4.8 Article

Si-Encapsulating Hollow Carbon Electrodes via Electroless Etching for Lithium-Ion Batteries

Journal

ADVANCED ENERGY MATERIALS
Volume 3, Issue 2, Pages 206-212

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/aenm.201200389

Keywords

electroless etching; electrode thickness; hollow carbon; lithium-ion batteries; Si anode

Funding

  1. MKE (The Ministry of Knowledge Economy), Korea under ITRC(Information Technology Research Center) support program
  2. NIPA(National IT Industry Promotion Agency) [NIPA-2012-H0301-12-1009]
  3. National Research Foundation of Korea (NRF)
  4. Korea Government (MEST) [2011-0027950]

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Remarkable improvements in the electrochemical performance of Si materials for Li-ion batteries have been recently achieved, but the inherent volume change of Si still induces electrode expansion and external cell deformation. Here, the void structure in Si-encapsulating hollow carbons is optimized in order to minimize the volume expansion of Si-based anodes and improve electrochemical performance. When compared to chemical etching, the hollow structure is achieved via electroless etching is more advanced due to the improved electrical contact between carbon and Si. Despite the very thick electrodes (30 approximate to 40 m), this results in better cycle and rate performances including little capacity fading over 50 cycles and 1100 mA h g1 at 2C rate. Also, an in situ dilatometer technique is used to perform a comprehensive study of electrode thickness change, and Si-encapsulating hollow carbon mitigates the volume change of electrodes by adoption of void space, resulting in a small volume increase of 18% after full lithiation corresponding with a reversible capacity of about 2000 mA h g1.

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