TY - JOUR
T1 - Platinum Nanocrystals Embedded in Three-Dimensional Graphene for High-Performance Li-O2Batteries
AU - Cao, Dong
AU - Hao, Yizhou
AU - Wang, Yahui
AU - Bai, Ying
AU - Li, Yu
AU - Wang, Xinran
AU - Chen, Jianhao
AU - Wu, Chuan
N1 - Publisher Copyright:
© 2022 American Chemical Society. All rights reserved.
PY - 2022/9/14
Y1 - 2022/9/14
N2 - Graphene is considered as a promising cathode candidate for Li-O2batteries because of its excellent electronic conductivity and oxygen adsorption capacity. However, for Li-O2batteries, the self-stacking effect caused by two-dimensional (2D) structural properties of graphene is not conducive to the rapid oxygen transport and mass transfer process, thereby affecting the electrode kinetics. Here, we successfully prepared three-dimensional (3D) graphene with different scales by plasma-enhanced chemical vapor deposition and physical pulverization strategies, in which CH4is the carbon source and H2/Ar mixed gas is the etching gas. Meanwhile, we fabricated 3D graphene-based Pt nanocatalysts by an ultraviolet-assisted construction strategy and then applied them in Li-O2batteries. Systematic studies reveal a special relevance between electrochemical performance and graphene particle size, and the smaller-sized 3D graphene can better maintain the microstructure distribution in both the Pt embedding process and electrochemical applications, which is beneficial to the transport of oxygen and Li ions, lowering the decomposition energy barrier of Li2O2, and further obtaining reduced charge overpotential (0.22 V) and prolonged cycle life for Li-O2batteries. Finally, we anticipate that this work could promote the practical application of 2D materials and larger-sized 3D materials in Li-O2batteries.
AB - Graphene is considered as a promising cathode candidate for Li-O2batteries because of its excellent electronic conductivity and oxygen adsorption capacity. However, for Li-O2batteries, the self-stacking effect caused by two-dimensional (2D) structural properties of graphene is not conducive to the rapid oxygen transport and mass transfer process, thereby affecting the electrode kinetics. Here, we successfully prepared three-dimensional (3D) graphene with different scales by plasma-enhanced chemical vapor deposition and physical pulverization strategies, in which CH4is the carbon source and H2/Ar mixed gas is the etching gas. Meanwhile, we fabricated 3D graphene-based Pt nanocatalysts by an ultraviolet-assisted construction strategy and then applied them in Li-O2batteries. Systematic studies reveal a special relevance between electrochemical performance and graphene particle size, and the smaller-sized 3D graphene can better maintain the microstructure distribution in both the Pt embedding process and electrochemical applications, which is beneficial to the transport of oxygen and Li ions, lowering the decomposition energy barrier of Li2O2, and further obtaining reduced charge overpotential (0.22 V) and prolonged cycle life for Li-O2batteries. Finally, we anticipate that this work could promote the practical application of 2D materials and larger-sized 3D materials in Li-O2batteries.
KW - Li-Obatteries
KW - PECVD
KW - Pt nanocatalysts
KW - charge overpotential
KW - three-dimensional graphene
KW - ultraviolet-assisted
UR - http://www.scopus.com/inward/record.url?scp=85137862540&partnerID=8YFLogxK
U2 - 10.1021/acsami.2c10277
DO - 10.1021/acsami.2c10277
M3 - Article
C2 - 36043892
AN - SCOPUS:85137862540
SN - 1944-8244
VL - 14
SP - 40921
EP - 40929
JO - ACS applied materials & interfaces
JF - ACS applied materials & interfaces
IS - 36
ER -