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通过阳离子聚合物粘合剂调节静电现象以实现可扩展的高面积容量锂电池电极

Regulating electrostatic phenomena by cationic polymer binder for scalable high-areal-capacity Li battery electrodes.

作者信息

Kim Jung-Hui, Lee Kyung Min, Kim Ji Won, Kweon Seong Hyeon, Moon Hyun-Seok, Yim Taeeun, Kwak Sang Kyu, Lee Sang-Young

机构信息

Department of Chemical and Biomolecular Engineering, Yonsei University, Seoul, Republic of Korea.

Department of Energy Engineering, School of Energy and Chemical Engineering, Ulsan National Institute of Science and Technology (UNIST), Ulsan, Republic of Korea.

出版信息

Nat Commun. 2023 Sep 15;14(1):5721. doi: 10.1038/s41467-023-41513-1.

DOI:10.1038/s41467-023-41513-1
PMID:37714895
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10504278/
Abstract

Despite the enormous interest in high-areal-capacity Li battery electrodes, their structural instability and nonuniform charge transfer have plagued practical application. Herein, we present a cationic semi-interpenetrating polymer network (c-IPN) binder strategy, with a focus on the regulation of electrostatic phenomena in electrodes. Compared to conventional neutral linear binders, the c-IPN suppresses solvent-drying-induced crack evolution of electrodes and improves the dispersion state of electrode components owing to its surface charge-driven electrostatic repulsion and mechanical toughness. The c-IPN immobilizes anions of liquid electrolytes inside the electrodes via electrostatic attraction, thereby facilitating Li conduction and forming stable cathode-electrolyte interphases. Consequently, the c-IPN enables high-areal-capacity (up to 20 mAh cm) cathodes with decent cyclability (capacity retention after 100 cycles = 82%) using commercial slurry-cast electrode fabrication, while fully utilizing the theoretical specific capacity of LiNiCoMnO. Further, coupling of the c-IPN cathodes with Li-metal anodes yields double-stacked pouch-type cells with high energy content at 25 °C (376 Wh kg/1043 Wh L, estimated including packaging substances), demonstrating practical viability of the c-IPN binder for scalable high-areal-capacity electrodes.

摘要

尽管高面积容量锂电池电极引发了极大的关注,但其结构不稳定性和电荷转移不均匀性一直困扰着实际应用。在此,我们提出一种阳离子半互穿聚合物网络(c-IPN)粘结剂策略,重点在于调控电极中的静电现象。与传统的中性线性粘结剂相比,c-IPN由于其表面电荷驱动的静电排斥和机械韧性,抑制了电极中溶剂干燥引起的裂纹扩展,并改善了电极组件的分散状态。c-IPN通过静电吸引将液体电解质的阴离子固定在电极内部,从而促进锂离子传导并形成稳定的阴极-电解质界面。因此,使用商业浆料浇铸电极制造方法,c-IPN能够实现具有高面积容量(高达20 mAh cm)且循环性能良好(100次循环后容量保持率 = 82%)的阴极,同时充分利用LiNiCoMnO的理论比容量。此外,将c-IPN阴极与锂金属阳极耦合,可在25°C下得到具有高能量密度的双堆叠软包电池(376 Wh kg/1043 Wh L,估计包括包装材料),证明了c-IPN粘结剂对于可扩展的高面积容量电极具有实际可行性。

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