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Boosting High-Rate Zinc-Storage Performance by the Rational Design of Mn2O3 Nanoporous Architecture Cathode
被引:4
|作者:
Danyang Feng
[1
]
Tu-Nan Gao
[1
]
Ling Zhang
[2
]
Bingkun Guo
[3
]
Shuyan Song
[4
]
Zhen-An Qiao
[1
]
Sheng Dai
[5
]
机构:
[1] State Key Laboratory of Inorganic Synthesis and Preparative Chemistry, College of Chemistry, Jilin University
[2] State Key Laboratory of Supramolecular Structure and Materials, College of Chemistry, Jilin University
[3] Materials Genome Institute, Shanghai University
[4] State Key Laboratory of Rare Earth Resource Utilization, Changchun Institute of Applied Chemistry,Chinese Academy of Sciences
[5] Chemical Sciences Division, Oak Ridge National Laboratory
关键词:
Porous Mn2O3;
High-rate capability;
Zn-ion battery;
Cathode material;
Zn-storage mechanism;
D O I:
暂无
中图分类号:
TM912 [蓄电池];
学科分类号:
0808 ;
摘要:
Manganese oxides are regarded as one of the most promising cathode materials in rechargeable aqueous Zn-ion batteries(ZIB s) because of the low price and high security.However,the practical application of Mn2O3in ZIBS is still plagued by the low specific capacity and poor rate capability.Herein,highly crystalline Mn2O3materials with interconnected mesostructures and controllable pore sizes are obtained via a ligand-assisted self-assembly process and used as high-performance electrode materials for reversible aqueous ZIBs.The coordination degree between Mn2+and citric acid ligand plays a crucial role in the formation of the mesostructure,and the pore sizes can be easily tuned from 3.2 to 7.3 nm.Ascribed to the unique feature of nanoporous architectures,excellent zinc-storage performance can be achieved in ZIBs during charge/discharge processes.The Mn2O3electrode exhibits high reversible capacity(233 mAh g-1at 0.3 A g-1),superior rate capability(162 mAh g-1retains at 3.08 A g-1) and remarkable cycling durability over 3000 cycles at a high current rate of 3.08 A g-1.Moreover,the corresponding electrode reaction mechanism is studied in depth according to a series of analytical methods.These results suggest that rational design of the nanoporous architecture for electrode materials can effectively improve the battery performance.
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页码:199 / 211
页数:13
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