Structural Design and Synthesis of an SnO @C@Co-NC Composite as a High-Performance Anode Material for Lithium-Ion Batteries.

Chemistry

State Key Laboratory of Multiphase Complex Systems, CAS Key Laboratory of Green Process Engineering, Institute of Process Engineering, Chinese Academy of Sciences, Beijing, 100190, P.R. China.

Published: October 2020

To overcome the drawbacks of the structural instability and poor conductivity of SnO -based anode materials, a hollow core-shell-structured SnO @C@Co-NC (NC=N-doped carbon) composite was designed and synthesized by employing the heteroatom-doping and multiconfinement strategies. This composite material showed a much-reduced resistance to charge transfer and excellent cycling performance compared to the bare SnO nanoparticles and SnO @C composites. The doped heteroatoms and heterostructure boost the charge transfer, and the porous structure shortens the Li-ion diffusion pathway. Also, the volume expansion of SnO NPs is accommodated by the hollow space and restricted by the multishell heteroatom-doped carbon framework. As a result, this structured anode material delivered a high initial capacity of 1559.1 mA h g at 50 mA g and an initial charge capacity of 627.2 mA h g at 500 mA g . Moreover, the discharge capacity could be maintained at 410.8 mA h g after 500 cycles with an attenuation rate of only 0.069 % per cycle. This multiconfined SnO @C@Co-NC structure with superior energy density and durable lifespan is highly promising for the next-generation lithium-ion batteries.

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http://dx.doi.org/10.1002/chem.202002583DOI Listing

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