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Hierarchical porous silicon structures with extraordinary mechanical strength as high-performance lithium-ion battery anodes.


ABSTRACT: Porous structured silicon has been regarded as a promising candidate to overcome pulverization of silicon-based anodes. However, poor mechanical strength of these porous particles has limited their volumetric energy density towards practical applications. Here we design and synthesize hierarchical carbon-nanotube@silicon@carbon microspheres with both high porosity and extraordinary mechanical strength (>200?MPa) and a low apparent particle expansion of ~40% upon full lithiation. The composite electrodes of carbon-nanotube@silicon@carbon-graphite with a practical loading (3?mAh?cm-2) deliver ~750?mAh?g-1 specific capacity, <20% initial swelling at 100% state-of-charge, and ~92% capacity retention over 500 cycles. Calendered electrodes achieve ~980?mAh?cm-3 volumetric capacity density and <50% end-of-life swell after 120 cycles. Full cells with LiNi1/3Mn1/3Co1/3O2 cathodes demonstrate >92% capacity retention over 500 cycles. This work is a leap in silicon anode development and provides insights into the design of electrode materials for other batteries.

SUBMITTER: Jia H 

PROVIDER: S-EPMC7081208 | biostudies-literature | 2020 Mar

REPOSITORIES: biostudies-literature

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Hierarchical porous silicon structures with extraordinary mechanical strength as high-performance lithium-ion battery anodes.

Jia Haiping H   Li Xiaolin X   Song Junhua J   Zhang Xin X   Luo Langli L   He Yang Y   Li Binsong B   Cai Yun Y   Hu Shenyang S   Xiao Xingcheng X   Wang Chongmin C   Rosso Kevin M KM   Yi Ran R   Patel Rajankumar R   Zhang Ji-Guang JG  

Nature communications 20200319 1


Porous structured silicon has been regarded as a promising candidate to overcome pulverization of silicon-based anodes. However, poor mechanical strength of these porous particles has limited their volumetric energy density towards practical applications. Here we design and synthesize hierarchical carbon-nanotube@silicon@carbon microspheres with both high porosity and extraordinary mechanical strength (>200 MPa) and a low apparent particle expansion of ~40% upon full lithiation. The composite el  ...[more]

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