4.8 Article

Low-Cost and Novel Si-Based Gel for Li-Ion Batteries

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 9, Issue 12, Pages 10699-10707

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.7b00460

Keywords

Si; graphene; carbon nanotube; hydrogel; high-energy ball milling; anode materials; Li-ion batteries

Funding

  1. National Natural Science Foundation of China [21671096]
  2. Shenzhen Peacock Plan [KQCX20140522150815065]
  3. Natural Science Foundation of Shenzhen [JCYJ20150630145302231, JCYJ20150331101823677]
  4. Starting-Up Funds of South University of Science and Technology of China (SUSTC) through the talent plan of the Shenzhen Government
  5. Science and Technology Innovation Foundation for the Undergraduates of SUSTech [2015x19, 2015x12]
  6. Hunan provincial ST plan of China [2016TP1007, 2014FJ2007]

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Si-based nanostructure composites have been intensively investigated as anode materials for next-generation lithium-ion batteries because of their ultra-high-energy storage capacity. However, it is still a great challenge to fabricate a perfect structure satisfying all the requirements of good electrical conductivity, robust matrix for buffering large volume expansion, and intact linkage of Si particles upon long-termcycling. Here, we report a novel design of Si-based multi component three-dimensional (3D) networks in which the Si core is capped with phytic acid shell layers through a facile highenergy ball-milling method. By mixing the functional Si with graphene oxide and functionalized carbon nanotube, we successfully Obtained a homogeneous and conductive rigid silicon-based gel through complexation. Interestingly, this Si-based gel with a fancy 3D cross-linking structure could be writable and printable. In particular, this Si-based gel composite delivers a moderate specific capacity of 2711 mA h g(-1) at a current density of 420 mA g(-1) and retained a competitive discharge capacity of more than 800.00 mA h g(-1) at the current density of 420 mA g(-1) after 700 cycles. We provide a new method to fabricate durable Si-based anode material for next-generation high-performance lithium-ion batteries.

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