4.7 Article

Recycling of photovoltaic silicon waste for high-performance porous silicon/silver/carbon/graphite anode

Journal

WASTE MANAGEMENT
Volume 132, Issue -, Pages 56-63

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.wasman.2021.07.014

Keywords

Photovoltaic silicon waste; Waste recycling; Metal-assisted chemical etching; Silicon-graphite anodes; Lithium-ion batteries

Funding

  1. National Natural Science Foundation of China [61764009, 51762043, 51974143]
  2. National Key R&D Program of China [2018YFC1901801, 2018YFC1901805]
  3. Major Science and Technology Projects in Yunnan Province [2019ZE007]
  4. Key Project of Yunnan Province Natural Science Fund [2018FA027]
  5. Yunnan Ten Thousand Talents Plan Young & Elite Talents Project
  6. Program for Innovative Research Team in University of Ministry of Education of China [IRT17R48]

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This study utilized silicon waste to prepare a silicon/graphite composite anode for lithium-ion batteries, which showed enhanced cycling stability due to the novel design and structure. The research confirmed the potential for preparing lithium battery silicon-carbon anodes from silicon waste and offered a promising avenue for the value-added utilization of silicon cutting waste materials.
The rapid development photovoltaic industry has generated a huge amount of waste ultra-fine silicon cutting powder. The management and value-added recovery of silicon cutting waste is highly important for both environmental remediation and economic efficiency. In this work, silicon waste was used as a cost-effective raw material for the preparation of silicon/graphite anode for lithium-ion batteries. First, porous Si embedded with Ag particles (pSi/Ag) was produced by silver-assisted chemical etching (Ag-ACE). Then, pSi/Ag was loaded on a micron-sized graphite matrix (pSi/Ag/G), and organic carbon (C) produced by the pyrolysis of polyvinylpyrrolidone (PVP) acted as a link to closely connect pSi/Ag and graphite to form the pSi/Ag/C/G composite. The incorporated Ag particles and the porous structure improve electron transfer and mitigate the volume expansion effect of silicon. The novel design and structure of the anode can maintain the integrity of the electrode during cycling, and thus strongly improve cycling stability. The prepared pSi/Ag/C/G composite exhibited a large initial discharge capacity of 2353 mAh/g at 0.5 A/g and good initial coulombic efficiency of 83%, delivering a high capacity of 972 mAh/g at 1 A/g after 200 cycles. This work confirmed the possibility of the preparation of lithium battery silicon-carbon anode from silicon waste and provides a promising new avenue for value-added utilization of silicon cutting waste materials.

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