4.6 Article

Design and tailoring of three-dimensional graphene-Vulcan carbon-Bi2S3 ternary nanostructures for high-performance lithium-ion-battery anodes

期刊

RSC ADVANCES
卷 5, 期 65, 页码 52687-52694

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ROYAL SOC CHEMISTRY
DOI: 10.1039/c5ra03990h

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  1. Ministry of Science, ICT and Future Planning, Republic of Korea [2014034504]
  2. Center for Integrated Smart Sensors - Ministry of Science, ICT and Future Planning, Republic of Korea, as Global Frontier Project [CISS-012M3A6A6054186]

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Design of the structure and morphology of electrode materials is crucial for creating short transport pathways for lithium ions and electrons in high-performance lithium-ion battery systems. Here, a strategy for preparing three-dimensional (3D) carbon-based architectures consisting of bismuth sulfide (Bi2S3) and Vulcan carbon spheres intercalated between graphene sheets is proposed. Bi2S3 nanoparticles were successfully deposited on the graphene/Vulcan carbon composite via a facile ultrasonic route, followed by a thermal treatment process for achieving high crystallinity. In the unique hybrid structure, commercial Vulcan carbon, a low-priced and mass produced carbon material, acts as a nanospacer, thereby preventing the restacking of graphene nanosheets and thus increasing the surface area of the composite. In addition, it also provides an additional electron-transport pathway, increasing the electrolyte/electrode interface contact and facilitating transport of the electrons and lithium ions into the bulk of the composite. Consequently, the 3D graphene-Vulcan carbon-Bi2S3 nanocomposite exhibited a high reversible capacity of 702 mA h g(-1) (graphene/Vulcan = 3 : 1 wt%) after 100 cycles and excellent rate performance compared to graphene-Bi2S3 nanocomposites, demonstrating the potential of 3D graphene-Vulcan carbon-Bi2S3 nanocomposites for use as the anode material for lithium-ion batteries.

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