Cargando…

An Ultra-Low-Noise, Low Power and Miniaturized Dual-Channel Wireless Neural Recording Microsystem

As the basic tools for neuroscience research, invasive neural recording devices can obtain high-resolution neuronal activity signals through electrodes connected to the subject’s brain. Existing wireless neural recording devices are large in size or need external large-scale equipment for wireless p...

Descripción completa

Detalles Bibliográficos
Autores principales: Wang, Haochuan, Ma, Qian, Chen, Keming, Zhang, Hanqing, Yang, Yinyan, Zheng, Nenggan, Hong, Hui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9405808/
https://www.ncbi.nlm.nih.gov/pubmed/36005009
http://dx.doi.org/10.3390/bios12080613
_version_ 1784773967960080384
author Wang, Haochuan
Ma, Qian
Chen, Keming
Zhang, Hanqing
Yang, Yinyan
Zheng, Nenggan
Hong, Hui
author_facet Wang, Haochuan
Ma, Qian
Chen, Keming
Zhang, Hanqing
Yang, Yinyan
Zheng, Nenggan
Hong, Hui
author_sort Wang, Haochuan
collection PubMed
description As the basic tools for neuroscience research, invasive neural recording devices can obtain high-resolution neuronal activity signals through electrodes connected to the subject’s brain. Existing wireless neural recording devices are large in size or need external large-scale equipment for wireless power supply, which limits their application. Here, we developed an ultra-low-noise, low power and miniaturized dual-channel wireless neural recording microsystem. With the full-differential front-end structure of the dual operational amplifiers (op-amps), the noise level and power consumption are notably reduced. The hierarchical microassembly technology, which integrates wafer-level packaged op-amps and the miniaturized Bluetooth module, dramatically reduces the size of the wireless neural recording microsystem. The microsystem shows a less than 100 nV/ [Formula: see text] ultra-low noise level, about 10 mW low power consumption, and 9 × 7 × 5 mm [Formula: see text] small size. The neural recording ability was then demonstrated in saline and a chronic rat model. Because of its miniaturization, it can be applied to freely behaving small animals, such as rats. Its features of ultra-low noise and high bandwidth are conducive to low-amplitude neural signal recording, which may help advance neuroscientific discovery.
format Online
Article
Text
id pubmed-9405808
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-94058082022-08-26 An Ultra-Low-Noise, Low Power and Miniaturized Dual-Channel Wireless Neural Recording Microsystem Wang, Haochuan Ma, Qian Chen, Keming Zhang, Hanqing Yang, Yinyan Zheng, Nenggan Hong, Hui Biosensors (Basel) Article As the basic tools for neuroscience research, invasive neural recording devices can obtain high-resolution neuronal activity signals through electrodes connected to the subject’s brain. Existing wireless neural recording devices are large in size or need external large-scale equipment for wireless power supply, which limits their application. Here, we developed an ultra-low-noise, low power and miniaturized dual-channel wireless neural recording microsystem. With the full-differential front-end structure of the dual operational amplifiers (op-amps), the noise level and power consumption are notably reduced. The hierarchical microassembly technology, which integrates wafer-level packaged op-amps and the miniaturized Bluetooth module, dramatically reduces the size of the wireless neural recording microsystem. The microsystem shows a less than 100 nV/ [Formula: see text] ultra-low noise level, about 10 mW low power consumption, and 9 × 7 × 5 mm [Formula: see text] small size. The neural recording ability was then demonstrated in saline and a chronic rat model. Because of its miniaturization, it can be applied to freely behaving small animals, such as rats. Its features of ultra-low noise and high bandwidth are conducive to low-amplitude neural signal recording, which may help advance neuroscientific discovery. MDPI 2022-08-08 /pmc/articles/PMC9405808/ /pubmed/36005009 http://dx.doi.org/10.3390/bios12080613 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wang, Haochuan
Ma, Qian
Chen, Keming
Zhang, Hanqing
Yang, Yinyan
Zheng, Nenggan
Hong, Hui
An Ultra-Low-Noise, Low Power and Miniaturized Dual-Channel Wireless Neural Recording Microsystem
title An Ultra-Low-Noise, Low Power and Miniaturized Dual-Channel Wireless Neural Recording Microsystem
title_full An Ultra-Low-Noise, Low Power and Miniaturized Dual-Channel Wireless Neural Recording Microsystem
title_fullStr An Ultra-Low-Noise, Low Power and Miniaturized Dual-Channel Wireless Neural Recording Microsystem
title_full_unstemmed An Ultra-Low-Noise, Low Power and Miniaturized Dual-Channel Wireless Neural Recording Microsystem
title_short An Ultra-Low-Noise, Low Power and Miniaturized Dual-Channel Wireless Neural Recording Microsystem
title_sort ultra-low-noise, low power and miniaturized dual-channel wireless neural recording microsystem
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9405808/
https://www.ncbi.nlm.nih.gov/pubmed/36005009
http://dx.doi.org/10.3390/bios12080613
work_keys_str_mv AT wanghaochuan anultralownoiselowpowerandminiaturizeddualchannelwirelessneuralrecordingmicrosystem
AT maqian anultralownoiselowpowerandminiaturizeddualchannelwirelessneuralrecordingmicrosystem
AT chenkeming anultralownoiselowpowerandminiaturizeddualchannelwirelessneuralrecordingmicrosystem
AT zhanghanqing anultralownoiselowpowerandminiaturizeddualchannelwirelessneuralrecordingmicrosystem
AT yangyinyan anultralownoiselowpowerandminiaturizeddualchannelwirelessneuralrecordingmicrosystem
AT zhengnenggan anultralownoiselowpowerandminiaturizeddualchannelwirelessneuralrecordingmicrosystem
AT honghui anultralownoiselowpowerandminiaturizeddualchannelwirelessneuralrecordingmicrosystem
AT wanghaochuan ultralownoiselowpowerandminiaturizeddualchannelwirelessneuralrecordingmicrosystem
AT maqian ultralownoiselowpowerandminiaturizeddualchannelwirelessneuralrecordingmicrosystem
AT chenkeming ultralownoiselowpowerandminiaturizeddualchannelwirelessneuralrecordingmicrosystem
AT zhanghanqing ultralownoiselowpowerandminiaturizeddualchannelwirelessneuralrecordingmicrosystem
AT yangyinyan ultralownoiselowpowerandminiaturizeddualchannelwirelessneuralrecordingmicrosystem
AT zhengnenggan ultralownoiselowpowerandminiaturizeddualchannelwirelessneuralrecordingmicrosystem
AT honghui ultralownoiselowpowerandminiaturizeddualchannelwirelessneuralrecordingmicrosystem