Literature DB >> 26323563

Oxygen reduction reaction induced pH-responsive chemo-mechanical hydrogel actuators.

Cunjiang Yu1, Peixi Yuan, Evan M Erickson, Christopher M Daly, John A Rogers, Ralph G Nuzzo.   

Abstract

We describe and characterize elementary designs for electrochemical micro- and macro-scale chemomechanical hydrogel actuators. The actuation of a pH-sensitive cross-linked polyacrylic acid (PAA) hydrogel is driven in the model devices through the oxygen reduction reaction (ORR) occurring at the electrodes of an embedded Au mesh micro-electrochemical array. Proton consumption by the ORR at the cathode of the embedded electrochemical cell leads to the formation of a localized pH gradient that in turn drives the strain response in the composite actuators. The dynamics result from the ionization of the carboxylic acid moieties of the PAA network in the high pH region, yielding an osmotic pressure that drives a volumetric expansion due to water imbibition. This system actuates both stably and reversibly; when the electrochemically-induced ORR is halted, the localized pH gradient dissipates due to diffusive mixing, which in turn relaxes the induced strains. Two approaches to the fabrication of hydrogel actuators were examined in this work. The first method adopted a design based on small flagella (∼0.2 mm × 1.5 mm × 60 μm, width × length × height) in which the actuating PAA structures are molded atop a set of fixed electrodes mounted on a supporting substrate. These hydrogel actuators show fast, large-amplitude, and largely reversible responses in the ORR mediated chemomechanical dynamics. We also investigated larger hydrogel actuators (∼4.5 mm × 11 mm × 1 mm, width × length × height), based on an autonomous design that embeds an open mesh stretchable micro-electrode array within the hydrogel. The significant and design-dependent impacts of mass transfer on the chemomechanical dynamics are evidenced in each case, a feature examined to elucidate more efficient mesoscopic design rules for actuators of this form.

Entities:  

Year:  2015        PMID: 26323563     DOI: 10.1039/c5sm01892g

Source DB:  PubMed          Journal:  Soft Matter        ISSN: 1744-683X            Impact factor:   3.679


  4 in total

1.  Precision Control of Programmable Actuation of Thermoresponsive Nanocomposite Hydrogels with Multilateral Engineering.

Authors:  Jisu Hong; Jiseok Han; Chaenyung Cha
Journal:  Int J Mol Sci       Date:  2022-05-02       Impact factor: 6.208

2.  Deterministic Integration of Biological and Soft Materials onto 3D Microscale Cellular Frameworks.

Authors:  Joselle M McCracken; Sheng Xu; Adina Badea; Kyung-In Jang; Zheng Yan; David J Wetzel; Kewang Nan; Qing Lin; Mengdi Han; Mikayla A Anderson; Jung Woo Lee; Zijun Wei; Matt Pharr; Renhan Wang; Jessica Su; Stanislav S Rubakhin; Jonathan V Sweedler; John A Rogers; Ralph G Nuzzo
Journal:  Adv Biosyst       Date:  2017-07-31

3.  Oral Administration of Salecan-Based Hydrogels for Controlled Insulin Delivery.

Authors:  Xiaoliang Qi; Yue Yuan; Jianfa Zhang; Jeff W M Bulte; Wei Dong
Journal:  J Agric Food Chem       Date:  2018-10-01       Impact factor: 5.279

4.  Programmable Auxeticity in Hydrogel Metamaterials via Shape-Morphing Unit Cells.

Authors:  Oliver Skarsetz; Viacheslav Slesarenko; Andreas Walther
Journal:  Adv Sci (Weinh)       Date:  2022-06-24       Impact factor: 17.521

  4 in total

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