Dynamic Nanohybrid-Polysaccharide Hydrogels for Soft Wearable Strain Sensing

Electroconductive hydrogels with stimuli-free self-healing and self-recovery (SELF) properties and high mechanical strength for wearable strain sensors is an area of intensive research activity at the moment. Most electroconductive hydrogels, however, consist of static bonds for mechanical strength...

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Main Authors: Pejman Heidarian, Hossein Yousefi, Akif Kaynak, Mariana Paulino, Saleh Gharaie, Russell J. Varley, Abbas Z. Kouzani
Format: Article
Language:English
Published: MDPI AG 2021-05-01
Series:Sensors
Subjects:
Online Access:https://www.mdpi.com/1424-8220/21/11/3574
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spelling doaj-68a52f6478b446eba7c6d411958795bc2021-06-01T00:39:44ZengMDPI AGSensors1424-82202021-05-01213574357410.3390/s21113574Dynamic Nanohybrid-Polysaccharide Hydrogels for Soft Wearable Strain SensingPejman Heidarian0Hossein Yousefi1Akif Kaynak2Mariana Paulino3Saleh Gharaie4Russell J. Varley5Abbas Z. Kouzani6School of Engineering, Deakin University, Geelong, VIC 3216, AustraliaDepartment of Wood Engineering and Technology, Gorgan University of Agricultural Sciences and Natural Resources, Gorgan 4913815739, IranSchool of Engineering, Deakin University, Geelong, VIC 3216, AustraliaSchool of Engineering, Deakin University, Geelong, VIC 3216, AustraliaSchool of Engineering, Deakin University, Geelong, VIC 3216, AustraliaCarbon Nexus at the Institute for Frontier Materials, Deakin University, Geelong, VIC 3216, AustraliaSchool of Engineering, Deakin University, Geelong, VIC 3216, AustraliaElectroconductive hydrogels with stimuli-free self-healing and self-recovery (SELF) properties and high mechanical strength for wearable strain sensors is an area of intensive research activity at the moment. Most electroconductive hydrogels, however, consist of static bonds for mechanical strength and dynamic bonds for SELF performance, presenting a challenge to improve both properties into one single hydrogel. An alternative strategy to successfully incorporate both properties into one system is via the use of stiff or rigid, yet dynamic nano-materials. In this work, a nano-hybrid modifier derived from nano-chitin coated with ferric ions and tannic acid (TA/Fe@ChNFs) is blended into a starch/polyvinyl alcohol/polyacrylic acid (St/PVA/PAA) hydrogel. It is hypothesized that the TA/Fe@ChNFs nanohybrid imparts both mechanical strength and stimuli-free SELF properties to the hydrogel via dynamic catecholato-metal coordination bonds. Additionally, the catechol groups of TA provide mussel-inspired adhesion properties to the hydrogel. Due to its electroconductivity, toughness, stimuli-free SELF properties, and self-adhesiveness, a prototype soft wearable strain sensor is created using this hydrogel and subsequently tested.https://www.mdpi.com/1424-8220/21/11/3574dynamic hydrogelsnanohybridtannic acidferric ionschitin nanofibersself-healing
collection DOAJ
language English
format Article
sources DOAJ
author Pejman Heidarian
Hossein Yousefi
Akif Kaynak
Mariana Paulino
Saleh Gharaie
Russell J. Varley
Abbas Z. Kouzani
spellingShingle Pejman Heidarian
Hossein Yousefi
Akif Kaynak
Mariana Paulino
Saleh Gharaie
Russell J. Varley
Abbas Z. Kouzani
Dynamic Nanohybrid-Polysaccharide Hydrogels for Soft Wearable Strain Sensing
Sensors
dynamic hydrogels
nanohybrid
tannic acid
ferric ions
chitin nanofibers
self-healing
author_facet Pejman Heidarian
Hossein Yousefi
Akif Kaynak
Mariana Paulino
Saleh Gharaie
Russell J. Varley
Abbas Z. Kouzani
author_sort Pejman Heidarian
title Dynamic Nanohybrid-Polysaccharide Hydrogels for Soft Wearable Strain Sensing
title_short Dynamic Nanohybrid-Polysaccharide Hydrogels for Soft Wearable Strain Sensing
title_full Dynamic Nanohybrid-Polysaccharide Hydrogels for Soft Wearable Strain Sensing
title_fullStr Dynamic Nanohybrid-Polysaccharide Hydrogels for Soft Wearable Strain Sensing
title_full_unstemmed Dynamic Nanohybrid-Polysaccharide Hydrogels for Soft Wearable Strain Sensing
title_sort dynamic nanohybrid-polysaccharide hydrogels for soft wearable strain sensing
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2021-05-01
description Electroconductive hydrogels with stimuli-free self-healing and self-recovery (SELF) properties and high mechanical strength for wearable strain sensors is an area of intensive research activity at the moment. Most electroconductive hydrogels, however, consist of static bonds for mechanical strength and dynamic bonds for SELF performance, presenting a challenge to improve both properties into one single hydrogel. An alternative strategy to successfully incorporate both properties into one system is via the use of stiff or rigid, yet dynamic nano-materials. In this work, a nano-hybrid modifier derived from nano-chitin coated with ferric ions and tannic acid (TA/Fe@ChNFs) is blended into a starch/polyvinyl alcohol/polyacrylic acid (St/PVA/PAA) hydrogel. It is hypothesized that the TA/Fe@ChNFs nanohybrid imparts both mechanical strength and stimuli-free SELF properties to the hydrogel via dynamic catecholato-metal coordination bonds. Additionally, the catechol groups of TA provide mussel-inspired adhesion properties to the hydrogel. Due to its electroconductivity, toughness, stimuli-free SELF properties, and self-adhesiveness, a prototype soft wearable strain sensor is created using this hydrogel and subsequently tested.
topic dynamic hydrogels
nanohybrid
tannic acid
ferric ions
chitin nanofibers
self-healing
url https://www.mdpi.com/1424-8220/21/11/3574
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AT hosseinyousefi dynamicnanohybridpolysaccharidehydrogelsforsoftwearablestrainsensing
AT akifkaynak dynamicnanohybridpolysaccharidehydrogelsforsoftwearablestrainsensing
AT marianapaulino dynamicnanohybridpolysaccharidehydrogelsforsoftwearablestrainsensing
AT salehgharaie dynamicnanohybridpolysaccharidehydrogelsforsoftwearablestrainsensing
AT russelljvarley dynamicnanohybridpolysaccharidehydrogelsforsoftwearablestrainsensing
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