Wet-processed high-areal-capacity electrodes via transformative spandex–poly(acrylic acid) binder toward 450 Wh kg−1 lithium-ion batteries

B Bo Keun Park Y Yoon Bo Shim J Jong Uk Won S Sung Joon Park Y Yeon Jeong Kim B Byeongjin Park J Jang Wook Choi (School of Chemical and Biological Engineering and Institute of Chemical Process, Seoul National University) K Ki Jae Kim

Abstract

Abstract Driven by the increasing interest in lithium-ion batteries with high energy density, the design of high-mass-loading electrodes with Ni-rich positive materials has recently been considered one of the most promising strategies to achieve this goal. However, the conventional binder, poly(vinylidene fluoride), cannot ensure structural integrity and uniform charge transfer in high-mass-loading electrodes. Herein, we propose a dual-acting hybrid polymer as an advanced wet-processable binder, comprising a crosslinked network of spandex and polyacrylic acid. Spandex imparts high elasticity and strong affinity with Ni-rich positive electrode, while poly(acrylic acid) forms lithium polyacrylate on the electrode surface to enhance interfacial Li + transport. The distinct roles of each polymer ensure mechanical robustness, enhance Li + transport, and suppress binder migration during the drying process, thereby alleviating chronic issues in high-mass-loading electrodes. Notably, proposed hybrid polymer binder enables the fabrication of high-mass-loading electrodes (70 mg cm −2 ) with stable cyclability, despite a low binder content of 2 wt%. Moreover, pouch cell employing high-loading positive electrode based on the hybrid polymer binder exhibited improved cycling stability over its conventional poly(vinylidene fluoride)-based counterparts, ultimately highlighting its industrial applicability. This study provides practical insights into rational design of binders and highlights their potential to enable wet-processable fabrication of high-mass-loading electrodes.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 23, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (8)

B

Bo Keun Park

Y

Yoon Bo Shim

J

Jong Uk Won

S

Sung Joon Park

Y

Yeon Jeong Kim

B

Byeongjin Park

J

Jang Wook Choi

School of Chemical and Biological Engineering and Institute of Chemical Process, Seoul National University

K

Ki Jae Kim