阳极
材料科学
法拉第效率
硅
变形(气象学)
纳米技术
电解质
复合材料
电极
锂(药物)
光电子学
化学
医学
内分泌学
物理化学
作者
Liang Li,Zicheng Zuo,Houhe Pan,Qian Chang,Xiaoya Gao,Xiangang Zhai,Yuliang Li
标识
DOI:10.1016/j.jpowsour.2022.231086
摘要
Silicon (Si) has become one of the most promising candidates as the anode for the next-generation high-energy-density lithium-ion batteries. High Si content is leading to the extraordinary asymmetric strain between the Si nanoparticles and current collector, which is regarded as the fundamental reason for the constant accumulation of solid electrolyte interphase, destruction in conductive network, and exfoliation of the active material, thus generating low Coulombic efficiency and short lifespan. In order to settle these detrimental effects by the asymmetric strain, an integrated interfacial engineering is developed, in which the as-formed 3D interpenetrating graphdiyne network on the Si nanoparticles is physically and chemically rooted on the array-like current collector. The enhanced interface interactions efficiently absorb the in-plane shear energy to resist in-plane deformation, resulting in out-plane-only volume deformation in the lithiation/delithiation reactions. Compared to the in-plane strain within the compression cell, the out-plane strain should be controllable, and the array-like architecture further provides an elastic space for reversibly accommodating the out-plane strain of electrodes. The method effectively reduces the stripping and volume variation of Si particles and provides a stable interface and robust ion/electron transport network. These advantages render Si anode extraordinary cyclability and rate performance, and the areal capacity is greatly increased to 7.5 mAh cm −2 . • An integrated interfacial strategy is developed for Si anode. • 3D interpenetrating graphdiyne suppresses the interfacial asymmetric strain. • The exfoliation of Si and collapse in conductive network are avoided. • It shows a general advantage in solving the issues in high-strain electrodes.
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