首页> 外文会议>Symposium on joint general session: batteries and energy storage -and- fuel cells, electrolytes, and energy conversion;Meeting of The Electrochemical Society >Binder-Free Freestanding Flexible Si Nanoparticles-Multi-Walled Carbon Nanotubes Composite Anodes for Li-Ion Batteries
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Binder-Free Freestanding Flexible Si Nanoparticles-Multi-Walled Carbon Nanotubes Composite Anodes for Li-Ion Batteries

机译:锂离子电池的无粘结剂独立式柔性Si纳米颗粒-多壁碳纳米管复合阳极

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Binder-free freestanding flexible Si nanoparticles-multi-walled carbon nanotubes (SiNPs-MWNTs) composite paper anodes have been prepared by simple, inexpensive, and scalable approach of ultra-sonication and pressure filtration. The 3D network of MWNTs forms a continuous conductive pathway within the composite structure, which ensures sufficient electrical conductivity, holds the particles together, and alleviates volume expansion of Si. Through control of Si/C weight ratio, we found out the SiNPs-MWNTs electrode with 3:2 Si/C ratio exhibits the optimal balance between high capacity of SiNPs and high conductivity and structural stabilization quality of MWNTs, leading to high rate capability as well as specific capacity and cycle performance superior to conventional slurry-cast SiNPs anode using binder and Cu current collector. After 100 cycles, the electrode retains capacity of 1170 mAh/g at 100 mA/g. The freestanding feature of our electrode eliminates the non-active mass, which is promising for enhanced capacity and energy density of Li-ion cells.
机译:通过简单,廉价且可扩展的超声和压力过滤方法,制备了无粘合剂的独立式柔性Si纳米颗粒-多壁碳纳米管(SiNPs-MWNTs)复合纸阳极。 MWNT的3D网络在复合结构内形成了连续的导电路径,从而确保了足够的导电性,将颗粒保持在一起并减轻了Si的体积膨胀。通过控制Si / C重量比,我们发现Si / C比为3:2的SiNPs-MWNTs电极在MWNTs的高容量与高导电性和结构稳定质量之间表现出最佳的平衡,从而具有高倍率能力以及比容量和循环性能优于使用粘合剂和铜集电器的常规浆料浇铸SiNPs阳极。在100次循环后,电极在100 mA / g时保持1170 mAh / g的容量。我们电极的独立功能消除了非活性物质,这有望提高锂离子电池的容量和能量密度。

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  • 会议地点 San Diego(US)
  • 作者

    K. Yao; J. P. Zheng; R. Liang;

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    Materials Science Engineering Florida State University Tallahassee Florida 32310 USA Aero-propulsion Mechatronics and Energy Center (AME) Florida State University Tallahassee Florida 32310 USA High-Performance Materials Institute (HPMI) Florida State University Tallahassee Florida 32310 USA;

    Aero-propulsion Mechatronics and Energy Center (AME) Florida State University Tallahassee Florida 32310 USA Department of Electrical Computer Engineering Florida AM University-Florida State University College of Engineering Tallahassee Florida 32310 USA;

    High-Performance Materials Institute (HPMI) Florida State University Tallahassee Florida 32310 USA Department of Industrial and Manufacturing Engineering Florida AM University-Florida State University College of Engineering Tallahassee Florida 32310 USA;

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