Dynamic Growth of Macroscopically Structured Supramolecular Hydrogels through Orchestrated Reaction‐Diffusion

Author:

Wang Hucheng1,Fu Xiaoming2,Gu Guanyao1,Bai Shengyu1,Li Runlai3,Zhong Weimin2,Guo Xuhong1,Eelkema Rienk4,van Esch Jan H.4,Cao Zhixing2,Wang Yiming15ORCID

Affiliation:

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

2. Key Laboratory of Smart Manufacturing in Energy Chemical Process East China University of Science and Technology Meilong Road 130 Shanghai 200237 P. R. China

3. Department of Chemistry National University of Singapore Singapore 119077 Singapore

4. Department of Chemical Engineering Delft University of Technology van der Maasweg 9 2629 HZ Delft The Netherlands

5. Shanghai Key Laboratory for Intelligent Sensing and Detection Technology East China University of Science and Technology Meilong Road 130 Shanghai 200237 P. R. China

Abstract

AbstractLiving organisms are capable of dynamically changing their structures for adaptive functions through sophisticated reaction‐diffusion processes. Here we show how active supramolecular hydrogels with programmable lifetimes and macroscopic structures can be created by relying on a simple reaction‐diffusion strategy. Two hydrogel precursors (poly(acrylic acid) PAA/CaCl2 and Na2CO3) diffuse from different locations and generate amorphous calcium carbonate (ACC) nanoparticles at the diffusional fronts, leading to the formation of hydrogel structures driven by electrostatic interactions between PAA and ACC nanoparticles. Interestingly, the formed hydrogels are capable of autonomously disintegrating over time because of a delayed influx of electrostatic‐interaction inhibitors (NaCl). The hydrogel growth process is well explained by a reaction‐diffusion model which offers a theoretical means to program the dynamic growth of structured hydrogels. Furthermore, we demonstrate a conceptual access to dynamic information storage in soft materials using the developed reaction‐diffusion strategy. This work may serve as a starting point for the development of life‐like materials with adaptive structures and functionalities.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

Subject

General Medicine

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