TY - JOUR
T1 - Complementary integration of organic electrochemical transistors for front-end amplifier circuits of flexible neural implants
AU - Uguz, Ilke
AU - Ohayon, David
AU - Yilmaz, Sinan
AU - Griggs, Sophie
AU - Sheelamanthula, Rajendar
AU - Fabbri, Jason D.
AU - McCulloch, Iain
AU - Inal, Sahika
AU - Shepard, Kenneth L.
N1 - Publisher Copyright:
© 2024 American Association for the Advancement of Science. All rights reserved.
PY - 2024/3
Y1 - 2024/3
N2 - The ability to amplify, translate, and process small ionic potential fluctuations of neural processes directly at the recording site is essential to improve the performance of neural implants. Organic front-end analog electronics are ideal for this application, allowing for minimally invasive amplifiers owing to their tissue-like mechanical properties. Here, we demonstrate fully organic complementary circuits by pairing depletion- and enhancement-mode p- and n-type organic electrochemical transistors (OECTs). With precise geometry tuning and a vertical device architecture, we achieve overlapping output characteristics and integrate them into amplifiers with single neuronal dimensions (20 micrometers). Amplifiers with combined p- and n-OECTs result in voltage-to-voltage amplification with a gain of >30 decibels. We also leverage depletion and enhancement-mode p-OECTs with matching characteristics to demonstrate a differential recording capability with high common mode rejection rate (>60 decibels). Integrating OECT-based front-end amplifiers into a flexible shank form factor enables single-neuron recording in the mouse cortex with on-site filtering and amplification.
AB - The ability to amplify, translate, and process small ionic potential fluctuations of neural processes directly at the recording site is essential to improve the performance of neural implants. Organic front-end analog electronics are ideal for this application, allowing for minimally invasive amplifiers owing to their tissue-like mechanical properties. Here, we demonstrate fully organic complementary circuits by pairing depletion- and enhancement-mode p- and n-type organic electrochemical transistors (OECTs). With precise geometry tuning and a vertical device architecture, we achieve overlapping output characteristics and integrate them into amplifiers with single neuronal dimensions (20 micrometers). Amplifiers with combined p- and n-OECTs result in voltage-to-voltage amplification with a gain of >30 decibels. We also leverage depletion and enhancement-mode p-OECTs with matching characteristics to demonstrate a differential recording capability with high common mode rejection rate (>60 decibels). Integrating OECT-based front-end amplifiers into a flexible shank form factor enables single-neuron recording in the mouse cortex with on-site filtering and amplification.
UR - https://www.scopus.com/pages/publications/85188867196
UR - https://www.scopus.com/inward/citedby.url?scp=85188867196&partnerID=8YFLogxK
U2 - 10.1126/sciadv.adi9710
DO - 10.1126/sciadv.adi9710
M3 - Article
C2 - 38517957
AN - SCOPUS:85188867196
VL - 10
JO - Science Advances
JF - Science Advances
IS - 12
M1 - eadi9710
ER -