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Dynamically reconfigurable conductive hydrogels based on the spatial confinement and backbone reinforcement of bacterial cellulose: Signal recognition and human-computer interaction

delete2026-06-08
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PRE
AI
X
Xinhui Wang
M
Mengchen Li
Y
Yonggui Wang
S
Siqi Huan
H
Haiying Yang *
D
Dong Wang *
M
Ming He *
DOI:10.1016/j.carbpol.2026.125539delete
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Abstract

Abstract

En 中文
Traditional hydrogels struggle to balance mechanical toughness and signal stability due to their reliance on permanent chemical crosslinking or sacrificial bond energy dissipation. To address this issue, this work introduces a fully physically cross-linked, dynamically reconfigurable hyperelastic bacterial cellulose/tannic acid-MXene/polyacrylamide (BC/TA-MXene/PAM) dual-network conductive hydrogel. The hydrogel uses BC as a continuous skeleton, TA-MXene as a conductive filler, PAM as a flexible network, and a sodium dodecyl sulfonate/octadecyl methacrylate (SDS/C18M) hydrophobic complex as a dynamic physical cross-linking node, thereby constructing of multiple internal networks within the hydrogel. This multi-component synergy (hydrophobic association, reversible dissociation/recombination, hydrogen bonding, and π-π/electrostatic interactions) enables the hydrogel networks to achieve efficient energy dissipation and rapid structural recovery during deformation. Meanwhile, the BC skeleton provides mechanical support and spatial confinement for the hydrogel, ensuring interface stability and a conductive pathway. The results showed that the BC/TA-MXene/PAM hydrogel has excellent tensile properties (elongation at break of about 1300%) and toughness (2.25 MJ/m3), notch-insensitive behavior (fracture energy 15.54 kJ/m2), and high sensitivity (GF = 12.25). Additionally, the hydrogel offers stable and repeatable electrical responses for motion recognition, human–computer interaction, and signal transmission. This work provides a scalable physical-crosslinking strategy to engineer reliable, dynamically reconfigurable conductive hydrogels for wearable electronics materials.

Journal

Carbohydrate Polymers cover
Carbohydrate Polymers
IF:
12.5
Papers:
2.3W
Citations:
15.2W

Organization

H
Harbin Institute of Technology
Scholars:
1.2W
Papers: 4.0K
Citations: 8.5W
N
northeast forestry university
Scholars:
2.9K
Papers: 876
Citations: 0
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