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In situ X-ray micro-CT characterization of chemo-mechanical relaxations during Sn lithiation

机译:Sn锂化过程中化学机械弛豫的原位X射线显微CT表征

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摘要

Sn has been proposed for use as a high capacity anode material. Because of its ductile metallic nature, Sn may exhibit unique stress' evolution during. lithiation. Here, 2D radiography and 3D tomography are employed to, visualize the evolution of geometry; internal structure, alloying, and damage during lithiation, delithiation, and rest of Sn wires with micron scale diameters. Lithiation proceeds isotropically, resulting in geometric and dimensional changes after 25% of total lithiation when the tensile stresses are sufficiently high to exceed the flow stress of the unlithiated Sn core and cause elongation and diameter increase. Damage occurs at later stages in the form of cracks terminating at the wire surface and voids forming in the unlithiated core. Notably, significant fragmentation occurs during delithiation which, due to void formation that accommodates the resulting stresses, does not measurably alter the wire cross-section and length. The distinguishing feature of the chemo-mechanics of Sn compared to Si or Ge is the pronounced creep rate at applied strain rates as high as 10(-6) s(-1), which promotes large strains in the core, eventually leading to void nucleation in the unlithiated core during lithiation; and mole importantly, continues driving the deformation of the anode while at rest.
机译:已经提出将Sn用作高容量阳极材料。由于其易延展的金属性质,Sn在过程中可能表现出独特的应力演变。锂化。在这里,使用2D射线照相术和3D断层扫描术来可视化几何图形的演变。内部结构,合金化以及在微米尺度直径的锡线的锂化,脱锂和其余过程中的损坏。锂化是各向同性的,当拉伸应力足够高到超过未锂化锡芯的流动应力并引起伸长和直径增加时,在总锂化的25%之后会导致几何形状和尺寸变化。在以后的阶段会发生损坏,其形式为在导线表面终止的裂纹和未锂化芯中形成的空隙。值得注意的是,在去锂化过程中会发生明显的碎裂,由于形成的空洞可以适应所产生的应力,因此不会明显改变导线的横截面和长度。 Sn的化学力学与Si或Ge相比的显着特征是在施加的应变速率高达10(-6)s(-1)时的明显蠕变速率,这会促进铁芯中的大应变,最终导致空隙锂化过程中未锂化核中的成核;重要的是,在静止状态下继续驱动阳极变形。

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