Effects of calendering state on coupled electrochemical-mechanical performance of silicon based composite electrodes

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Abstract

The super volume changes and severe mechanical degradation have been a hindrance in the wide application of silicon based composite electrodes in commercial lithium-ion batteries (LIBs). Calendering, one procedure in producing LIBs' electrodes, is indispensable to ensure low porosity and energy density. However, the repercussions of the calendering process on the physical characteristics related to the behavior of silicon (Si) based electrodes during the electrochemical reaction have not been well understood. Thus, on account of the deformation characteristic of cantilever electrodes, an in-situ technique is employed to analyze the repercussions of calendering status on the coupled electro-chemo-mechanical performances. During the electrochemical cycling, Young's modulus and diffusion-induced stress in composite electrodes are quantified. The results show that the swelling strain, the stress and the modulus of the Si-based electrode and the calendering degree are positively correlated. Meanwhile, the stress induced by diffusion in the active layer tends to increase in the stage of lithiation and reverses during the delithiation process. Accompany with the SEM analysis, we conclude that the calendering process can induce larger stress, driving the formation of cracks in electrodes. These findings can help understand how the calendering process could affect the capacity dissipating and lifetime of Si based electrodes.

Abstract Image

压延状态对硅基复合电极电化学-机械耦合性能的影响
硅基复合电极在商用锂离子电池(LIB)中的广泛应用受到了超大体积变化和严重机械退化的阻碍。压延是生产锂离子电池电极的一道工序,是确保低孔隙率和能量密度所不可或缺的。然而,压延工艺对硅(Si)基电极在电化学反应过程中行为的相关物理特性的影响尚未得到很好的理解。因此,考虑到悬臂电极的变形特性,我们采用了一种原位技术来分析压延状态对电-化学-机械耦合性能的影响。在电化学循环过程中,对复合电极的杨氏模量和扩散诱导应力进行了量化。结果表明,硅基电极的膨胀应变、应力和模量与压延程度呈正相关。同时,活性层中由扩散引起的应力在石化阶段呈上升趋势,而在脱石化过程中呈逆转趋势。结合扫描电镜分析,我们得出结论:压延过程会引起较大的应力,促使电极裂纹的形成。这些发现有助于理解压延过程如何影响硅基电极的容量耗散和使用寿命。
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