 batteries are a promising energy storage system, while their practical application is still restricted by a lack of high-performance electrocatalysts for CO2 reduction and evolution reaction. Herein, we propose a metal-organic-framework-derived Fe-N-C electrocatalyst for Li-CO2 batteries. Within the Fe-N-C electrocatalyst, abundant Fe-Nx active sites at the molecular level were formed in the porous carbon framework, profiting from a host-guest chemistry strategy between Fe-mIm nanoclusters and metal organic framework precursors in the pyrolysis process. The confinement effect of the metal organic framework host was beneficial to limit the Fe-mIm nanoclusters at the molecular level, thus resulting in the formation of Fe-Nx sites with the high catalytic activity. Moreover, the as-prepared Fe-N-C catalyst is composed of dodecahedral nanoparticles stacking to form a unique three-dimensional structure with a large specific surface area and sufficient space, which not only favored the electron transport and CO2/Li+ diffusion but also promoted the deposition of discharge product Li2CO3 to ensure a high capacity. Therefore, the Fe-N-C based Li-CO2 battery exhibits high specific capacity (13 238 mA h g−1), good rate capability and excellent cyclability (140 cycles). Therefore, these encouraging results suggest an effective approach to obtain high-performance Fe-N-C electrocatalysts for Li-CO2 batteries.
AB - Li-CO2 batteries are a promising energy storage system, while their practical application is still restricted by a lack of high-performance electrocatalysts for CO2 reduction and evolution reaction. Herein, we propose a metal-organic-framework-derived Fe-N-C electrocatalyst for Li-CO2 batteries. Within the Fe-N-C electrocatalyst, abundant Fe-Nx active sites at the molecular level were formed in the porous carbon framework, profiting from a host-guest chemistry strategy between Fe-mIm nanoclusters and metal organic framework precursors in the pyrolysis process. The confinement effect of the metal organic framework host was beneficial to limit the Fe-mIm nanoclusters at the molecular level, thus resulting in the formation of Fe-Nx sites with the high catalytic activity. Moreover, the as-prepared Fe-N-C catalyst is composed of dodecahedral nanoparticles stacking to form a unique three-dimensional structure with a large specific surface area and sufficient space, which not only favored the electron transport and CO2/Li+ diffusion but also promoted the deposition of discharge product Li2CO3 to ensure a high capacity. Therefore, the Fe-N-C based Li-CO2 battery exhibits high specific capacity (13 238 mA h g−1), good rate capability and excellent cyclability (140 cycles). Therefore, these encouraging results suggest an effective approach to obtain high-performance Fe-N-C electrocatalysts for Li-CO2 batteries.
UR - http://www.scopus.com/inward/record.url?scp=85127039053&partnerID=8YFLogxK
U2 - 10.1039/d1nr08354f
DO - 10.1039/d1nr08354f
M3 - 文章
C2 - 35266479
AN - SCOPUS:85127039053
SN - 2040-3364
VL - 14
SP - 4511
EP - 4518
JO - Nanoscale
JF - Nanoscale
IS - 12
ER -