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基于树枝状大分子的粘结剂使锂离子电池中硅微颗粒阳极稳定运行。

Dendrimer Based Binders Enable Stable Operation of Silicon Microparticle Anodes in Lithium-Ion Batteries.

机构信息

State Key Laboratory of Organic-Inorganic Composites, College of Chemical Engineering, Beijing University of Chemical Technology, Beijing, 100029, People's Republic of China.

Key Laboratory of Carbon Fiber and Functional Polymers, Ministry of Education, Beijing University of Chemical Technology, Beijing, 100029, People's Republic of China.

出版信息

Small. 2023 Jun;19(24):e2206858. doi: 10.1002/smll.202206858. Epub 2023 Mar 17.

Abstract

High-capacity anode materials (e.g., Si) are highly needed for high energy density battery systems, but they usually suffer from low initial coulombic efficiency (CE), short cycle life, and low-rate capability caused by large volume changes during the charge and discharge process. Here, a novel dendrimer-based binder for boosting the electrochemical performance of Si anodes is developed. The polyamidoamine (PMM) dendrimer not only can be used as binder, but also can be utilized as a crosslinker to construct 3D polyacrylic acid (PAA)-PMM composite binder for high-performance Si microparticles anodes. Benefiting from maximum interface interaction, strong average peeling force, and high elastic recovery rate of PAA-PMM composite, the Si electrode based on PAA-PMM achieves a high specific capacity of 3590 mAh g with an initial CE of 91.12%, long-term cycle stability with 69.80% retention over 200 cycles, and outstanding rate capability (1534.8 mAh g at 3000 mA g ). This work opens a new avenue to use dendrimer chemistry for the development of high-performance binders for high-capacity anode materials.

摘要

高容量的阳极材料(例如硅)对于高能量密度的电池系统是非常需要的,但它们通常由于在充放电过程中的体积变化而导致初始库仑效率(CE)低、循环寿命短和倍率性能差。在这里,开发了一种基于树状大分子的新型粘结剂,用于提高硅阳极的电化学性能。聚酰胺-胺(PAMAM)树状大分子不仅可以用作粘结剂,还可以用作交联剂,以构建用于高性能硅微颗粒阳极的 3D 聚丙烯酸(PAA)-PAMAM 复合粘结剂。得益于 PAA-PMM 复合的最大界面相互作用、强平均剥离力和高弹性回复率,基于 PAA-PMM 的 Si 电极实现了高比容量 3590 mAh g,初始 CE 为 91.12%,在 200 次循环后保持 69.80%的长期循环稳定性,以及出色的倍率性能(在 3000 mA g 时为 1534.8 mAh g)。这项工作为开发用于高容量阳极材料的高性能粘结剂开辟了一条新途径。

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