TY - JOUR
T1 - Co3O4 Nanosheets with In-Plane Pores and Highly Active {112} Exposed Facets for High Performance Lithium Storage
AU - Wei, Renjie
AU - Zhou, Xianlong
AU - Zhou, Tengfei
AU - Hu, Juncheng
AU - Ho, Johnny C.
N1 - Funding Information:
This work is financially supported by the National Natural Science Foundation of China (Grants 51672229 and 21673300), the Environment and Conservation Fund of Hong Kong SAR, China (ECF 2016-85), the General Research Fund (CityU 11213115) and the Theme-based Research Scheme (T42-103/16-N) of the Research Grants Council of Hong Kong SAR, China, and the Science Technology and Innovation Committee of Shenzhen Municipality (Grant JCYJ20160229165240684), and a grant from the Shenzhen Research Institute, City University of Hong Kong.
Publisher Copyright:
© 2017 American Chemical Society.
PY - 2017/9/7
Y1 - 2017/9/7
N2 - Recently, two-dimensional transition metal oxide nanomaterials have been extensively investigated as promising candidates for the lithium-ion battery anode materials due to their elastic volume change, efficient ion/electrical pathways, and additional interfacial lithium storage sites. Herein, we report a simple wet-chemical method followed by thermal treatment to synthesize Co3O4 nanosheets with the in-plane pores. The as-prepared nanosheets are found to selectively expose the highly active {112} facets as the dominant surfaces. When fabricated into the anode configuration, a specific capacity of 1717 mA h g-1 can be reliably retained after 100 cycles at a current density of 200 mA g-1. While increasing the current density to 1 A g-1 and prolonging the cycle life to 400 cycles, the nanosheets can still deliver a capacity of 1090 mA h g-1 with a Coulombic efficiency of 99.5%. This excellent electrochemical performance can be attributed to the unique morphological structures of our porous nanosheets for the shortened lithium ion diffusion pathway, alleviated volume expansion, and enhanced active sites, indicating the technological potency of the nanosheets for high-performance lithium storage. (Graph Presented).
AB - Recently, two-dimensional transition metal oxide nanomaterials have been extensively investigated as promising candidates for the lithium-ion battery anode materials due to their elastic volume change, efficient ion/electrical pathways, and additional interfacial lithium storage sites. Herein, we report a simple wet-chemical method followed by thermal treatment to synthesize Co3O4 nanosheets with the in-plane pores. The as-prepared nanosheets are found to selectively expose the highly active {112} facets as the dominant surfaces. When fabricated into the anode configuration, a specific capacity of 1717 mA h g-1 can be reliably retained after 100 cycles at a current density of 200 mA g-1. While increasing the current density to 1 A g-1 and prolonging the cycle life to 400 cycles, the nanosheets can still deliver a capacity of 1090 mA h g-1 with a Coulombic efficiency of 99.5%. This excellent electrochemical performance can be attributed to the unique morphological structures of our porous nanosheets for the shortened lithium ion diffusion pathway, alleviated volume expansion, and enhanced active sites, indicating the technological potency of the nanosheets for high-performance lithium storage. (Graph Presented).
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U2 - 10.1021/acs.jpcc.7b04799
DO - 10.1021/acs.jpcc.7b04799
M3 - Article
AN - SCOPUS:85029214438
SN - 1932-7447
VL - 121
SP - 19002
EP - 19009
JO - Journal of Physical Chemistry C
JF - Journal of Physical Chemistry C
IS - 35
ER -