Emerging diverse 3D neural electrode architectures for bioelectronics

Abstract

Bioelectronics have been increasing in prevalence, driving extensive studies to develop systems that can perform electronic operations on various organs. In particular, neural recording technologies have undergone rapid development through the integration of advanced materials and electronic systems designed to interface directly with biological environments. Despite the developments of 1D and 2D neural interfaces, their applicability is limited by factors including elevated impedance, mechanical fragility, and poor conformability to inhomogeneous biological surfaces. To overcome these limitations, 3D neural electrodes have been extensively developed. Not only can 3D bioelectrodes enable stable interfacing with the biological surfaces, but also explore deep regions previously inaccessible with surface-based approaches. This review summarizes recent advances in 3D neural electrode architectures, highlighting their key functionalities, underlying materials and structural designs, representative applications, and current challenges.

Graphical abstract: Emerging diverse 3D neural electrode architectures for bioelectronics

Article information

Article type
Review Article
Submitted
26 Dec 2025
Accepted
30 Mar 2026
First published
16 Apr 2026
This article is Open Access
Creative Commons BY-NC license

Nanoscale Horiz., 2026, Advance Article

Emerging diverse 3D neural electrode architectures for bioelectronics

J. Paek, W. Park, H. Song, I. Jeong, M. Oh, E. Kim, D. Kim, S. H. An, Y. Kim, W. G. Chung, S. Lee, J. Lee, J. A. Lim and J. Park, Nanoscale Horiz., 2026, Advance Article , DOI: 10.1039/D5NH00844A

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