Conductive Gels for Wearable and Attachable Healthcare Devices: Materials, Sensing Mechanisms, Interfaces and Applications

Wearable and attachable healthcare devices provide valuable insights across a broad range of applications, from health monitoring and disease diagnosis to the assessment of daily human activities. For these devices, both the formation of high-performance electrodes and mechanical, electrical, and physiological stability at human-device interfaces are critically important. Conductive gels, which combine deformable polymer networks with electrical conductivity, show considerable potential as functional materials for such applications. However, existing reviews have often considered material properties, interfacial behavior, and device reliability separately. This review examines hydrogels, ionogels, and organogels by linking material design, stimulus- and analyte-responsive sensing, biological and device interfaces, and healthcare applications. This integrated perspective emphasizes evaluating conductive gels within complete healthcare devices, where material properties, biological interfaces, and device integration jointly determine practical performance. Such evaluation needs to address signal quality and the stability of the assembled system during deformation, environmental exposure, and prolonged use. Future progress will require reproducible device fabrication and standardized validation tailored to the intended application, with systematic assessment of long-term biosafety and alignment with relevant regulatory requirements. Integration with flexible electronics, intelligent data processing, and feedback control may further enable reliable and responsive healthcare platforms.

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Publication Details

Journal
Gels
Published
2026-09-30
DOI
https://doi.org/10.3390/gels12100883
Primary Topic
Advanced Sensor and Energy Harvesting Materials
Type
article
Field-Weighted Citation Impact
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Conductive Gels for Wearable and Attachable Healthcare Devices: Materials, Sensing Mechanisms, Interfaces and Applications

Dongwuk Jung, Jinmo Jeong
Gels
Advanced Sensor and Energy Harvesting Materials
article

Conductive Gels for Wearable and Attachable Healthcare Devices: Materials, Sensing Mechanisms, Interfaces and Applications

Dongwuk Jung, Jinmo Jeong
article en

Abstract

Wearable and attachable healthcare devices provide valuable insights across a broad range of applications, from health monitoring and disease diagnosis to the assessment of daily human activities. For these devices, both the formation of high-performance electrodes and mechanical, electrical, and physiological stability at human-device interfaces are critically important. Conductive gels, which combine deformable polymer networks with electrical conductivity, show considerable potential as functional materials for such applications. However, existing reviews have often considered material properties, interfacial behavior, and device reliability separately. This review examines hydrogels, ionogels, and organogels by linking material design, stimulus- and analyte-responsive sensing, biological and device interfaces, and healthcare applications. This integrated perspective emphasizes evaluating conductive gels within complete healthcare devices, where material properties, biological interfaces, and device integration jointly determine practical performance. Such evaluation needs to address signal quality and the stability of the assembled system during deformation, environmental exposure, and prolonged use. Future progress will require reproducible device fabrication and standardized validation tailored to the intended application, with systematic assessment of long-term biosafety and alignment with relevant regulatory requirements. Integration with flexible electronics, intelligent data processing, and feedback control may further enable reliable and responsive healthcare platforms.

GelsVol. 12(10)
Chonnam National University (KR), Catholic University of Korea (KR)
Openalex Percentile: Top 22%
Advanced Sensor and Energy Harvesting Materials
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Conductive Gels for Wearable and Attachable Healthcare Devices: Materials, Sensing Mechanisms, Interfaces and Applications — Dongwuk Jung, Jinmo Jeong · Gels (2026) | TGRS Research Map | TGRS