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Interfacial Construction Between Reduced Graphene Oxide and Iron Oxide Induced High Electrochemical Performance for Flexible Battery by Yongqiang Guo; Chao Chen; Yi Li; Yutao Chen; Shenghu Li; Taotao Gao; Hai Liu; Wenlong Liu; Dan Xiao; Xiaoqin Li is a Materials Science article available to read on EtoBox.

What is Interfacial Construction Between Reduced Graphene Oxide and Iron Oxide Induced High Electrochemical Performance for Flexible Battery about?

Fiber-shaped Ni/Fe batteries with high safety, cheap cost, and environmental friendliness have a wide range of applications in wearable and portable devices. However, their development is limited by the sluggish kinetics of the Fe-based anode. Herein, a well-designed fibrous Fe-based anode containing reduced graphene oxide (rGO) and Fe2O3 was constructed by a one-step co-electrodeposition strategy. Theoretical investigations reveal the improved carrier density as a result of the effective electrostatic interaction between rGO and Fe2O3. This interconnected heterostructure builds a bridge for electron transfer and ion diffusion, significantly accelerating the electrochemical reaction kinetics. The as-prepared rGO/Fe2O3 anode delivers an extraordinary volumetric capacity of 40.1 mAh cm−3 along with excellent rate capacity and cyclic stability. After coupling with the NiCoO cathode, the fabricated fibrous quasi-solid-state Ni/Fe battery shows the maximum volumetric energy density and power density of 19.9 mWh cm−3 and 961.6 mW cm−3. Moreover, this fibrous Ni/Fe battery confirms good capacity retention of 82.3% after 10,000 cycles and noteworthy mechanical flexibility. These results su

Who reads Interfacial Construction Between Reduced Graphene Oxide and Iron Oxide Induced High Electrochemical Performance for Flexible Battery?

It is typically read by researchers, students, and practitioners in Materials Science.

Author
Yongqiang Guo; Chao Chen; Yi Li; Yutao Chen; Shenghu Li; Taotao Gao; Hai Liu; Wenlong Liu; Dan Xiao; Xiaoqin Li
Publisher
Elsevier BV
Published
2023
Language
EN
Field
Materials Science (Physical Sciences)