Harnessing the Hofmeister Effect for Dynamic Self‐Assembly of Supramolecular Hydrogels

H Hongwang Tang (State Key Laboratory of Chemical Engineering East China University of Science and Technology Meilong Road 130, Xuhui, District Shanghai 200237 P.R. China) Y Yuliang Gao (School of Chemistry and Chemical Engineering Inner Mongolia University Hohhot P.R. China) J Jiahao Zhang (College of Chemistry and Materials Science, Guangdong Provincial Key Laboratory of Supramolecular Coordination Chemistry) Z Zhongqi Li Q Qi Gao (Mitsubishi Chemical Corporation) P Peiwen Cai X Xinyu Chen X Xuhong Guo (State Key Laboratory of Chemical Engineering East China University of Science and Technology Meilong Road 130, Xuhui, District Shanghai 200237 P.R. China) J Jan H. van Esch (Department of Chemical Engineering Delft University of Technology Van der Maasweg 9 2629 HZ Delft The Netherlands) Y Yiming Wang F Fu‐Zhen Xuan (School of Mechanical and Power Engineering East China University of Science and Technology Shanghai China)

Abstract

Abstract Dynamic regulation of intermolecular interactions is essential for the creation of dynamic supramolecular materials with lifelike self‐regulating functions. Yet specific ion effect, which is known to possess potent effect on intermolecular interactions, has remained unexplored for such a purpose. Here, we demonstrate our access to dynamic self‐assembly of supramolecular hydrogels by orchestrating the Hofmeister effect through a simple enzymatic reaction. The involved gelators containing carboxylate moieties self‐assemble into hydrogel (Gel1) at acidic pH and dissolve at basic pH. We surprisingly find that the dissolved gelators at basic pH can be driven to self‐assemble into hydrogel (Gel2) by kosmotropic ions through the disruption of gelator–water interactions. By coupling to the enzymatic hydrolysis of urea, Gel1 gradually disintegrates over time because of the production of basic NH 3 . However, interestingly, with the accumulation of kosmotropic ions, NH 4 + and CO 3 2− , the dissolved gelators are driven to self‐assemble into Gel2, realizing a self‐regulating gel–sol–gel transition process. The transition rate and stiffness of Gel2 are tunable by adjusting the concentrations of urea or urease. This work may shed light on the creation of lifelike self‐regulating supramolecular materials using Hofmeister effect for many enticing applications such as ion‐programmed biosensing and drug delivery.

Article Details

Volume / Issue Vol. 64, Issue 26
Published June 24, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

H

Hongwang Tang

State Key Laboratory of Chemical Engineering East China University of Science and Technology Meilong Road 130, Xuhui, District Shanghai 200237 P.R. China

Y

Yuliang Gao

School of Chemistry and Chemical Engineering Inner Mongolia University Hohhot P.R. China

J

Jiahao Zhang

College of Chemistry and Materials Science, Guangdong Provincial Key Laboratory of Supramolecular Coordination Chemistry

Z

Zhongqi Li

Q

Qi Gao

Mitsubishi Chemical Corporation

P

Peiwen Cai

X

Xinyu Chen

X

Xuhong Guo

State Key Laboratory of Chemical Engineering East China University of Science and Technology Meilong Road 130, Xuhui, District Shanghai 200237 P.R. China

J

Jan H. van Esch

Department of Chemical Engineering Delft University of Technology Van der Maasweg 9 2629 HZ Delft The Netherlands

Y

Yiming Wang

F

Fu‐Zhen Xuan

School of Mechanical and Power Engineering East China University of Science and Technology Shanghai China