| Literature DB >> 28878149 |
Yan Zhao1, Jun Ren2, Taizhe Tan3, Moulay-Rachid Babaa4,5, Zhumabay Bakenov6,7, Ning Liu8, Yongguang Zhang9.
Abstract
The synthesis of highly porous carbon (HPC) materials from poplar catkin by KOH chemical activation and hydrothermal carbonization as a conductive additive to a lithium-sulfur cathode is reported. Elemental sulfur was composited with as-prepared HPC through a melt diffusion method to form a S/HPC nanocomposite. Structure and morphology characterization revealed a hierarchically sponge-like structure of HPC with high pore volume (0.62 cm³∙g −1 ) and large specific surface area (1261.7 m²∙g −1 ). When tested in Li/S batteries, the resulting compound demonstrated excellent cycling stability, delivering a second-specific capacity of 1154 mAh∙g −1 as well as presenting 74% retention of value after 100 cycles at 0.1 C. Therefore, the porous structure of HPC plays an important role in enhancing electrochemical properties, which provides conditions for effective charge transfer and effective trapping of soluble polysulfide intermediates, and remarkably improves the electrochemical performance of S/HPC composite cathodes.Entities:
Keywords: cathode; lithium/sulfur battery; poplar catkin; sulfur/highly porous carbon composite
Year: 2017 PMID: 28878149 PMCID: PMC5618371 DOI: 10.3390/nano7090260
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1XRD patterns of S, HPC and S/HPC composite.
Figure 2N2 adsorption-desorption isotherms and pore size distribution of HPC and S/HPC composite.
Figure 3XPS spectra and high-resolution spectra of S 2p of S/HPC composite.
Figure 4(a) SEM image of HPC, inset: SEM image of carbon microtube derived from catkin without KOH activation; (b,c) TEM images of HPC at different magnifications; (d) SEM image of S/HPC composite; (e–g) TEM image of S/HPC sample and EDS mapping showing distribution of C and S.
Figure 5TGA plot of S/HPC composite.
Figure 6Charge/discharge potential profiles of S/HPC composite cathode at 0.1 C.
Figure 7Cycling performance of S/HPC composite cathode at 0.1 C.
Figure 8CV profiles of S/HPC composite cathode (the potential sweep rate is 0.1 mV∙s−1).
Figure 9Rate capability of the lithium cells with S/HPC composite cathode.