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Silicon nanowire growth on carbon cloth for flexible Li-ion battery anodes

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Binder and conductive additive-free Si nanowires (NWs) grown directly on the current collector have shown great potential as next generation Li-ion battery anodes. However, low active material mass loadings and consequentially low areal capacities have remained a challenge in their development. Herein, we report the high-density growth of Si NWs on carbon cloth (CC) for use as Li-ion battery anodes. The NW growth reactions were carried out using a modified, glassware-based solvent vapor growth (SVG) process. Optimized growth conditions were applied to CC substrates to generate flexible Si NW anodes for Li-ion batteries. Battery testing revealed high areal charge and discharge capacities (>2 mAh/cm2) compared to Si NWs grown on stainless steel (SS) substrates (~0.3 mAh/cm2) and stable long-term cycling with 80% capacity retention after 200 cycles. The findings reported herein represent a significant advancement in the field in terms of achievable areal capacity enabled by a low-cost glassware-based system.

Funding

Multinary Compound Si, Ge and Sn Derived Nanocrystals: Composition, Shape and Heterostructure Control via Solution Methods (NanoIVCrystals)

Science Foundation Ireland

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MAREI_Phase 2

Science Foundation Ireland

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Confirm Centre for Smart Manufacturing

Science Foundation Ireland

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Silicon Anodes through Nanostructural Development (SAND)

Science Foundation Ireland

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AMBER_Phase 2

Science Foundation Ireland

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History

Publication

Materials Today Energy, 27, 101030

Other Funding information

T.K. acknowledges support from the Sustainable Energy Authority of Ireland through the Research Development and Demonstration Funding Program (grant no. 19/RDD/548) and from Enterprise Ireland through the Innovation Partnership Program (grant no. IP 2019 0910)

Also affiliated with

  • Bernal Institute

Department or School

  • Chemical Sciences

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