Harnessing Chain Mobility via Protonation for Tough and Isotropic Hydrogel

P Pengju Shi M Muqing Si Z Zishang Lin (Department of Material Science and Engineering University of California Los Angeles California USA) Q Qian Mao S Sidi Duan Z Zixiao Liu W Wen Hong (Department of Material Science and Engineering University of California Los Angeles California USA) M Mason Possinger (Department of Material Science and Engineering University of California Los Angeles California USA) Y Yichen Yan (School of Molecular Sciences) C Chi Chen (Future Photovoltaic Research Center, Global Institute of Future Technology) P Ping He X Xiaobing Zuo (X-ray Science Division) H Hua Zhou (X-ray Science Division, Advanced Photon Source, Argonne National Laboratory, Lemont, IL, USA.) A Adri van Duin (Department of Mechanical Engineering Pennsylvania State University State College Pennsylvania USA) X Ximin He

Abstract

ABSTRACT Fabricating hydrogels with isotropically high tensile strength, stretchability, and toughness is crucial for applications in tissue engineering, stretchable bioelectronics and soft robots. However, many toughening strategies, including mechanical training, directional freezing, and solvent exchange, often induce anisotropy or fail to enhance all these metrics simultaneously. Herein, we report a strategy to fabricate ultra‐tough, isotropic poly(vinyl alcohol) (PVA) hydrogels by synergistically modulating polymer chain mobility and physical crosslinking through sequential acidification, freeze‐thawing, and salting‐out. Acidification protonates the hydroxyl groups, suppressing premature interchain hydrogen bonding and promoting network homogenization. Subsequent salting‐out deprotonates the hydroxyl groups to strengthen the interpolymer hydrogen bonds, forming crystalline domains that act as strong, reversible physical crosslinks. The resulting hydrogel achieves a high tensile strength of 29.5 MPa, stretchability of 2683%, and record‐high toughness of 424 MJ m −3 among isotropic hydrogels, even surpassing most anisotropic hydrogels in their reinforced direction. This strategy offers a generalizable platform for engineering tough, isotropic hydrogels with broad potential across bioengineering, additive manufacturing, and soft robotics.

Article Details

Volume / Issue Vol. 38, Issue 16
Published March 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (15)

P

Pengju Shi

M

Muqing Si

Z

Zishang Lin

Department of Material Science and Engineering University of California Los Angeles California USA

Q

Qian Mao

S

Sidi Duan

Z

Zixiao Liu

W

Wen Hong

Department of Material Science and Engineering University of California Los Angeles California USA

M

Mason Possinger

Department of Material Science and Engineering University of California Los Angeles California USA

Y

Yichen Yan

School of Molecular Sciences

C

Chi Chen

Future Photovoltaic Research Center, Global Institute of Future Technology

P

Ping He

X

Xiaobing Zuo

X-ray Science Division

H

Hua Zhou

X-ray Science Division, Advanced Photon Source, Argonne National Laboratory, Lemont, IL, USA.

A

Adri van Duin

Department of Mechanical Engineering Pennsylvania State University State College Pennsylvania USA

X

Ximin He