TY - JOUR
T1 - MoOx nanoparticles anchored on N-doped porous carbon as Li-ion battery electrode
AU - Li, Zhi
AU - Wang, Chao
AU - Chen, Xiuzheng
AU - Wang, Xixi
AU - Li, Xingyun
AU - Yamauchi, Yusuke
AU - Xu, Xuejun
AU - Wang, Jie
AU - Lin, Chunfu
AU - Luo, Dong
AU - Wang, Xianfen
AU - Zhao, Xiu Song
N1 - Funding Information:
We are grateful for the financial support from the National Natural Foundation of China (21703113 and 21603084), the Chinese Postdoctoral Science Foundation (2016M600519), the Natural Science Foundation of Shandong Province, China (ZR2016BB03 and ZR2016BB21), the Taishan Scholars Advantageous and Distinctive Discipline Program of Shandong Province and the World-Class University and Discipline of Shandong Province. This work was partially performed at the Queensland node of the Australian National Fabrication Facility, a company established under the National Collaborative Research Infrastructure Strategy to provide nano- and micro-fabrication facilities for Australian researchers. There are no conflicts to declare.
Funding Information:
We are grateful for the financial support from the National Natural Foundation of China ( 21703113 and 21603084 ), the Chinese Postdoctoral Science Foundation ( 2016M600519 ), the Natural Science Foundation of Shandong Province , China ( ZR2016BB03 and ZR2016BB21 ), the Taishan Scholars Advantageous and Distinctive Discipline Program of Shandong Province and the World-Class University and Discipline of Shandong Province . This work was partially performed at the Queensland node of the Australian National Fabrication Facility, a company established under the National Collaborative Research Infrastructure Strategy to provide nano- and micro-fabrication facilities for Australian researchers.
Publisher Copyright:
© 2019 Elsevier B.V.
PY - 2020/2/1
Y1 - 2020/2/1
N2 - Transition-metal oxides based materials have recently been shown to be promising anode material for lithium ion batteries (LIBs) application to replace graphite material. In the present work, highly dispersed ultra-small MoOx nanoparticles anchored on N-doped three-dimensional (3D) hierarchically porous carbon (3D-MoOx@CN) are prepared on the basis of an efficient in-situ chelating and hard-templating strategy. The MoOx nanoparticles with particle sizes between 1.5 and 3.5 nm are observed to be anchored on the surface of the 3D N-doped carbon. The 3D-MoOx@CN composite anode electrode exhibits several appealing characteristics for lithium ion storage, including high specific capacity, good stability against cycling and fast charge transport kinetics. An optimized 3D-MoOx@CN sample (3D-MoOx@CN-700) delivers specific capacities of 742 mAh g−1 at current density of 100 mA g−1 and 431 mAh g−1 at 1000 mA g−1 after 1000 cycles, respectively. The observed excellent performance is due to the unique hierarchical pore structure with strong binding of the ultra-small MoOx nanoparticles onto N-doped carbon surface, which can avoid the agglomeration and alleviate the volume expansion of MoOx nanoparticles in the charge-discharge process. The composite electrode material described in this work holds a great potential for the development of high-performance lithium-ion batteries. Meanwhile, the synthesis method presents a common strategy to prepare other composite materials with highly dispersed metal oxide on the hierarchically porous carbon materials.
AB - Transition-metal oxides based materials have recently been shown to be promising anode material for lithium ion batteries (LIBs) application to replace graphite material. In the present work, highly dispersed ultra-small MoOx nanoparticles anchored on N-doped three-dimensional (3D) hierarchically porous carbon (3D-MoOx@CN) are prepared on the basis of an efficient in-situ chelating and hard-templating strategy. The MoOx nanoparticles with particle sizes between 1.5 and 3.5 nm are observed to be anchored on the surface of the 3D N-doped carbon. The 3D-MoOx@CN composite anode electrode exhibits several appealing characteristics for lithium ion storage, including high specific capacity, good stability against cycling and fast charge transport kinetics. An optimized 3D-MoOx@CN sample (3D-MoOx@CN-700) delivers specific capacities of 742 mAh g−1 at current density of 100 mA g−1 and 431 mAh g−1 at 1000 mA g−1 after 1000 cycles, respectively. The observed excellent performance is due to the unique hierarchical pore structure with strong binding of the ultra-small MoOx nanoparticles onto N-doped carbon surface, which can avoid the agglomeration and alleviate the volume expansion of MoOx nanoparticles in the charge-discharge process. The composite electrode material described in this work holds a great potential for the development of high-performance lithium-ion batteries. Meanwhile, the synthesis method presents a common strategy to prepare other composite materials with highly dispersed metal oxide on the hierarchically porous carbon materials.
KW - Composite
KW - Hierarchically porous carbon
KW - Lithium-ion batteries
KW - Molybdenum oxides
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U2 - 10.1016/j.cej.2019.122588
DO - 10.1016/j.cej.2019.122588
M3 - Article
AN - SCOPUS:85071643849
SN - 1385-8947
VL - 381
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 122588
ER -