Printable Piezoresistive Hybrid Hydrogels Based on 2D MoS 2 for Flexible Pulse Sensing

ABSTRACT The incorporation of two‐dimensional (2D) nanomaterials such as molybdenum disulfide (MoS 2 ) nanoflakes/nanosheets into hydrogel matrices offers significant potential for the development of flexible and biocompatible piezoresistive sensors. Scalable synthesis methods, including liquid‐phase exfoliation and hydrothermal processes, enable the efficient production of 2D MoS 2 while reducing cost and environmental impact. Owing to the high surface area, anisotropy, and tunable electronic properties, these materials enhance sensitivity, mechanical strength, and electrical performance in hybrid systems. In this work, 1T‐ MoS 2 ‐based hybrid hydrogels were fabricated via UV curing by forming cross‐linked networks with polyethylene glycol diacrylate (PEGDA) and chitosan (CH). Electrical conductivity was further improved through in situ interfacial polymerization of aniline. The equivalent 3D‐printed hydrogels exhibited enhanced mechanical strength, few‐cycles structural stability, swelling, and controlled deformation compared to simply UV‐cured systems, enabling more reproducible electromechanical responses. Both fabrication approaches showed linear and reversible piezoresistive behavior within the physiological blood pressure range. Furthermore, the optimized hydrogel demonstrated to be reliable in pulse monitoring (ca. 85 bpm) with good temporal correlation to the electrocardiogram signal and biocompatibility with human fibroblast cells, underscoring its potential for soft, flexible, and bio‐integrated sensing applications.

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Publication Details

Journal
Advanced Science
Published
2026-08-27
DOI
https://doi.org/10.1002/advs.77092
Primary Topic
Advanced Sensor and Energy Harvesting Materials
Type
article
Field-Weighted Citation Impact
0.00

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Printable Piezoresistive Hybrid Hydrogels Based on 2D MoS 2 for Flexible Pulse Sensing

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Printable Piezoresistive Hybrid Hydrogels Based on 2D MoS 2 for Flexible Pulse Sensing

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article en

Abstract

ABSTRACT The incorporation of two‐dimensional (2D) nanomaterials such as molybdenum disulfide (MoS 2 ) nanoflakes/nanosheets into hydrogel matrices offers significant potential for the development of flexible and biocompatible piezoresistive sensors. Scalable synthesis methods, including liquid‐phase exfoliation and hydrothermal processes, enable the efficient production of 2D MoS 2 while reducing cost and environmental impact. Owing to the high surface area, anisotropy, and tunable electronic properties, these materials enhance sensitivity, mechanical strength, and electrical performance in hybrid systems. In this work, 1T‐ MoS 2 ‐based hybrid hydrogels were fabricated via UV curing by forming cross‐linked networks with polyethylene glycol diacrylate (PEGDA) and chitosan (CH). Electrical conductivity was further improved through in situ interfacial polymerization of aniline. The equivalent 3D‐printed hydrogels exhibited enhanced mechanical strength, few‐cycles structural stability, swelling, and controlled deformation compared to simply UV‐cured systems, enabling more reproducible electromechanical responses. Both fabrication approaches showed linear and reversible piezoresistive behavior within the physiological blood pressure range. Furthermore, the optimized hydrogel demonstrated to be reliable in pulse monitoring (ca. 85 bpm) with good temporal correlation to the electrocardiogram signal and biocompatibility with human fibroblast cells, underscoring its potential for soft, flexible, and bio‐integrated sensing applications.

Advanced Science
Universidad de Granada (ES), Politecnico di Torino (IT), Chemnitz University of Technology (DE), Italian Institute of Technology (IT), Torino e-district (IT), Center for Sustainable Future Technologies (IT)
European Research Council
Responsible consumption and production
Openalex Percentile: Top 19%
Advanced Sensor and Energy Harvesting Materials
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