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通过模式优化设计低曲折度电极,实现快速充电。

Designing Low Tortuosity Electrodes through Pattern Optimization for Fast-Charging.

机构信息

Department of Mechanical and Industrial Engineering, Northeastern University, Boston, MA, 02115, USA.

Neutron Sciences Directorate, Oak Ridge National Laboratory, Oak Ridge, TN, 37831, USA.

出版信息

Small Methods. 2023 Apr;7(4):e2201344. doi: 10.1002/smtd.202201344. Epub 2023 Feb 20.

Abstract

The development of fast-charging technologies is crucial for expediting the progress and promotion of electric vehicles. In addition to innovative material exploration, reduction in the tortuosity of electrodes is a favored strategy to enhance the fast-charging capability of lithium-ion batteries by optimizing the ion-transfer kinetics. To realize the industrialization of low-tortuosity electrodes, a facile, cost-effective, highly controlled, and high-output continuous additive manufacturing roll-to-roll screen printing technology is proposed to render customized vertical channels within electrodes. Extremely precise vertical channels are fabricated by applying the as-developed inks, using LiNi Mn Co O as the cathode material. Additionally, the relationship between the electrochemical properties and architecture of the channels, including the pattern, channel diameter, and edge distance between channels, is revealed. The optimized screen-printed electrode exhibited a seven-fold higher charge capacity (72 mAh g ) at a current rate of 6 C and superior stability compared with that of the conventional bar-coated electrode (10 mAh g , 6 C) at a mass loading of 10 mg cm . This roll-to-roll additive manufacturing can potentially be applied to various active materials printing to reduce electrode tortuosity and enable fast charging in battery manufacturing.

摘要

快速充电技术的发展对于加快电动汽车的发展和推广至关重要。除了创新材料的探索外,降低电极的曲折度也是通过优化离子迁移动力学来提高锂离子电池快速充电能力的一种受欢迎的策略。为了实现低曲折度电极的工业化,提出了一种简便、经济高效、高度可控和高产的连续添加剂制造卷对卷丝网印刷技术,在电极内形成定制的垂直通道。通过应用所开发的油墨,使用 LiNi Mn Co O 作为阴极材料,制造出极其精确的垂直通道。此外,还揭示了通道的电化学性能和结构之间的关系,包括图案、通道直径和通道之间的边缘距离。与传统的棒涂电极(10mAh g ,6C)相比,优化后的丝网印刷电极在质量负载为 10mg cm 时,在电流速率为 6C 时具有高出七倍的充电容量(72mAh g ),且具有更好的稳定性。这种卷对卷添加剂制造技术可能适用于各种活性材料的打印,以降低电极曲折度并实现电池制造中的快速充电。

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