The rational design of MoS/carbon composites have been widely used to improve the lithium storage capability. However, their deep applications remain a big challenge due to the slow electrochemical reaction kinetics of MoS and weak bonding between MoS and carbon substrates. In this work, anthracite-derived porous carbon (APC) is sequential coated by TiO nanoparticles and MoS nanosheets via a chemical activation and two-step hydrothermal method, forming the unique APC@TiO@MoS ternary composite. The dynamic analysis, in-situ electrochemical impedance spectroscopy as well as theoretical calculation together demonstrate that this innovative design effectively improves the ion/electron transport behavior and alleviates the large volume expansion during cycles. Furthermore, the introduction of middle TiO layer in the composite significantly strengthens the mechanical stability of the entire electrode. As expected, the as-prepared APC@TiO@MoS anode displays a high lithium storage capacity with a reversible capacity of 655.8 mAh g after 150 cycles at 200 mA g, and robust cycle stability. Impressively, even at a high current density of 2 A g, the electrode maintains a superior reversible capacity of 597.7 mAh g after 1100 cycles. This design highlights a feasibility for the development of low-cost anthracite-derived porous carbon-based electrodes.
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http://dx.doi.org/10.1002/cssc.202401396 | DOI Listing |
ChemSusChem
August 2024
School of Environmental and Chemical Engineering, Institute of Nanochemistry and Nanobiology, Shanghai University, Shanghai, 200444, P. R. China.
The rational design of MoS/carbon composites have been widely used to improve the lithium storage capability. However, their deep applications remain a big challenge due to the slow electrochemical reaction kinetics of MoS and weak bonding between MoS and carbon substrates. In this work, anthracite-derived porous carbon (APC) is sequential coated by TiO nanoparticles and MoS nanosheets via a chemical activation and two-step hydrothermal method, forming the unique APC@TiO@MoS ternary composite.
View Article and Find Full Text PDFNanomaterials (Basel)
September 2019
Laboratory of Polymer Materials and Engineering, Ningbo Institute of Technology, Zhejiang University, Ningbo 315100, China.
A novel approach is developed to synthesize a nitrogen-doped porous CoO/anthracite-derived graphene (CoO/AG) nanocomposite through a combined self-assembly and heat treatment process using resource-rich anthracite as a carbonaceous precursor. The nanocomposite contains uniformly distributed CoO nanoparticles with a size smaller than 8 nm on the surface of porous graphene, and exhibits a specific surface area (120 m·g), well-developed mesopores distributed at 3~10 nm, and a high level of nitrogen doping (5.4 at.
View Article and Find Full Text PDFEnter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!