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Optimized Temperature Effect of Li‐Ion Diffusion with Layer Distance in Li(NixMnyCoz)O2 Cathode Materials for High Performance Li‐Ion Battery
Authors:Suihan Cui  Yi Wei  Tongchao Liu  Wenjun Deng  Zongxiang Hu  Yantao Su  Hao Li  Maofan Li  Hua Guo  Yandong Duan  Weidong Wang  Mumin Rao  Jiaxin Zheng  Xinwei Wang  Feng Pan
Affiliation:1. School of Advanced Materials, Peking University, Shenzhen Graduate School, Shenzhen, P. R. China;2. Shenzhen Tianjiao Technology Development Co., Ltd., Shenzhen, P. R. China;3. Shenzhen OptimumNano Energy Co., Ltd., Shenzhen, P. R. China
Abstract:Understanding and optimizing the temperature effects of Li‐ion diffusion by analyzing crystal structures of layered Li(NixMnyCoz)O2 (NMC) (x + y + z = 1) materials is important to develop advanced rechargeable Li‐ion batteries (LIBs) for multi‐temperature applications with high power density. Combined with experiments and ab initio calculations, the layer distances and kinetics of Li‐ion diffusion of LiNixMnyCozO2 (NMC) materials in different states of Li‐ion de‐intercalation and temperatures are investigated systematically. An improved model is also developed to reduce the system error of the “Galvanostatic Intermittent Titration Technique” with a correction of NMC particle size distribution. The Li‐ion diffusion coefficients of all the NMC materials are measured from ?25 to 50 °C. It is found that the Li‐ion diffusion coefficient of LiNi0.6Mn0.2Co0.2O2 is the largest with the minimum temperature effect. Ab initio calculations and XRD measurements indicate that the larger Li slab space benefits to Li‐ion diffusion with minimum temperature effect in layered NMC materials.
Keywords:ab initio calculations  lithium batteries  Li‐ion diffusion  Li slab space  temperature effects
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