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Strong, tough, ionic conductive, and freezing-tolerant all-natural hydrogel enabled by cellulose-bentonite coordination interactions

Engineering and Technology

Strong, tough, ionic conductive, and freezing-tolerant all-natural hydrogel enabled by cellulose-bentonite coordination interactions

S. Wang, L. Yu, et al.

This innovative study by Siheng Wang and colleagues unveils a groundbreaking approach to creating all-natural cellulose-bentonite hydrogels that boast impressive mechanical strength and ionic conductivity, paving the way for advanced flexible electronics while championing environmental sustainability.

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~3 min • Beginner • English
Abstract
Ionic conductive hydrogels prepared from naturally abundant cellulose are ideal candidates for constructing flexible electronics from the perspective of commercialization and environmental sustainability. However, cellulosic hydrogels featuring both high mechanical strength and ionic conductivity remain extremely challenging to achieve because the ionic charge carriers tend to destroy the hydrogen-bonding network among cellulose. Here we propose a supramolecular engineering strategy to boost the mechanical performance and ionic conductivity of cellulosic hydrogels by incorporating bentonite (BT) via the strong cellulose-BT coordination interaction and the ion regulation capability of the nanoconfined cellulose-BT intercalated nanostructure. A strong (compressive strength up to 3.2 MPa), tough (fracture energy up to 0.45 MJ m−3), yet highly ionic conductive and freezing tolerant (high ionic conductivities of 89.9 and 25.8 mS cm−1 at 25 and −20 °C, respectively) all-natural cellulose-BT hydrogel is successfully realized. These findings open up new perspectives for the design of cellulosic hydrogels and beyond.
Publisher
NATURE COMMUNICATIONS
Published On
Jun 21, 2022
Authors
Siheng Wang, Le Yu, Shanshan Wang, Lei Zhang, Lu Chen, Xu Xu, Zhanqian Song, He Liu, Chaoji Chen
Tags
ionic conductive hydrogels
cellulose
bentonite
mechanical strength
ionic conductivity
environmental sustainability
flexible electronics
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