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Quantification and modeling of mechanical degradation in lithium-ion batteries based on nanoscale imaging

机译:基于纳米成像的锂离子电池机械降解的量化和建模

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Capacity fade in lithium-ion battery electrodes can result from a degradation mechanism in which the carbon black-binder network detaches from the active material. Here we present two approaches to visualize and quantify this detachment and use the?experimental results to develop and validate a model that considers?how the active particle size, the viscoelastic parameters of the composite electrode, the adhesion between the active particle and the carbon black-binder domain, and the solid electrolyte interphase growth rate impact detachment and capacity fade. Using carbon-silicon composite electrodes as a model system, we demonstrate X-ray nano-tomography and backscatter scanning electron microscopy with sufficient resolution and contrast to segment the pore space, active particles, and carbon black-binder domain and quantify delamination as a function of cycle number. The validated model is further used to discuss how detachment and capacity fade in high-capacity materials can be minimized through materials engineering.
机译:锂离子电池电极的容量衰减可能是由降解机理引起的,在降解机理中,炭黑粘合剂网络从活性材料上脱落。在这里,我们提出了两种方法来可视化和量化这种脱离,并使用“实验结果”来开发和验证一个模型,该模型考虑了活性颗粒尺寸,复合电极的粘弹性参数,活性颗粒与炭黑之间的粘附力如何-粘合剂域,以及固体电解质的相间生长速率影响脱离和容量衰减。使用碳-硅复合电极作为模型系统,我们演示了具有足够分辨率和对比度的X射线纳米断层扫描和反向散射扫描电子显微镜,可以分割孔隙空间,活性颗粒和炭黑结合剂域,并根据功能量化分层的循环数。经过验证的模型还用于讨论如何通过材料工程使高容量材料中的分离和容量衰减最小化。

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