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首页> 外文期刊>The journal of physics and chemistry of solids >Double-shelled silicon anode nanocomposite materials: A facile approach for stabilizing electrochemical performance via interface construction
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Double-shelled silicon anode nanocomposite materials: A facile approach for stabilizing electrochemical performance via interface construction

机译:双壳硅阳极纳米复合材料:通过界面结构稳定电化学性能的容易方法

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摘要

The rapid capacity fading induced by volumetric changes is the main issue that hinders the widespread application of silicon anode materials. Thus, double-shelled silicon composite materials where lithium silicate was located between an Nb2O5 coating layer and a silicon active core were configured to overcome the chemical compatibility issues related to silicon and oxides. The proposed composites were prepared via a facile co-precipitation method combined with calcination. Transmission electron microscopy and X-ray photoelectron spectroscopy analysis demonstrated that a transition layer of lithium silicate was constructed successfully, which effectively hindered the thermal inter-diffusion between the silicon and oxide coating layers during heat treatment. The electrochemical performance of the double-shelled silicon composites was enhanced dramatically with a retained specific capacity of 1030 mAh g(-1) after 200 cycles at a current density of 200 mA g(-1) compared with 598 mAh g(-1). for a core-shell Si@Nb2O5 composite that lacked the interface. The lithium silicate transition layer was shown to play an important role in maintaining the high electrochemical stability.
机译:体积变化引起的快速容量衰落是阻碍硅阳极材料广泛应用的主要问题。因此,将硅酸锂位于Nb2O5涂层和硅活性芯之间的双壳硅复合材料被配置为克服与硅和氧化物相关的化学相容性问题。通过与煅烧的共沉淀法制备拟建的复合材料。透射电子显微镜和X射线光电子能谱分析证明,成功地构建了硅酸锂的过渡层,其在热处理期间有效地阻碍了硅和氧化物涂层之间的热分散。与598mAhg(-1)相比,在电流密度为200 mA g(-1)时,通过1030mAhg(-1)的保留比容量显着提高双壳硅复合材料的电化学性能。 。对于缺少界面的核心壳SI @ NB2O5复合材料。显示硅酸锂过渡层在保持高电化学稳定性方面发挥重要作用。

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