Abstract
The development of flexible lithium-ion batteries (LIBs) imposes demands on energy density and high mechanical durability simultaneously. Due to the limited deformability of electrodes, as well as the flat and smooth surface of the metal current collectors, stable/durable/reliable contact between electrode materials and the current collectors remains a challenge, in particular, for electrodes with high loading mass and heavily deformed batteries. Binders play an essential role in binding particles of electrode materials and adhering them to current collectors. Herein, inspired by spider silk, a binder for flexible LIBs is developed, which equips a cross-linked supramolecular poly(urethane-urea) to the polyacrylic acid. The binder imparts super high elastic restorability originating from the meticulously engineered hydrogen-bonding segments as well as extraordinary adhesion. The developed binder provides excellent flexibility and intact electrode morphologies without disintegration even when the electrode is largely deformed, enabling a stable cycling and voltage output even when the batteries are put under tough dynamic deformation tests. The flexible LIBs exhibit a high energy density of 420 Wh L−1, which is remarkably higher than reported numbers. The unique binder design is greatly promising and offers a valuable material solution for LIBs with high-loading mass and flexible designs.
Original language | English |
---|---|
Article number | 2303165 |
Number of pages | 9 |
Journal | Advanced Materials |
Volume | 35 |
Issue number | 47 |
Early online date | 19 Oct 2023 |
DOIs | |
Publication status | Published - 23 Nov 2023 |
Externally published | Yes |
Bibliographical note
Publisher Copyright:© 2023 Wiley-VCH GmbH.
Funding
This research was supported by the National Key Research and Develop-ment Program of China under Project 2019YFA0705104. This work wassupported in part by the InnoHK Project on [Project 1.4 – Flexible andStretchable Technologies (FAST) for monitoring of CVD risk factors: SoftBattery and self-powered, flexible medical devices] at Hong Kong Centrefor Cerebro-cardiovascular Health Engineering (COCHE).
Keywords
- binders
- flexible lithium-ion batteries
- high energy density
- spider silks