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Shell-Protective Secondary Silicon Nanostructures as Pressure-Resistant High-Volumetric-Capacity Anodes for Lithium-Ion Batteries

机译:壳体保护性二氧化硅纳米结构作为锂离子电池的耐压高容量容量阳极

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摘要

The nanostructure design of a prereserved hollow space to accommodate 300% volume change of silicon anodes has created exciting promises for high-energy batteries. However, challenges with weak mechanical stability during the calendering process of electrode fabrication and poor volumetric energy density remain to be solved. Here we fabricated a pressure-resistant silicon structure by designing a dense silicon shell coating on secondary micrometer particles, each consisting of many silicon nanoparticles. The silicon layer significantly improves mechanical stability, while the inner porous structure efficiently accommodates the volume expansion. Such a structure can resist a high pressure of over 100 MPa and is well-maintained after the calendering process, demonstrating a high volumetric capacity of 2041 mAh cm-3. In addition, the dense silicon shell decreases the surface area and thus increases the initial Coulombic efficiency. With further encapsulation with a graphene cage, which allows the silicon core to expand within the cage while retaining electrical contact, the silicon hollow structure exhibits a high initial Coulombic efficiency and fast rise of later Coulombic efficiencies to 99.5% and superior stability in a full-cell battery.
机译:预级空心空间的纳米结构设计以适应硅阳极的300%变化,为高能电池创造了令人兴奋的承诺。然而,在电极制造的压延过程中具有弱机械稳定性的挑战以及仍有差的体积能密度仍然待解决。在这里,我们通过在次微介质颗粒上设计致密的硅壳涂层来制造耐压硅结构,每个硅壳涂层包括许多硅纳米颗粒。硅层显着提高了机械稳定性,而内部多孔结构有效地适应体积膨胀。这种结构可以抵抗超过100MPa的高压,并且在压延过程之后保持良好,展示了2041mAhcm-3的高容量容量。另外,致密硅壳减小了表面积,从而提高了初始库仑效率。利用进一步的封装具有石墨烯笼,其允许硅芯在保持电触点的同时在笼内膨胀,硅中空结构具有高初始的库仑效率和后来的库仑效率的快​​速升高至99.5%和优异的稳定性全牢房电池。

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