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March 29, 2026Advanced Healthcare Materials1 citationsOpen Access

Optoelectrical Devices for Neural Interfacing: Engineering Integration, Stability, and Multimodal Sensing

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SAStella AslanoglouItalian Institute of TechnologyBSBarbara SpagnoloItalian Institute of TechnologyABAntonio BalenaCentre National de la Recherche Scientifique

Key Points

  • This research explores the development of advanced optoelectrical devices for neural interfacing and addresses integration challenges.
  • Assessment of existing platforms for electrical and optical interaction with neural cells.
  • Utilization of soft, biocompatible materials to reduce mechanical mismatch.
  • Implementation of various sensors for monitoring neurochemical activities.
  • Success in enhancing resolution of neural activity monitoring through integrated platforms.
  • Reduction in long-term foreign body response with the use of biocompatible materials.
  • Advancements in electrochemical and optical sensor designs for multifaceted neurochemical detection.

Abstract

ABSTRACT In recent years, implantable optoelectrical devices have emerged as an effective resource for modulating and monitoring neural activity with high spatiotemporal resolution. By integrating optical stimulation, electrophysiological recording, and neurochemical sensing, these multifunctional interfaces offer novel ways to interrogate brain circuits in vivo. However, the greater the integration, the more sophisticated and consequently challenging the front‐end of the implantable system becomes. The challenge revolves around three bottlenecks: (i) complexity of high‐density optoelectrical integration, (ii) adverse long‐term foreign body response (FBR), and (iii) limited incorporation of sensors for both cellular and biomolecular activity, including neurotransmitter activity and dynamics. Here we focus on the strategies to address these challenges in the context of device engineering at its interface with tissue. First, we present platforms developed by the scientific community for interacting with neural cells via electrical and optical means to achieve high resolution. Then we discuss soft, biocompatible materials and thermally‐drawn polymer fibers to minimize mechanical mismatch and implementation of electrochemical, optical, and organic transistor‐based sensors for multimodal neurochemical detection. Finally, we outline future perspectives for the development of next‐generation neural interfaces capable of chronic, multisite, and multimodal interrogation of neural dynamics, with potential applications in both basic neuroscience and translational neurotechnologies.

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Cite This Study

Aslanoglou et al. (2026) studied this question.

synapsesocial.com/papers/69c8c277de0f0f753b39cbc4https://doi.org/10.1002/adhm.202504846
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