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Digital Twin-Driven All-Solid-State Battery: Unraveling the Physical and Electrochemical Behaviors

机译:数字双向全固态电池:解开物理和电化学行为

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摘要

The digital twin technique has been broadly utilized to efficiently and effectively predict the performance and problems associated with real objects via a virtual replica. However, the digitalization of twin electrochemical systems has not been achieved thus far, owing to the large amount of required calculations of numerous and complex differential equations in multiple dimensions. Nevertheless, with the help of continuous progress in hardware and software technologies, the fabrication of a digital twin-driven electrochemical system and its effective utilization have become a possibility. Herein, a digital twin-driven all-solid-state battery with a solid sulfide electrolyte is built based on a voxel-based microstructure. Its validity is verified using experimental data, such as effective electronic/ionic conductivities and electrochemical performance, for LiNi(0.70)Co(0.15)Mn(0.15)O(2)composite electrodes employing Li6PS5Cl. The fundamental performance of the all-solid-state battery is scrutinized by analyzing simulated physical and electrochemical behaviors in terms of mass transport and interfacial electrochemical reaction kinetics. The digital twin model herein reveals valuable but experimentally inaccessible time- and space-resolved information including dead particles, specific contact area, and charge distribution in the 3D domain. Thus, this new computational model is bound to rapidly improve the all-solid-state battery technology by saving the research resources and providing valuable insights.
机译:数字双胞胎技术已经广泛利用,以有效地,有效地预测通过虚拟副本与真实物体相关的性能和问题。然而,迄今为止尚未实现双电化学系统的数字化,由于多维众多且复杂的微分方程的许多所需的计算。然而,在硬件和软件技术的持续进步的帮助下,数字双向电化学系统的制造及其有效利用已经成为可能性。这里,基于基于体素的微结构构建了具有固体硫化物电解质的数字双驱动全固态电池。使用实验数据验证其有效性,例如有效的电子/离子电导率和电化学性能,用于LINI(0.70)CO(0.15)Mn(0.15)O(2)o(2)o(2)复合电极采用Li6PS5Cl。通过在大规模运输和界面电化学反应动力学方面分析模拟的物理和电化学行为来仔细审查全固态电池的基本性能。这里的数字双胞胎模型揭示了有价值但实验无法访问的时间和空间解决的信息,包括死粒子,特定接触面积和3D域中的电荷分布。因此,这种新的计算模型必然会通过节省研究资源并提供有价值的见解来快速改善全固态电池技术。

著录项

  • 来源
    《Advanced energy materials》 |2020年第35期|2001563.1-2001563.10|共10页
  • 作者单位

    Daegu Gyeongbuk Inst Sci & Technol DGIST Dept Energy Sci & Engn Daegu 42988 South Korea;

    Yonsei Univ Dept Chem & Biomol Engn Seoul 03722 South Korea|Hanyang Univ Dept Energy Engn Seoul 04763 South Korea;

    Yonsei Univ Dept Chem & Biomol Engn Seoul 03722 South Korea|Hanyang Univ Dept Energy Engn Seoul 04763 South Korea;

    Daegu Gyeongbuk Inst Sci & Technol DGIST Dept Energy Sci & Engn Daegu 42988 South Korea;

    Daegu Gyeongbuk Inst Sci & Technol DGIST Dept Energy Sci & Engn Daegu 42988 South Korea;

    Yonsei Univ Dept Chem & Biomol Engn Seoul 03722 South Korea|Hanyang Univ Dept Energy Engn Seoul 04763 South Korea;

    Daegu Gyeongbuk Inst Sci & Technol DGIST Dept Energy Sci & Engn Daegu 42988 South Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    all-solid-state batteries; all-solid-state electrodes; digital twins; electrochemical behaviors; sulfide solid electrolytes;

    机译:全固态电池;全固态电极;数字双胞胎;电化学行为;硫化物固体电解质;

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