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Facile Synthesis of 3D Anode Assembly with Si Nanoparticles Sealed in Highly Pure Few Layer Graphene Deposited on Porous Current Collector for Long Life Li-Ion Battery

机译:用Si纳米粒子密封在高纯少数层石墨烯中的3D阳极组件的容纳合成,沉积在多孔集电器上的长寿命锂离子电池

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With its exceptional theoretical charge capacity, silicon holds great promise as an anode material for realization of high energy density Li-ion batteries. However, extensive volume expansion and poor cycle stability of silicon compromise its actual use. In an effort to tame volume expansion and structural disintegration during cycling, an innovative 3D electrode assembly is fabricated involving continuous layer of graphene coated on porous current collector and Si nanoparticles sealed in as an active material. Graphene deposition and pore formation in metal current collector is achieved in a unique single step synthesis. All the active components like current collector, reacting material, and conducting material are manipulated in a way to produce synergistic architecture in a chemical vapor deposition process. Highly pure graphene deposited in this process enables efficient electron transfer from allover of the surface of silicon nanoparticles and prevents continuous solid electrolyte interphase layer formation. This binder free anode assembly shows extremely stable lithium storage performance for over 1000 cycles with 88% of initial capacity retention and 100% Coulombic efficiency.
机译:凭借其特殊的理论充电能力,硅作为用于实现高能量密度锂离子电池的阳极材料具有很大的希望。然而,硅的广泛体积膨胀和循环稳定性较差的硅损害其实际使用。在循环期间驯服体积膨胀和结构崩解的努力,制造着一种创新的3D电极组件,涉及涂覆在多孔集电体上的连续石墨烯层和密封作为活性材料的Si纳米颗粒。在独特的单步合成中实现了金属集电器中的石墨烯沉积和孔形成。所有活性组件,如集电器,反应材料和导电材料被操纵以在化学气相沉积过程中产生协同结构。在该过程中沉积的高纯石墨烯可以从硅纳米颗粒表面的整体中有效电子转移,并防止连续的固体电解质相互作用层形成。该粘合剂免费阳极组件显示出极其稳定的锂储存性能,以超过1000个循环,初始容量保持88%,100%的库仑效率。

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