4.6 Article

Tin sulfide (SnS) nanorods: structural, optical and lithium storage property study

Journal

RSC ADVANCES
Volume 4, Issue 20, Pages 10358-10366

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c3ra46308g

Keywords

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Funding

  1. US-India Partnership to Advance Clean Energy-Research (PACER) for the Solar Energy Research Institute for India
  2. United States (SERIIUS)
  3. U.S. Department of Energy (Office of Science, Office of Basic Energy Sciences, and Energy Efficiency and Renewable Energy, Solar Energy Technology Program [DE-AC36-08GO28308]
  4. Government of India, through the Department of Science and Technology [IUSSTF/JCERDC-SERIIUS/2012]

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Tin mono-sulfide (SnS) nanorods (NRs) have been successfully synthesized through a solvothermal process using hydrated tin(II) chloride and sodium sulfide as precursors and N,N-dimethyl formamide (DMF) as solvent. The Reitveld refined powder X-ray diffraction (PXRD), Raman and Sn-119 solid-state NMR experiments have confirmed the presence of a SnS phase with Pnma space group and a SnS2 phase with P (3) over bar m1 space group as a minor impurity. HRTEM and HRSEM studies have confirmed the nanoparticle shape as nanorods (NRs). The growth of the NRs has been explained from the observation that by increasing the solvothermal temperature, nanorods grow preferentially in the [100] direction. Optical properties of the SnS nanorods were measured and it was found that all NRs have an indirect band gap in the range of 1.10 eV to 1.2 eV. The electrochemical properties for lithium storage (half-cell configuration) have been tested against Li/Li+ using conventional polyvinylidene fluoride (PVDF) binder and an eco-friendly, low cost binder, carboxy methyl cellulose (CMC). After fifty cycles of charge-discharge, the CMC binder electrode shows a superior electrochemical charge storage property of 591 mA h g(-1) compared with 385 mA h g(-1) for the PVDF binder electrode, at 160 mA g(-1) current rate. At a high current rate of 350 mA g(-1), the SnS NRs with the CMC binder shows a discharge capacity of 565 mA h g(-1) after 50 cycles, therefore exhibiting excellent properties for a lithium battery anode as it can maintain a high capacity and coulombic efficiency continuously for 50 cycles.

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