Li-Doped Layered Na1.0Cu0.22Fe0.30Mn0.48O2 Cathode with Enhanced Electrochemical Performance for Sodium-Ion Batteries

被引:0
作者
Yuanliang Yuan
Xin Wang
Jicheng Jiang
Can Guo
Donghuang Wang
Aijun Zhou
机构
[1] University of Electronic Science and Technology of China,School of Materials and Energy
[2] University of Electronic Science and Technology of China,Yangtze Delta Region Institute (Huzhou)
来源
Journal of Electronic Materials | 2023年 / 52卷
关键词
Sodium-ion batteries; lithium doping; layered Na; MO; cathode;
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中图分类号
学科分类号
摘要
The introduction of copper (Cu) element to iron-manganese-based layered cathode materials can effectively enhance their cycling stability and air tolerance. However, the low redox reactivity of Cu2+ decreases the capacity of the copper-iron-manganese layered oxide cathode material. Recently, lithium (Li) doping has been regarded as an efficient strategy to exploit high-capacity cathode materials by enabling high-covalency transition metals. Here, we report a Na1.0LixCu0.22Fe0.30Mn0.48O2 (x = 0.025, 0.05, 0.075) cathode material with increased capacity by adding Li into a Na1.0Cu0.22Fe0.30Mn0.48O2 cathode via a simple solid-phase sintering method. The doped Li element can regulate the redox reactivities of the adjacent Fe and Mn elements, leading to the promotion of the Fe redox reactivity and the suppression of Mn redox reactivity, which prevents both the Jahn–Teller effect and the structure collapse during the charge/discharge process. In conclusion, Li doping can not only improve the capacity of the cathode material but also improve its stability. When x = 0.075, the capacity of Na1Li0.075Cu0.22Fe0.30Mn0.48O2 cathode can reach 114.2 mAh g−1 with a high capacity retention of 90.2% after 300 cycles at 1 C. These results shed light on the role play of Li in the transition metal layer, and can guide the design and modification for high-performance SIBs of layered materials.
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页码:3509 / 3516
页数:7
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  • [81] Iwatate J(undefined)Copper-substituted NaxMO2 (M = Fe, Mn) cathodes for sodium ion batteries: Enhanced cycling stability through suppression of Mn(III) formation undefined undefined undefined-undefined
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  • [83] Hitomi S(undefined)A multifunctional self-healing G-PyB/KCl hydrogel: smart conductive, rapid room-temperature phase-selective gelation, and ultrasensitive detection of alpha-fetoprotein undefined undefined undefined-undefined
  • [84] Okuyama R(undefined)Pore modulation of zirconium-organic frameworks for high-efficiency detection of trace proteins undefined undefined undefined-undefined
  • [85] Usui R(undefined)Interpretation of XPS Mn(2p) spectra of Mn oxyhydroxides and constraints on the mechanism of MnO undefined undefined undefined-undefined
  • [86] Yamada Y(undefined) precipitation undefined undefined undefined-undefined
  • [87] Komaba S(undefined)Na undefined undefined undefined-undefined
  • [88] Liu QN(undefined)(Cu-Fe-Mn)O undefined undefined undefined-undefined
  • [89] Hu Z(undefined) system as cathode materials for Na-ion batteries undefined undefined undefined-undefined
  • [90] Chen MZ(undefined)undefined undefined undefined undefined-undefined