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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >High-Energy Ni-Rich Li[NixCoyMn1-x-y]O-2 Cathodes via Compositional Partitioning for Next-Generation Electric Vehicles
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High-Energy Ni-Rich Li[NixCoyMn1-x-y]O-2 Cathodes via Compositional Partitioning for Next-Generation Electric Vehicles

机译:高能量Ni-富含Li [NixCoymn1-X-Y] O-2阴极,通过组成分配用于下一代电动车辆

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Electrochemical properties and structural and thermal stability of Li[Ni0.65Co0.13Mn0.22]O-2 (FCG65), Li[Ni0.75Co0.08Mn0.17]O-2 (TSFCG75), and Li[Ni0.85Co0.05Mn0.10]O-2 (TSFCG85) with concentration gradients of Ni and Mn were evaluated to comprehensively demonstrate the effectiveness of compositional gradation for a wide range of Ni-rich Li[NixCoyMn1xy]O-2 (NCM) cathodes. The discharge capacities of FCG65, TSFCG75, and TSFCG85 were 194.2, 206.8, and 222.2 mAh g(1), respectively with capacity retention of over 90% after 100 cycles. The high capacities and enhanced cycling stability relative to those of conventional Ni-rich NCM cathodes were attributed to the compositional partitioning, strong crystallographic texture, and unique particle morphology. In addition, the highly correlated particle orientation helped to reduce the anisotropic internal strain induced by Li removal/extraction from the Ni-rich NCM cathodes. The accelerated aging test (storing the delithiated cathodes in an electrolyte at elevated temperature) reconfirmed the superior stability of the TSFCG85 cathode compared to the commercial Li[Ni0.82Co0.14Al0.04]O-2 cathode, which exhibited fast structural degradation. Thus, NCM cathodes with concentration gradients represent a viable solution that simultaneously addresses the specific energy density, cycling and chemical stability, and safety issues of Ni-enriched NCM cathodes for general electromobility.
机译:Li [Ni0.65Co0.13Mn0.22] O-2(FCG65),Li [Ni0.75CO0.08MN0.17] O-2(TSFCG75)和Li [Ni0.85Co0.05Mn0]的电化学性质及结构和热稳定性。 .10]评价浓度梯度和Mn浓度梯度的O-2(TSFCG85),以综合证明了组合物灰度为各种富含Ni的Li [Nixcoymn1xy] O-2(NCM)阴极的有效性。 FCG65,TSFCG75和TSFCG85的放电容量为194.2,206.8和222.2mAhg(1),分别在100次循环后的容量保持超过90%。相对于常规Ni的NCM阴极的高容量和增强的循环稳定性归因于组合物分配,强晶状体纹理和独特的颗粒形态。此外,高度相关的颗粒取向有助于降低由富镍的NCM阴极的Li除去/提取引起的各向异性内部菌株。加速老化试验(在电解质中储存在升高的温度下的电解质中)重新确认了与商业Li [Ni0.82CO0.14A10.04] O-2阴极相比的TSFCG85阴极的优异稳定性,其表现出快速结构降解。因此,具有浓度梯度的NCM阴极代表一种可行的溶液,其同时解决具有用于通式电力的Ni-Riched NCM阴极的特定能量密度,循环和化学稳定性。

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