TY - JOUR
T1 - Three-dimensional helical integration of high-density linear microelectrode arrays and their cross-tissue applications
AU - Wang, Minghao
AU - Shang, Siyan
AU - Xu, Yuchen
AU - Zhou, Chaojie
AU - You, Xiaoli
AU - Jiang, Hao
AU - Fan, Xiaoman
AU - Zhou, Xinhua
AU - Wang, Wenhao
AU - Zhang, Wenbin
AU - Wang, Xinyi
AU - Wang, Longchun
AU - Zhang, Shaomin
AU - Ji, Bowen
AU - Wang, Gaofeng
AU - Liu, Jingquan
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/11/1
Y1 - 2026/11/1
N2 - Implantable neural microelectrodes are the core components enabling high spatiotemporal resolution neural signal recording and stimulation in brain-computer interfaces (BCIs). However, current technologies still face challenges in achieving high-throughput recording, precise implantation, and long-term stability. In this work, we present a high-throughput three-dimensional (3D) helical stretchable neural probe, fabricated via planar electrode micro-fabrication technology followed by thermally driven helical shaping. The main innovations are reflected in the following: First, through the helical deformation, it is possible to simultaneously achieve cross-tissue recording on cortical surface, deep brain, and inside blood vessels. Secondly, the helical structure can expand the wiring space of the electrodes into three dimensions, achieving high spatial resolution and good mechanical compatibility with the tissue. Interface mechanics simulations indicate that the helical structure effectively mitigates strain induced by brain micromotion. Electrochemical modification significantly reduces interface impedance and enhances charge storage capacity (CSC), while cyclic stretching tests confirm stable electrochemical performance under repeated high-strain conditions. Trans-tissue in vivo experiments further validate the probe's versatility: flexible planar MEAs successfully recorded high-quality subcutaneous electromyography (EMG) signals in mice; the helical probe captured single-unit activity in the deep brain of mice with long-term recording stability; and 1024-channel high-throughput signal acquisition was achieved in the pig cerebral cortex. This technology enables high-throughput, stretchable, and cross-scale long-term stable neural recording, providing a versatile tool for next-generation BCIs and clinical neuromonitoring.
AB - Implantable neural microelectrodes are the core components enabling high spatiotemporal resolution neural signal recording and stimulation in brain-computer interfaces (BCIs). However, current technologies still face challenges in achieving high-throughput recording, precise implantation, and long-term stability. In this work, we present a high-throughput three-dimensional (3D) helical stretchable neural probe, fabricated via planar electrode micro-fabrication technology followed by thermally driven helical shaping. The main innovations are reflected in the following: First, through the helical deformation, it is possible to simultaneously achieve cross-tissue recording on cortical surface, deep brain, and inside blood vessels. Secondly, the helical structure can expand the wiring space of the electrodes into three dimensions, achieving high spatial resolution and good mechanical compatibility with the tissue. Interface mechanics simulations indicate that the helical structure effectively mitigates strain induced by brain micromotion. Electrochemical modification significantly reduces interface impedance and enhances charge storage capacity (CSC), while cyclic stretching tests confirm stable electrochemical performance under repeated high-strain conditions. Trans-tissue in vivo experiments further validate the probe's versatility: flexible planar MEAs successfully recorded high-quality subcutaneous electromyography (EMG) signals in mice; the helical probe captured single-unit activity in the deep brain of mice with long-term recording stability; and 1024-channel high-throughput signal acquisition was achieved in the pig cerebral cortex. This technology enables high-throughput, stretchable, and cross-scale long-term stable neural recording, providing a versatile tool for next-generation BCIs and clinical neuromonitoring.
KW - 3D helical structure
KW - High-throughput neural recording
KW - Stretchable neural probes
KW - Thermoforming
KW - Trans-tissue implantation
UR - https://www.scopus.com/pages/publications/105043625550
U2 - 10.1016/j.bios.2026.118987
DO - 10.1016/j.bios.2026.118987
M3 - 文章
AN - SCOPUS:105043625550
SN - 0956-5663
VL - 311
JO - Biosensors and Bioelectronics
JF - Biosensors and Bioelectronics
M1 - 118987
ER -