首页> 外文期刊>Energy & environmental science >High-energy-density lithium-ion battery using a carbon-nanotube-Si composite anode and a compositionally graded Li[Ni0.85Co0.05Mn0.10]O-2 cathode
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High-energy-density lithium-ion battery using a carbon-nanotube-Si composite anode and a compositionally graded Li[Ni0.85Co0.05Mn0.10]O-2 cathode

机译:使用碳纳米管-Si复合阳极和成分分级的Li [Ni0.85Co0.05Mn0.10] O-2阴极的高能量密度锂离子电池

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摘要

A fully operational practical Li-rechargeable battery system delivering unprecedented high energy density with excellent cycle life was proposed using the state-of-the-art cathode and anode technologies. Based on the simple ball-milling process, a carbon nanotube (CNT)-Si composite anode with extremely stable long-term cycling, while providing a discharge capacity of 2364 mA h g(-1) at a tap density of 1.103 g cm(-3), was developed. For the cathode, a two-sloped full concentration gradient (TSFCG) Li[Ni0.85Co0.05Mn0.10]O-2 cathode, designed to obtain maximum possible discharge capacity by having a Ni-enriched core and to simultaneously ensure high chemical and thermal stability by having an outer Mn-enriched layer, yielded a discharge capacity of 221 mA h g(-1). Integrating the CNT-Si composite and the TSFCG cathode in a full cell configuration, the full cell generated an energy density of 350 W h kg(-1) with excellent capacity retention for 500 cycles at 1 C rate, satisfying the energy density limit imposed by the drive range requirement for EVs. The proposed battery system satisfied the demands for energy storage for vehicle applications in terms of energy density, power and cycle life.
机译:提出了使用最先进的正极和负极技术,可提供空前的高能量密度和出色的循环寿命的可完全操作的实用锂充电电池系统。基于简单的球磨工艺,碳纳米管(CNT)-Si复合阳极具有非常稳定的长期循环,同时在1.103 g cm(-)的抽头密度下提供2364 mA hg(-1)的放电容量3),被开发出来。对于阴极,采用两坡度全浓度梯度(TSFCG)Li [Ni0.85Co0.05Mn0.10] O-2阴极,该阴极的设计旨在通过具有富镍的磁芯来获得最大可能的放电容量,并同时确保较高的化学稳定性和化学稳定性。由于具有外部Mn富集层而具有热稳定性,因此放电容量为221 mA hg(-1)。将CNT-Si复合材料和TSFCG阴极集成在一个完整的电池配置中,该完整的电池产生的能量密度为350 W h kg(-1),在1 C速率下可保持500次循环的出色容量,满足施加的能量密度限制电动汽车的行驶里程要求。所提出的电池系统在能量密度,功率和循环寿命方面满足了车辆应用对能量存储的需求。

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  • 来源
    《Energy & environmental science》 |2016年第6期|2152-2158|共7页
  • 作者单位

    Hanyang Univ, Dept Energy Engn, Seoul 133791, South Korea;

    Hanyang Univ, Dept Mat Sci & Engn, Seoul 133791, South Korea;

    Hanyang Univ, Dept Energy Engn, Seoul 133791, South Korea;

    CBMW Grp, Petuelring 130, D-80788 Munich, Germany;

    CBMW Grp, Petuelring 130, D-80788 Munich, Germany;

    CBMW Grp, Petuelring 130, D-80788 Munich, Germany;

    Sejong Univ, Dept Nano Sci & Technol, Seoul 143747, South Korea;

    Hanyang Univ, Dept Energy Engn, Seoul 133791, South Korea;

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