• Journal of Semiconductors
  • Vol. 41, Issue 9, 092701 (2020)
Hongfan Zhu1, Mo Sha1、2, Huaping Zhao2, Yuting Nie1, Xuhui Sun1, and Yong Lei2
Author Affiliations
  • 1Institute of Functional Nano and Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials and Devices, Collaborative Innovation Centre of Suzhou Nano Science and Technology, Soochow University, Suzhou 215123, China
  • 2Fachgebiet Angewandte Nanophysik, Institut für Physik & IMN MacroNano ® (ZIK), Technische Universität Ilmenau, Ilmenau 98693, Germany
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    DOI: 10.1088/1674-4926/41/9/092701 Cite this Article
    Hongfan Zhu, Mo Sha, Huaping Zhao, Yuting Nie, Xuhui Sun, Yong Lei. Highly-rough surface carbon nanofibers film as an effective interlayer for lithium–sulfur batteries[J]. Journal of Semiconductors, 2020, 41(9): 092701 Copy Citation Text show less
    (Color online) (a) Schematic illustration of a Li–S cell configuration with a N-CNFs interlayer inserting between cathode and separator. (b) Digital image of a N-CNFs interlayer. (c, d) SEM images of the as-spun PAN/PVP nanofibers and the final N-CNFs (inset is the SEM image of the final PAN/PVP nanofibers).
    Fig. 1. (Color online) (a) Schematic illustration of a Li–S cell configuration with a N-CNFs interlayer inserting between cathode and separator. (b) Digital image of a N-CNFs interlayer. (c, d) SEM images of the as-spun PAN/PVP nanofibers and the final N-CNFs (inset is the SEM image of the final PAN/PVP nanofibers).
    (Color online) (a–c) TEM images of a single N-CNFs fiber. (d–f) HAADF STEM image and the element mappings for C and N, respectively.
    Fig. 2. (Color online) (a–c) TEM images of a single N-CNFs fiber. (d–f) HAADF STEM image and the element mappings for C and N, respectively.
    (Color online) (a) XPS general spectrum of N-CNFs and the corresponding high resolution spectra of (b) C 1s and (c) N 1s.
    Fig. 3. (Color online) (a) XPS general spectrum of N-CNFs and the corresponding high resolution spectra of (b) C 1s and (c) N 1s.
    (Color online) (a) XRD pattern of N-CNFs. (b) Raman spectra of N-CNFs. (c) N2 adsorption/desorption isotherms of N-CNFs and PAN/PVP nanofibers. (d) Thermogravimetric analysis of N-CNFs in the air.
    Fig. 4. (Color online) (a) XRD pattern of N-CNFs. (b) Raman spectra of N-CNFs. (c) N2 adsorption/desorption isotherms of N-CNFs and PAN/PVP nanofibers. (d) Thermogravimetric analysis of N-CNFs in the air.
    (Color online) Electrochemical performance of Li–S batteries with N-CNFs an interlayer. (a) Galvanostatic charge/discharge profiles at various cycles of the Li–S cells with a N-CNFs interlayer. (b) CV curves of the initial two cycles from 3.0 V to 1.0 V vs Li+/Li at a scan rate of 0.05 mV/s. (c) Cycling performance of the Li–S batteries using different interlayers and (d) rate capabilities at various current rates, from 0.1 C to 5 C and back to 0.2 C.
    Fig. 5. (Color online) Electrochemical performance of Li–S batteries with N-CNFs an interlayer. (a) Galvanostatic charge/discharge profiles at various cycles of the Li–S cells with a N-CNFs interlayer. (b) CV curves of the initial two cycles from 3.0 V to 1.0 V vs Li+/Li at a scan rate of 0.05 mV/s. (c) Cycling performance of the Li–S batteries using different interlayers and (d) rate capabilities at various current rates, from 0.1 C to 5 C and back to 0.2 C.
    Hongfan Zhu, Mo Sha, Huaping Zhao, Yuting Nie, Xuhui Sun, Yong Lei. Highly-rough surface carbon nanofibers film as an effective interlayer for lithium–sulfur batteries[J]. Journal of Semiconductors, 2020, 41(9): 092701
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