Hybrid Hydrogel Sheets That Undergo Pre-programmed Shape Transformations
Overview
Chemistry
Affiliations
This communication describes a novel strategy to achieve programmable shape transformation of hybrid hydrogel sheets by modulating both the in-plane and out-of-plane mismatches in mechanical properties. Both our experimental and computational results demonstrate that the shape transformation of hybrid hydrogel sheets shows rich features (e.g., rolling direction, axis, chirality, etc.) and versatile tunability (e.g., via various external stimuli, material properties, pattern geometry, etc.). This work can provide guidance for designing soft materials that are able to undergo more precise and complex shape transformation.
Fadeev M, Davidson-Rozenfeld G, Li Z, Willner I ACS Appl Mater Interfaces. 2023; 15(30):37011-37025.
PMID: 37477942 PMC: 10401574. DOI: 10.1021/acsami.3c06230.
Shape-programmable artificial cilia for microfluidics.
Panigrahi B, Sahadevan V, Chen C iScience. 2021; 24(12):103367.
PMID: 34825146 PMC: 8605101. DOI: 10.1016/j.isci.2021.103367.
Pneumatic Coiling Actuator Inspired by the Awns of .
Geer R, Iannucci S, Li S Front Robot AI. 2021; 7:17.
PMID: 33501186 PMC: 7805895. DOI: 10.3389/frobt.2020.00017.
Shape-Changing Tubular Hydrogels.
Raghavan S, Fernandes N, Cipriano B Gels. 2019; 4(1).
PMID: 30674794 PMC: 6318631. DOI: 10.3390/gels4010018.
Ionoprinted Multi-Responsive Hydrogel Actuators.
Morales D, Podolsky I, Mailen R, Shay T, Dickey M, Velev O Micromachines (Basel). 2018; 7(6).
PMID: 30404273 PMC: 6190308. DOI: 10.3390/mi7060098.