Litcius/Paper detail

An Opto-electrophysiology Neural Probe with Photoelectric Artifact-Free for Advanced Single-Neuron Analysis

Qingda Xu, Ye Xi, Longchun Wang, Zhiyuan Du, Mengfei Xu, Tao Ruan, Jiawei Cao, Kunyu Zheng, Xiaolin Wang, Bin Yang, Jingquan Liu

2024ACS Nano15 citationsDOI

Abstract

Opto-electrophysiology neural probes targeting single-cell levels offer an important avenue for elucidating the intrinsic mechanisms of the nervous system using different physical quantities, representing a significant future direction for brain–computer interface (BCI) devices. However, the highly integrated structure poses significant challenges to fabrication processes and the presence of photoelectric artifacts complicates the extraction and analysis of target signals. Here, we propose a highly miniaturized and integrated opto-electrophysiology neural probe for electrical recording and optical stimulation at the single-cell/subcellular level. The design of a total internal reflection layer addresses the photoelectric artifacts that are more pronounced in single-cell devices compared to conventional implantable BCI devices. Finite element simulations and electrical signal tests demonstrate that the opto-electrophysiology neural probe eliminates the photoelectric artifacts in the time domain, which represents a significant breakthrough for optoelectrical integrated BCI devices. Our proposed opto-electrophysiology neural probe holds substantial potential for promoting the development of in vivo BCI devices and developing advanced therapeutic strategies for neurological disorders.

Topics & Concepts

ElectrophysiologyBrain–computer interfaceComputer scienceArtifact (error)SIGNAL (programming language)Multielectrode arrayPhotoelectric effectNeuroscienceMicroelectrodeArtificial intelligenceMaterials scienceElectroencephalographyPhysicsElectrodeOptoelectronicsBiologyProgramming languageQuantum mechanicsPhotoreceptor and optogenetics researchNeuroscience and Neural EngineeringNeural dynamics and brain function