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Unique Double Carbon Protection Structured Co3O4Anode for Lithium Ion Battery

机译:用于锂离子电池的独特双碳保护结构CO3O4ANODE

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摘要

In this study, novel Carbon aerogel (CA)/Co3O4/Carbon (C) composites with a double protective structure are synthesized through a solvothermal method and in-situ polymerization. The morphology and structure are characterized by X-ray diffraction, scanning electron microscopy (SEM), high-resolution transmission electron microscopy (HRTEM), and Fourier transform infrared spectroscopy (FTIR). The loading content of active anode material Co3O4 in the composite is investigated by thermogravimetry, and the electrochemical properties of the composite are characterized by electrochemical impedance spectroscopy (EIS). The SEM results show that the nano-sized spherical Co3O4 particle is adhered to the inner Carbon aerogel (CA). The HRTEM result indicates the thickness of the prepared Carbon (C) up to 40 nm. Nano-sheet is coated on the surface of the Co3O4 particle. Compared with the pure Co3O4 anode materials, the Carbon aerogel (CA)/ style="white-space:normal;">Co3 style="white-space:normal;">O4/Carbon (C) composites have better transport kinetics for both electron and lithium-ion in EIS testing results, which may contribute to its higher specific capacity and higher first coulomb efficiency. Due to the unique structure of the composite material with double protection against the volume expansion of style="white-space:normal;">Co3 style="white-space:normal;">O4 when charged, the Carbon aerogel (CA)/ style="white-space:normal;">Co3 style="white-space:normal;">O4/Carbon (C) composite material exhibits better cycle stability with a discharge capacity of 1180 mAh/g after 50 cycles. Therefore, the double protection strategy is verified as an effective method to improve the electrochemical performance of transition metal oxide with carbon composite as an anode material in lithium battery.
机译:在该研究中,通过溶剂热法和原位聚合合成具有双保护结构的新型碳气体(Ca)/ Co3O4 /碳(C)复合材料。形态和结构的特征在于X射线衍射,扫描电子显微镜(SEM),高分辨率透射电子显微镜(HRTEM)和傅里叶变换红外光谱(FTIR)。通过热再生研究复合材料中活性阳极材料CO3O4的负载含量,并且复合材料的电化学性质的特征在于电化学阻抗光谱(EIS)。 SEM结果表明,纳米尺寸的球形CO3O4颗粒粘附到内碳气凝胶(CA)上。 HRTEM结果表明制备的碳(C)的厚度高达40nm。纳米片涂覆在CO 3O4颗粒的表面上。与纯CO3O4 阳极材料相比,碳气凝胶(CA)/ <跨度样式=“白色空间:正常;”> CO <子样式=“白色空间:正常;”> 3 style =“白色空间:正常;”> O <子样式=“白色空间:正常;”> 4 /碳(c)复合材料具有更好的运输EIS测试结果中电子和锂离子的动力学,这可能导致其较高的特定容量和较高的第一种库仑效率。由于复合材料的独特结构,具有双重保护,对<跨度样式=“白色空间:正常;”> CO <子样式=“白色空间:正常;”> 3 < / sub> 样式=“白色空间:正常;”> O <子样式=“白色空间:正常;”> 4 充电时,碳气凝胶(CA)/ < Span Style =“白色空间:正常;”> CO <子样式=“白色空间:正常;”> 3 style =“白色空间:正常;”> O < /跨度> <子样式=“空白:正常;”> 4 /碳(C)复合材料在50次循环后的放电容量为1180mAh / g的放电容量显示出更好的循环稳定性。因此,双保护策略被验证为提高碳复合材料的过渡金属氧化物作为锂电池中的阳极材料的电化学性能的有效方法。

著录项

  • 来源
    《材料科学与化学工程(英文)》 |2020年第012期|P.56-70|共15页
  • 作者单位

    School of Applied Chemistry and Biological Technology Shenzhen Polytechnic Shenzhen China;

    Department of Resource Engineering Guangxi Modern polytechnic college Hechi China;

    School of Applied Chemistry and Biological Technology Shenzhen Polytechnic Shenzhen China;

    School of Applied Chemistry and Biological Technology Shenzhen Polytechnic Shenzhen China;

    School of Applied Chemistry and Biological Technology Shenzhen Polytechnic Shenzhen China;

    School of Applied Chemistry and Biological Technology Shenzhen Polytechnic Shenzhen China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 工程材料学;
  • 关键词

    Carbon Protection; Co3O4 Anode; Lithium Ion Battery;

    机译:碳保护;CO3O4阳极;锂离子电池;
  • 入库时间 2022-08-19 04:55:17
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