2023
DOI: 10.1002/advs.202305226
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Continuous Spinning of High‐Tough Hydrogel Fibers for Flexible Electronics by Using Regional Heterogeneous Polymerization

Shaoji Wu,
Caihong Gong,
Zichao Wang
et al.

Abstract: Hydrogel fibers have attracted substantial interest for application in flexible electronics due to their ionic conductivity, high specific surface area, and ease of constructing multidimensional structures. However, universal continuous spinning methods for hydrogel fibers are yet lacking. Based on the hydrophobic mold induced regional heterogeneous polymerization, a universal self‐lubricating spinning (SLS) strategy for the continuous fabrication of hydrogel fibers from monomers is developed. The universality… Show more

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Cited by 11 publications
(10 citation statements)
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“…3f-h). The toughness of the S-PAZr was higher than that of most current hydrogel fibers and well those of anhydrous polymers such as polydimethylsiloxane (PDMS), Kevlar, and synthetic rubber, even exceeding the toughness of natural tendon and spider silk 11,18,25,36,[53][54][55][56][57][58] .…”
Section: Broadly Adjustable Mechanical Properties Of the S-pazr Hydro...mentioning
confidence: 82%
See 1 more Smart Citation
“…3f-h). The toughness of the S-PAZr was higher than that of most current hydrogel fibers and well those of anhydrous polymers such as polydimethylsiloxane (PDMS), Kevlar, and synthetic rubber, even exceeding the toughness of natural tendon and spider silk 11,18,25,36,[53][54][55][56][57][58] .…”
Section: Broadly Adjustable Mechanical Properties Of the S-pazr Hydro...mentioning
confidence: 82%
“…Therefore, a BSE strategy was proposed to adjust the non-covalent interactions of polymers through inorganic salts. To successfully implement the corresponding bionic design, we employed an improved self-lubricating spinning strategy, which allowed us to freely design the hydrogel fiber network structure for the continuous fabrication of bionic hydrogel fibers 36 . For demonstration, the Hoffmeister effect-sensitive PVA and ion-coordinatable PAA were chosen as a model system.…”
Section: Fabrication Of Hydrogel Fibers Based On the Bse Strategymentioning
confidence: 99%
“…The optical and SEM images of the SPG foam at different magnifications are displayed in Figure 2a−c. Due to the low density of 0.219 g/ cm 3 , a typical SPG foam can be easily placed on a flower petal. In addition, the cross-sectional morphologies exhibit obvious three-dimensional porous structures, in which the pores are evenly dispersed without obvious aggregation and the size distribution is relatively uniform, which provides a stable skeleton with a smooth surface for the distribution of bidisperse MPs.…”
Section: Resultsmentioning
confidence: 99%
“…Nowadays, flexible sensors have attracted increasing attention in soft electronics applications due to their high flexibility, favorable stretchability, easy wearability, and unique electrical responsiveness. However, it remains an enormous challenge for flexible sensors to be simultaneously integrated with multimodal stimuli-responsiveness, high sensitivity, quick response time, reliable stability, and good biocompatibility. Multimodal flexible sensors are capable of detecting various types of stimuli, including strain, stress, temperature, magnetic fields, gases, pH, etc. For example, an electronic skin with biomechanical and bioelectrical signal-sensing functions, a paper-based sensor with touch trajectory and pressure recognition, as well as an artificial peripheral neural system with exteroceptive and artificial proprioceptive sensors . Compared with other sensing modes, the magnetic sensors have gradually shown high potential for the fields of remote human–machine interaction (HMI), underwater equipment, and intelligent robotics due to their superior characteristics of precise remote controllability, quick response, strong penetrating power, and environmental adaptability. …”
Section: Introductionmentioning
confidence: 99%
“…Hydrogels are soft polymeric materials with a three-dimensional network structure formed through the chemical or physical crosslinking of monomers/polymers [ 1 , 2 , 3 , 4 , 5 ]. By introducing stimulus-responsive monomers into a hydrogel network, hydrogels can respond to external stimuli (light, temperature, pH, etc.)…”
Section: Introductionmentioning
confidence: 99%