4.8 Article

SnS Nanosheets Confined Growth by S and N Codoped Graphene with Enhanced Pseudocapacitance for Sodium-Ion Capacitors

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 11, Issue 44, Pages 41363-41373

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.9b14098

Keywords

SnS; graphene; N,S co-doped; pseudocapacitive; sodium-ion capacitor

Funding

  1. National Natural Science Foundation of China [51604250, 51502250, 51474196]
  2. Science AMP
  3. Technology Department of Sichuan Province [2019YFG0220, 2016RZ0071, 2017JQ0044]
  4. Youth Science and Technology Innovation Team of Energy Material Electrochemistry of Southwest Petroleum University [2015CXTD04]
  5. China Scholarship Council [201708515143]

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Layered tin monosulfide (SnS) is a promising anode material for sodium-ion batteries because of its high theoretical capacity of 1020 mA h g(-1). Its large interlayer spacing permits fast sodium-ion transport, making it a viable candidate for sodium-ion capacitors (SICs). In this work, we designed and synthesized oriented SnS nanosheets confined in graphene in the presence of poly(diallyl dimethyl ammonium chloride) by electrostatic self-assembly during hydrothermal growth. SnS nanosheets growing along (l00) and (0l0) directions are suppressed because of the confinement by graphene, which exhibit smaller thickness and particle size. These nanostructures expose abundant open edges because of the presence of Sn4+-O, which offers rich active sites and Na+ easy transport pathways. Vacancies formed at these edges along with S and N codopants in the graphitic structure synergistically promoted Na+ surface adsorption/desorption. Such nanocomposites with SnS nanosheets confined by N,S codoped graphene demonstrated significantly enhanced pseudocapacitance. The SICs delivered excellent energy densities of 113 and 54 W h kg(-1) at power densities of 101 and 11 100 W Kg(-1), respectively, with 76% capacity retention after 2000 cycles at 1 A g(-1).

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