Graphene-coated Si/C composites for high-density electrodes: Mitigating silicon degradation and enhancing cycle life in lithium-ion batteries

IF 8.7 Q1 CHEMISTRY, PHYSICAL
Jun Myoung Sheem , Jin Kyo Koo , Chaeyeon Ha , Young Min Kim , Young Ugk Kim , Jae Hou Nah , Young-Jun Kim
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Abstract

Silicon, which serves as the anode active material in lithium-ion batteries (LIBs) because of its high capacity, suffers from performance degradation during continuous cycling. In this study, we designed a high-energy density electrode using artificial graphite (AG) with a graphene-coated Si/C active material (Gr@Si/C). The Gr@Si/C composite synthesized via iterative coating processes not only ensures the electronic conductivity of adjacent silicon particles but also provides a buffering capability against volumetric expansion during repeated charge/discharge cycles at high loading and increased electrode density. Remarkably, the prepared Gr@Si/C‒AG blended electrode exhibited enhanced cycle life characteristics compared with those reported in previous studies. X-ray diffraction analysis confirmed the establishment of an electron conduction path and revealed the effect of impeding particle isolation from the conducting network. Furthermore, full cells incorporating the Gr@Si/C‒AG composite electrode harmonized with the cathode exhibited superior capacity retention of more than 70 % over 200 cycles. These findings suggest that graphene-coated Si/C composites are promising anode active materials for LIBs.
用于高密度电极的石墨烯涂层Si/C复合材料:减轻硅降解并提高锂离子电池的循环寿命
在锂离子电池(LIBs)中,作为负极活性材料的硅由于其高容量,在连续循环过程中会出现性能下降。在这项研究中,我们设计了一种高能密度电极,采用人造石墨(AG)和石墨烯包覆的Si/C活性材料(Gr@Si/C)。通过迭代镀膜工艺合成的Gr@Si/C复合材料不仅确保了相邻硅颗粒的电子导电性,而且在高负载和增加的电极密度下,在重复充放电循环中提供了抵抗体积膨胀的缓冲能力。值得注意的是,与之前的研究相比,制备的Gr@Si/ C-AG混合电极具有更高的循环寿命特性。x射线衍射分析证实了电子传导路径的建立,并揭示了阻碍粒子与导电网络隔离的作用。此外,含有Gr@Si/ C-AG复合电极与阴极协调的完整电池在200次循环中表现出超过70%的优异容量保持率。这些发现表明石墨烯包覆的Si/C复合材料是很有前途的锂离子电池阳极活性材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
8.10
自引率
1.60%
发文量
128
审稿时长
66 days
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