TY - JOUR
T1 - Materials and devices for high-density, high-throughput micro-electrocorticography arrays
AU - Xie, Yang
AU - Peng, Yanxiu
AU - Guo, Jinhong
AU - Liu, Muyang
AU - Zhang, Bozhen
AU - Yin, Lan
AU - Ding, He
AU - Sheng, Xing
N1 - Publisher Copyright:
© 2024
PY - 2024
Y1 - 2024
N2 - The pursuit of precisely recording and localizing neural activities in brain cortical regions drives the development of advanced electrocorticography (ECoG) devices. Remarkable progress has led to the emergence of micro-ECoG (µECoG) devices with sub-millimeter resolutions. This review presents the current research status, development directions, potential innovations and applications of high-density, high-throughput µECoG devices. First, we summarize the challenges associated with accurately recording single or multiple neurons using existing µECoG devices, including passive multielectrode and active transistor arrays. Second, we focus on cutting-edge advancements in passive µECoG devices by discussing the design principles and fabrication strategies to optimize three key parameters: impedance, mechanical flexibility, and biocompatibility. Furthermore, recent findings highlight the need for further research and development in active transistor arrays, including silicon, metal oxide, and solution-gated transistors. These active transistor arrays have the potential to unlock the capabilities of high-density, high-throughput µECoG devices and overcome the limitations of passive multielectrode arrays. The review explores the potential innovations and applications of µECoG devices, showcasing their effectiveness for both brain science research and clinical applications.
AB - The pursuit of precisely recording and localizing neural activities in brain cortical regions drives the development of advanced electrocorticography (ECoG) devices. Remarkable progress has led to the emergence of micro-ECoG (µECoG) devices with sub-millimeter resolutions. This review presents the current research status, development directions, potential innovations and applications of high-density, high-throughput µECoG devices. First, we summarize the challenges associated with accurately recording single or multiple neurons using existing µECoG devices, including passive multielectrode and active transistor arrays. Second, we focus on cutting-edge advancements in passive µECoG devices by discussing the design principles and fabrication strategies to optimize three key parameters: impedance, mechanical flexibility, and biocompatibility. Furthermore, recent findings highlight the need for further research and development in active transistor arrays, including silicon, metal oxide, and solution-gated transistors. These active transistor arrays have the potential to unlock the capabilities of high-density, high-throughput µECoG devices and overcome the limitations of passive multielectrode arrays. The review explores the potential innovations and applications of µECoG devices, showcasing their effectiveness for both brain science research and clinical applications.
KW - Bioelectronics
KW - Electrocorticography
KW - Flexible electronics
KW - Micro-electrocorticography
KW - Neural electrode array
UR - http://www.scopus.com/inward/record.url?scp=85190892792&partnerID=8YFLogxK
U2 - 10.1016/j.fmre.2024.01.016
DO - 10.1016/j.fmre.2024.01.016
M3 - Review article
AN - SCOPUS:85190892792
SN - 2096-9457
JO - Fundamental Research
JF - Fundamental Research
ER -