4.8 Article

Carbon-shell-constrained silicon cluster derived from Al-Si alloy as long-cycling life lithium ion batteries anode

Journal

JOURNAL OF POWER SOURCES
Volume 381, Issue -, Pages 66-71

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.jpowsour.2018.02.010

Keywords

Lithium-ion batteries; Long-cycling life; Nanostructure; Scalable; Silicon anode

Funding

  1. 973program, China [2013CB934103]
  2. National Natural Science Foundation, China [21473040]
  3. Science & Technology Commission of Shanghai Municipality, China [08DZ2270500]

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Although silicon is the most promising anode material for Li-ion batteries, large volume expansion during lithiation and delithiation is the main obstacle limiting the commercial application of silicon anodes. There are two ways to alleviate volume expansion and prevent further pulverization of a Si anode: fabrication of a rational nanostructure possessing void spaces and uniform distribution of the conducting sites, without a good balance effect in mitigating the limiting factors and enhancing battery performance. In this paper, we propose a novel nanostructure a carbon-shell-constrained Si cluster (Si/C shell) with both adequate void space and good distribution of electrical contact sites to guarantee homogeneous lithiation in the initial cycle. Benefiting from the ability to maintain electrical conductivity of the outer carbon shell, even after cluster fragmentation, the Si/C shell synthesized from low-cost commercial Al-Si alloy spheres can deliver 0.03% capacity loss from 100th to 1000th cycles at a current density of 1 A g(-1). The Si/C shell sample with the dual functional structure mentioned above can also maintain its own nanostructure during cycling and deliver excellent rate performance. It is a concise and scalable strategy which can simplify the preparation of other alloy anode materials for Li-ion batteries.

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