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首页> 外文期刊>Nature Communications >Stable silicon-ionic liquid interface for next-generation lithium-ion batteries
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Stable silicon-ionic liquid interface for next-generation lithium-ion batteries

机译:下一代锂离子电池的稳定硅离子液体界面

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摘要

We are currently in the midst of a race to discover and develop new battery materials capable of providing high energy-density at low cost. By combining a high-performance Si electrode architecture with a room temperature ionic liquid electrolyte, here we demonstrate a highly energy-dense lithium-ion cell with an impressively long cycling life, maintaining over 75% capacity after 500 cycles. Such high performance is enabled by a stable half-cell coulombic efficiency of 99.97%, averaged over the first 200 cycles. Equally as significant, our detailed characterization elucidates the previously convoluted mechanisms of the solid-electrolyte interphase on Si electrodes. We provide a theoretical simulation to model the interface and microstructural-compositional analyses that confirm our theoretical predictions and allow us to visualize the precise location and constitution of various interfacial components. This work provides new science related to the interfacial stability of Si -based materials while granting positive exposure to ionic liquid electrochemistry.
机译:我们目前正处于寻找和开发能够以低成本提供高能量密度的新型电池材料的竞赛中。通过将高性能的硅电极体系结构与室温离子液体电解质相结合,我们在此展示了一种高能量密度的锂离子电池,具有令人印象深刻的长循环寿命,在500次循环后可保持75%的容量。在前200个循环中平均获得99.97%的稳定半电池库仑效率,可实现如此高的性能。同样重要的是,我们的详细表征阐明了先前在Si电极上形成的固态电解质界面的复杂机理。我们提供了一种理论模拟来对界面和微观结构-组成分析进行建模,从而证实了我们的理论预测,并使我们能够可视化各种界面组件的精确位置和组成。这项工作提供了与硅基材料的界面稳定性有关的新科学,同时使离子液体电化学具有正向暴露能力。

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