PEDOT:PSS-Based OECT Common-Source Amplifiers for Electrophysiological Signal Amplification

Stable amplification of weak electrophysiological signals is important for low-voltage bioelectronic interfaces, but the gain and waveform fidelity of organic electrochemical transistor (OECT)-based amplifiers are strongly influenced by device characteristics and bias conditions. Herein, we develop a poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS) vertical organic electrochemical transistor (vOECT) common-source amplifier using an integrated solid-state electrolyte and investigate its bias-dependent amplification behavior. The fabricated vOECTs exhibits typical p-type depletion-mode operation, effective gate-controlled current modulation, and a maximum transconductance of 22 mS. Transient measurements show reversible current switching with response time constants of 0.909 and 0.635 ms, while repeated gate-voltage modulation over approximately 1000 s confirms stable cycling behavior. Based on the measured transfer and output characteristics, a common-source amplifier model is constructed to analyze the relationship between gate bias, bias resistance, output swing, and voltage gain. By optimizing the voltage-divider bias network, the amplifier achieves a voltage gain of approximately 3.374. The optimized circuit amplifies sinusoidal signals from 1 to 100 Hz and simulated ECG, EEG, and EOG waveforms while preserving their main temporal features and producing the expected phase-inverted output. Distortion and frequency-response analyses further show a 1% total harmonic distortion point at an input peak amplitude of 113 mV and a −3 dB cut-off frequency of 625 Hz. These results demonstrate the importance of bias optimization for achieving stable low-frequency voltage amplification in PEDOT:PSS vOECT common-source amplifiers.

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Publication Details

Journal
Nanomaterials
Published
2026-10-08
DOI
https://doi.org/10.3390/nano16191274
Primary Topic
Conducting polymers and applications
Type
article
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article

PEDOT:PSS-Based OECT Common-Source Amplifiers for Electrophysiological Signal Amplification

Kun Lun Xu, Naichen Zhang, Yunqing Tang, Xiaolei Li et al.
Nanomaterials
Conducting polymers and applications
article

PEDOT:PSS-Based OECT Common-Source Amplifiers for Electrophysiological Signal Amplification

Kun Lun Xu, Naichen Zhang, Yunqing Tang, Xiaolei Li, Yixin Cao, Yujing Zhang, Weiming Luo
article en

Abstract

Stable amplification of weak electrophysiological signals is important for low-voltage bioelectronic interfaces, but the gain and waveform fidelity of organic electrochemical transistor (OECT)-based amplifiers are strongly influenced by device characteristics and bias conditions. Herein, we develop a poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS) vertical organic electrochemical transistor (vOECT) common-source amplifier using an integrated solid-state electrolyte and investigate its bias-dependent amplification behavior. The fabricated vOECTs exhibits typical p-type depletion-mode operation, effective gate-controlled current modulation, and a maximum transconductance of 22 mS. Transient measurements show reversible current switching with response time constants of 0.909 and 0.635 ms, while repeated gate-voltage modulation over approximately 1000 s confirms stable cycling behavior. Based on the measured transfer and output characteristics, a common-source amplifier model is constructed to analyze the relationship between gate bias, bias resistance, output swing, and voltage gain. By optimizing the voltage-divider bias network, the amplifier achieves a voltage gain of approximately 3.374. The optimized circuit amplifies sinusoidal signals from 1 to 100 Hz and simulated ECG, EEG, and EOG waveforms while preserving their main temporal features and producing the expected phase-inverted output. Distortion and frequency-response analyses further show a 1% total harmonic distortion point at an input peak amplitude of 113 mV and a −3 dB cut-off frequency of 625 Hz. These results demonstrate the importance of bias optimization for achieving stable low-frequency voltage amplification in PEDOT:PSS vOECT common-source amplifiers.

NanomaterialsVol. 16(19)
Shandong University (CN), Henan University of Technology (CN)
Openalex Percentile: Top 25%
Conducting polymers and applications
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