The spinel MnFe2O4 grown in biomass-derived porous carbons materials for high-performance cathode materials of aqueous zinc-ion batteries

多孔性 尖晶石 材料科学 水溶液 离子 化学工程 化学 生物量(生态学) 阴极 冶金 复合材料 有机化学 物理化学 工程类 地质学 海洋学
作者
Xuran Liu,Xixun Shen,Tiantian Chen,Qunjie Xu
出处
期刊:Journal of Alloys and Compounds [Elsevier BV]
卷期号:904: 164002-164002 被引量:14
标识
DOI:10.1016/j.jallcom.2022.164002
摘要

Here a novel composite material that is described by the MnFe 2 O 4 with spinel structure in-situ grown on the biomass-derived amorphous porous carbon (PC@MFO) is proposed as a cathode material for aqueous zinc-ion batteries (AZIBs). This electrode has an excellent initial discharge capacity of 168 mA h g −1 at 0.3 A g −1 and superior cycle stability with capacity retention rate of 92% over 900 cycles even at a high rate of 1 A g −1 . The excellent charge/discharge performance of PC@MFO electrode is attributed to some beneficial synergistic effects including increasing good electrode conductivity and high ion transmission speed and more reactive points and avoiding the rapid collapse of the structure of the MnFe 2 O 4 electrode produced by the introduction of mesoporous carbon, which promotes and stabilizes charge/discharge reaction of multivalent redox (Mn 2+ /Mn 4+ , Fe 2+ /Fe 3+ ). The rapid electrochemical kinetic behavior of the PC@MFO electrode is also analyzed by cyclic voltammetry, where the kinetic process of electrochemical reaction involving the diffusion control faraday process and capacitance control behavior is revealed and the capacitance contribution rate of about 88.19% is attained. Moreover, the galvanostatic intermittent titration technique (GITT) also explains that this PC@MFO electrode has a high Zn 2+ ion diffusion capacity and the diffusion coefficient can reach 10 −14 ~10 −10 cm 2 s −1 . In addition, the reaction mechanism and structural evolution of this electrode is also studied by ex-situ X-ray photoelectron spectroscopy (XPS) and X-ray diffraction test (XRD) from different cycle stages. XPS and XRD reveal the strong deintercalation ability of Zn 2+ ions in the highly stable MFO which grows in biomass-derived porous carbon. The present result implies that such a PC@MFO composite material could be a promising cathode material for AZIBs. • The porous carbons@MnFe2O4 is synthesized by a hydrothermal method as cathode for aqueous zinc-ion battery. • The Zn//carbons@MnFe2O4 battery shows excellent discharge capacity and superior cycle stability. • The reversible multivalent redox (Mn2 +/Mn4 + and Fe2 +/Fe3 +) is revealed. • The superior electrochemical behavior of resultant is attributed to the coordination effect of mesoporous carbon.
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