Unique amorphous manganese oxide/rGo anodes for lithium-ion batteries with high capacity and excellent stability

被引:0
作者
Li Hou
Ruiwen Cui
Xinyu Jiang
Dong Wang
Yang Jiang
Shuolei Deng
Yuanyuan Guo
Faming Gao
机构
[1] Yanshan University,Hebei Key Laboratory of Applied Chemistry, School of Environmental and Chemical Engineering
来源
Ionics | 2020年 / 26卷
关键词
Lithium-ion batteries; Amorphous manganese oxide; Graphene oxide;
D O I
暂无
中图分类号
学科分类号
摘要
The utilization of manganese oxide anode materials in lithium-ion batteries is hindered by low conductivity, high stress/strain, volume expansion, and high over potential in the crystalline structure during cycling. Compared with crystal oxide, amorphous oxide has attracted attention for its weak chemical bond force and its low stress change during the phase change process, but few reported in lithium-ion batteries. This work combined both advantages of amorphous manganese oxide (AMO) and reduced graphene oxide (rGo) to produce a unique AMO/rGo composite electrode material through one-step chemical reduction the KMnO4 in graphene oxide containing solution. The rGo-supported porous amorphous structure of manganese oxide brought special character by reducing the stress/strain of the conversion reaction, thus ensuring a high capacity and high stability. The high electronic and lithium-ion conductivity of graphene also enhanced the rate capability. As a result, the as-synthesized AMO/rGo exhibited a large reversible specific capacity (784 mA hg−1 at the current density of 1 A g−1 over 500 cycles) and superior rate capability, making it a potential candidate as high-performance electrode material for long-term cycling in lithium-ion batteries.
引用
收藏
页码:4339 / 4349
页数:10
相关论文
共 240 条
[31]  
Park SK(2012) with iso-oriented nanocrystalline walls for thin-film pseudocapacitors RSC Adv 2 4645-362
[32]  
Jin A(2013)Cation intercalation and high volumetric capacitance of two-dimensional titanium carbide ACS Appl Mater Interfaces 5 1997-undefined
[33]  
Yu SH(2017)Anisotropy in the structure of pressure-induced disordered solids J Mater Sci 52 11608-undefined
[34]  
Ha J(2017)Engineering of MnO RSC Adv 7 37502-undefined
[35]  
Jang B(2013)-based nanocomposites for high-performance supercapacitors Adv Funct Mater 23 1692-undefined
[36]  
Bong S(2011)Water oxidation catalysis using amorphous manganese oxides, octahedral molecular sieves (OMS-2), and octahedral layered (OL-1) manganese oxide structures Adv Energy Mater 1 736-undefined
[37]  
Woo S(2012)Hybrid device employing three-dimensional arrays of MnO in carbon nanosheets bridges battery-supercapacitor divide ACS Appl Mater Interfaces 4 1636-undefined
[38]  
Sung YE(2016)XPS determination of Mn oxidation states in Mn (hydr)oxides ACS Appl Mater Interfaces 8 6303-undefined
[39]  
Piao Y(2018)High electrochemical performance of monodisperse NiCo Nano Energy 49 354-undefined
[40]  
Jian G(undefined)O undefined undefined undefined-undefined