材料科学
降级(电信)
锂(药物)
电极
硅
石墨烯
复合材料
离子
光电子学
纳米技术
电气工程
化学
工程类
内分泌学
物理化学
有机化学
医学
作者
Jun Myoung Sheem,Jin Kyo Koo,Chaeyeon Ha,Young Min Kim,Young Ugk Kim,Jae Hou Nah,Young‐Jun Kim
标识
DOI:10.1016/j.apsadv.2025.100715
摘要
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.
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