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基于醋酸纤维素辅助碳纳米管纤维网络的可扩展无粘结剂独立电极用于实用柔性锂离子电池

Scalable Binder-Free Freestanding Electrodes Based on a Cellulose Acetate-Assisted Carbon Nanotube Fibrous Network for Practical Flexible Li-Ion Batteries.

作者信息

Han Ji Hyun, Shin Kyu Hang, Lee Yun Jung

机构信息

Department of Energy Engineering, Hanyang University, Seoul 04763, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2021 Feb 10;13(5):6375-6384. doi: 10.1021/acsami.0c22664. Epub 2021 Jan 29.

DOI:10.1021/acsami.0c22664
PMID:33508939
Abstract

Herein, a freestanding cellulose acetate-carbon nanotube (CA-CNT) film electrode is presented to achieve highly flexible, high-energy lithium-ion batteries (LIBs). CA serves as a dispersing agent of CNTs and a binder-free network former. A straightforward washing can remove CA in the electrode almost completely, while the fibrous CNT network within the electrode is sustained. Furthermore, the facile fabrication enables the large-scale production of the film electrode because the CA-CNT film is processed by a conventional casting method and not by the area-limited vacuum filtration. The superior electrochemical performance and high flexibility of the full cell assembled with CA-CNT-based electrodes are maintained even at a high active material loading, which has been proven difficult to accomplish in the conventional configuration LIBs. In addition, by simply stacking six sheets of the freestanding film electrode, a capacity as high as 5.4 mA h cm is achieved. The assembled pouch battery operates stably under extreme deformation. We demonstrate that the rational design of the electrode could extend the flexibility to a higher energy than that achieved with the conventional configuration. We believe that the low production cost, high flexibility, and superior electrochemical performance of the proposed freestanding film electrode can expedite the implementation of wearable gears in daily life.

摘要

在此,我们展示了一种独立的醋酸纤维素-碳纳米管(CA-CNT)薄膜电极,以实现高度柔性、高能量的锂离子电池(LIBs)。CA作为CNTs的分散剂和无粘结剂的网络形成剂。简单的洗涤几乎可以完全去除电极中的CA,而电极内的纤维状CNT网络得以保留。此外,这种简便的制造方法能够实现薄膜电极的大规模生产,因为CA-CNT薄膜是通过传统的浇铸方法加工而成,而非受面积限制的真空过滤法。即使在高活性材料负载下,基于CA-CNT的电极组装而成的全电池仍能保持优异的电化学性能和高柔韧性,而这在传统结构的LIBs中已被证明难以实现。此外,通过简单堆叠六片独立的薄膜电极,可实现高达5.4 mA h cm的容量。组装好的软包电池在极端变形下仍能稳定运行。我们证明,电极的合理设计能够将柔韧性扩展到比传统结构更高的能量水平。我们相信,所提出的独立薄膜电极的低生产成本、高柔韧性和优异的电化学性能能够加速可穿戴设备在日常生活中的应用。

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