首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Three-dimensional Mn-doped Zn2GeO4 nanosheet array hierarchical nanostructures anchored on porous Ni foam as binder-free and carbon-free lithium-ion battery anodes with enhanced electrochemical performance
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Three-dimensional Mn-doped Zn2GeO4 nanosheet array hierarchical nanostructures anchored on porous Ni foam as binder-free and carbon-free lithium-ion battery anodes with enhanced electrochemical performance

机译:三维锰掺杂的Zn2GeO4纳米片阵列分层纳米结构,固定在多孔镍泡沫上,作为无粘合剂和无碳的锂离子电池阳极,具有增强的电化学性能

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摘要

We report on three dimensional Mn-doped Zn2GeO4 hierarchical nanosheet arrays anchored on porous Ni foam as binder-free lithium-ion battery (LIB) anodes with enhanced electrochemical performance. Homogeneous Mn doping effectively induces a great microstructure evolution from nanowire arrays of pure Zn2GeO4 to nanosheet arrays of Mn-doped Zn2GeO4 samples. LIB anodes based on 7% Mn-Zn2GeO4 nanosheet array hierarchical nanostructures anchored on Ni foam display significantly improved electrochemical Li storage performance, showing a superior reversible capacity of 1301 mA h g(-1) at a current density of 100 mA g(-1) after 100 cycles, almost two times higher than that of 660 mA h g(-1) of pure Zn2GeO4 samples. An extraordinarily excellent rate capability with a capacity of 500 mA h g(-1) at a current density of 2 A g(-1) can be obtained for LIB anodes based on Mn-doped Zn2GeO4 hierarchical nanostructures. The great enhancement of the electrochemical lithium storage performance can be attributed to three-dimensional interconnected conductive channels composed of Ni foam, which not only serves as the current collector but also buffers the volume change of the active material upon cycling. Additionally, Mn doping can greatly improve charge transport kinetics at the interface between the electrode and the electrolyte.
机译:我们报告锚固在多孔镍泡沫上的三维锰掺杂的Zn2GeO4分层纳米片阵列作为无粘合剂的锂离子电池(LIB)阳极,具有增强的电化学性能。从纯Zn2GeO4的纳米线阵列到Mn掺杂的Zn2GeO4样品的纳米片阵列,均相Mn掺杂有效地诱导了巨大的微观结构演变。基于锚定在镍泡沫上的7%Mn-Zn2GeO4纳米片阵列分层纳米结构的LIB阳极显着改善了电化学Li的存储性能,在100 mA g(-1)的电流密度下显示出1301 mA hg(-1)的优异可逆容量100次循环后,几乎是纯Zn2GeO4样品660 mA hg(-1)的两倍。对于基于Mn掺杂的Zn2GeO4分层纳米结构的LIB阳极,可以获得在电流密度为2 A g(-1)时容量为500 mA h g(-1)的出色的速率能力。电化学锂存储性能的极大提高可归因于由泡沫镍构成的三维互连导电通道,该通道不仅用作集电器,而且还可以缓冲活性材料在循环时的体积变化。另外,Mn掺杂可以极大地改善电极和电解质之间的界面处的电荷传输动力学。

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