Cellulose Nanofibrils Enhanced, Strong, Stretchable, Freezing‐Tolerant Ionic Conductive Organohydrogel for Multi‐Functional Sensors

Прочный, растяжимый и морозостойкий ионопроводящий органогидрогель, усиленный целлюлозными нанофибриллами, для многофункциональных сенсоров
Yuhang Ye, Yifan Zhang, Yuan Chen, Xiaoshuai Han, Feng Jiang
2020-07-14

cellulose nanofibrilsfreezing toleranceionic conductive organohydrogelmultifunctional sensorspolyvinyl alcohol
Abstract To date, ionic conducting hydrogel attracts tremendous attention as an alternative to the conventional rigid metallic conductors in fabricating flexible devices, owing to their intrinsic characteristics. However, simultaneous realization of high stiffness, toughness, ionic conductivity, and freezing tolerance through a simple approach is still a challenge. Here, a novel highly stretchable (up to 660%), strong (up to 2.1 MPa), tough (5.25 MJ m −3 ), and transparent (up to 90%) ionic conductive (3.2 S m −1 ) organohydrogel is facilely fabricated, through sol–gel transition of polyvinyl alcohol and cellulose nanofibrils (CNFs) in dimethyl sulfoxide‐water solvent system. The ionic conductive organohydrogel presents superior freezing tolerance, remaining flexible and conductive (1.1 S m −1 ) even at −70 °C, as compared to the other reported anti‐freezing ionic conductive (organo)hydrogel. Notably, this material design demonstrates synergistic effect of CNFs in boosting both mechanical properties and ionic conductivity, tackling a long‐standing dilemma among strength, toughness, and ionic conductivity for the ionic conducting hydrogel. In addition, the organohydrogel displays high sensitivity toward both tensile and compressive deformation and based on which multi‐functional sensors are assembled to detect human body movement with high sensitivity, stability, and durability. This novel organohydrogel is envisioned to function as a versatile platform for multi‐functional sensors in the future.
1
A PVA–cellulose nanofibril organohydrogel achieves 660% stretchability, 2.1 MPa strength, 5.25 MJ m−3 toughness, 90% transparency, and 3.2 S m−1 ionic conductivity.
2
Cellulose nanofibrils synergistically enhance both mechanical properties and ionic conductivity, addressing the strength–toughness–conductivity tradeoff in ionic hydrogels.
3
The organohydrogel detects tensile and compressive deformation with high sensitivity and enables stable, durable monitoring of human body movements.
4
The organohydrogel remains flexible and conductive at −70 °C, retaining ionic conductivity of 1.1 S m−1 and demonstrating strong freezing tolerance.

Cellulose nanofibril-enhanced polyvinyl alcohol ionic conductive organohydrogel

The organohydrogel’s mechanical strength, stretchability, toughness, transparency, ionic conductivity, freezing tolerance, and deformation-sensing performance for multifunctional sensors

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2020-07-14
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Yuhang Ye
Yifan Zhang
Yuan Chen
Xiaoshuai Han
Feng Jiang
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