Functional Hydrogels for Wearable and Implantable Neural Interfaces: Materials, Properties, and Applications

Functional hydrogels are increasingly used in neural interfaces. As hydrophilic polymer networks that combine tissue-like softness with tunable conductivity and adhesion, they relieve two fundamental limitations of rigid conventional electrodes within a single material: the mechanical mismatch that drives the chronic foreign body response, and the electrical mismatch that raises interfacial impedance. This review discusses functional hydrogels through their core interfacial properties of biocompatibility, adhesion, and interfacial impedance/conductivity, and highlights how these requirements differ between skin-mounted wearable and implantable devices. Their applications in neural recording, electrical and ultrasound neuromodulation, and external and robotic device control are then covered in detail. Finally, the key challenges and future opportunities are summarized, including gelation control, long-term in vivo stability, integration with robotic hardware, and clinical translation. As the field advances, functional hydrogels are poised to become a core platform for next-generation neural interfaces.

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Publication Details

Journal
Gels
Published
2026-09-28
DOI
https://doi.org/10.3390/gels12100875
Primary Topic
Neuroscience and Neural Engineering
Type
article
Field-Weighted Citation Impact
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article

Functional Hydrogels for Wearable and Implantable Neural Interfaces: Materials, Properties, and Applications

Jinmo Jeong, Goeun Kim, Joowan Kim, Jaewoo Park et al.
Gels
Neuroscience and Neural Engineering
article

Functional Hydrogels for Wearable and Implantable Neural Interfaces: Materials, Properties, and Applications

Jinmo Jeong, Goeun Kim, Joowan Kim, Jaewoo Park, Yunsu Shin, Yeojin Lee, Seoyun Eom
article en

Abstract

Functional hydrogels are increasingly used in neural interfaces. As hydrophilic polymer networks that combine tissue-like softness with tunable conductivity and adhesion, they relieve two fundamental limitations of rigid conventional electrodes within a single material: the mechanical mismatch that drives the chronic foreign body response, and the electrical mismatch that raises interfacial impedance. This review discusses functional hydrogels through their core interfacial properties of biocompatibility, adhesion, and interfacial impedance/conductivity, and highlights how these requirements differ between skin-mounted wearable and implantable devices. Their applications in neural recording, electrical and ultrasound neuromodulation, and external and robotic device control are then covered in detail. Finally, the key challenges and future opportunities are summarized, including gelation control, long-term in vivo stability, integration with robotic hardware, and clinical translation. As the field advances, functional hydrogels are poised to become a core platform for next-generation neural interfaces.

GelsVol. 12(10)
Catholic University of Korea (KR)
Openalex Percentile: Top 17%
Neuroscience and Neural Engineering
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Functional Hydrogels for Wearable and Implantable Neural Interfaces: Materials, Properties, and Applications — Jinmo Jeong, Goeun Kim, et al. · Gels (2026) | TGRS Research Map | TGRS