4.7 Article

Neurons-system-like structured SnS2/CNTs composite for high-performance sodium-ion battery anode

Journal

RARE METALS
Volume 40, Issue 6, Pages 1383-1390

Publisher

NONFERROUS METALS SOC CHINA
DOI: 10.1007/s12598-020-01555-6

Keywords

SnS2/CNTs; Sodium-ion batteries; Anode; Composite; Rate capability

Funding

  1. National Natural Science Foundation of China [51704124, 51762017, 11602094]
  2. Key Planned Science and Technology Project of Xiangxi Tujia & Miao Autonomous Prefecture [2018GX2001]
  3. Program of Youth Talent Support for Hunan Province [2018RS3098]
  4. Key Program of Hunan Provincial Education Department [18A285]
  5. Natural Science Foundation of Hunan Province [2018JJ3415, 2019JJ50485]

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A nervous-system-like structured SnS2/CNTs composite was successfully synthesized, exhibiting superior electrochemical performance, including high specific capacity, excellent rate performance, and superior cycling stability. This composite provides a novel strategy for the development of SIBs with high electrochemical performance.
Sodium-ion batteries (SIBs) have attracted significant attention with respect to renewable energy power generation systems because of the abundant reserves of sodium on earth. However, anode materials are presently limited by low energy density, poor rate performance and inferior cycling stability. In recent years, tin disulfide (SnS2) with a particular layered structure has been considered as a promising anode material for SIBs due to its high theoretical capacity and low cost. Herein, a nervous-system-like structured SnS2/CNTs composite was successfully synthesized via a hydrothermal method. The SnS(2)sheets were strung with carbon nanotubes (CNTs) to form a hierarchical porous structure, which is effective for electrolyte diffusion and electronic transmission. The large distance of the (001) plane (0.5899 nm) of SnS2-favors Na+ insertion-extraction dynamics. Benefitting from these structural characteristics, SnS2/CNTs electrodes exhibit high specific capacity, excellent rate performance and superior cycling stability. A high charge capacity of 642 mAh.g(-1) was released at 0.2 A.g(-1), and then, a high reversible capacity of 427 mAh.g(-1) was retained after 100 cycles. Even charged at 2 A.g(-1), the SnS2/CNTs electrode maintained a capacity of 282 mAh.g(-1). The nervous-system-like structure of the SnS2/CNTs composite provides a novel strategy for the development of SIBs with high electrochemical performance.

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