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November 30, 2025Advanced Materials4 citations

Integrated Hydrogel Optical Fiber Electronics with Mechanically Robust Interfaces Enable Simultaneous Electrophysiological Recording and Optogenetic Modulation

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XCXingmei ChenLWLulu WangQDQingfang Duan

Key Points

  • High-fidelity electrophysiological recording and optogenetic modulation achieved simultaneously in deep neural circuits, demonstrating device efficacy.
  • Validated via two-month hippocampal implantation, with substantial implications for neural activity manipulation.
  • Development of a multilayer architecture integrates multiple hydrogel modalities for concurrent electrical and optical operations.
  • Highlights the superior capabilities of flexible hydrogel-based neural bioelectronics for deeper neural circuit interrogation.

Abstract

Abstract Hydrogel‐based electrodes and optical guides are promising tools for neural bioelectronics, offering tissue‐like compliance, hydration capacity, and customizable functionalities. However, integrating multiple hydrogel modalities into a single device remains challenging due to material compatibility, cross‐modal interference, and interfacial integration issues. In this work, an integrated hydrogel optical fiber electronics (iHOFE) platform is reported, including a step‐index optical core, a conductive hydrogel layer, and a tissue‐matched insulating sheath. By engineering the robust interface between each layer through chemical bonding and topological entanglement, a multilayer architecture capable of concurrent electrical and optical operation under dynamic mechanical deformation is created, thus high‐fidelity electrophysiological recording and optogenetic modulation within the same region. The efficacy of the iHOFE is validated via two‐month hippocampal implantation, demonstrating recording and manipulation of neural activity. This platform marks a significant advancement in developing multifunctional neural bioelectronics for interrogating and manipulating deep neural circuits compared to existing technologies.

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Cite This Study

Chen et al. (2025) studied this question.

synapsesocial.com/papers/692b9d9a1d383f2b2a379f77https://doi.org/10.1002/adma.202517771
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