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Interfacial Modulation of a Self-Sacrificial Synthesized SnO 2 @Sn Core-Shell Heterostructure Anode toward High-Capacity Reversible Li + Storage.

Bo DengRong HeJing ZhangCaiyin YouYonglan XiQingbo XiaoYongzheng ZhangHai-Tao LiuMeinan LiuFangmin YeHongzhen LinJian Wang
Published in: Inorganic chemistry (2023)
Sn-based anodes are promising high-capacity anode materials for low-cost lithium ion batteries. Unfortunately, their development is generally restricted by rapid capacity fading resulting from large volume expansion and the corresponding structural failure of the solid electrolyte interphase (SEI) during the lithiation/delithiation process. Herein, heterostructural core-shell SnO 2 -layer-wrapped Sn nanoparticles embedded in a porous conductive nitrogen-doped carbon (SOWSH@PCNC) are proposed. In this design, the self-sacrificial Zn template from the precursors is used as the pore former, and the LiF-Li 3 N-rich SEI modulation layer is motivated to average uniform Li + flux against local excessive lithiation. Meanwhile, both the chemically active nitrogen sites and the heterojunction interfaces within SnO 2 @Sn are implanted as electronic/ionic promoters to facilitate fast reaction kinetics. Consequently, the as-converted SOWSH@PCNC electrodes demonstrate a significantly boosted Li + capacity of 961 mA h g -1 at 200 mA g -1 and excellent cycling stability with a low capacity decaying rate of 0.071% after 400 cycles at 500 mA g -1 , suggesting their great promise as an anode material in high-performance lithium ion batteries.
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