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Updated: Jan 9, 2026

Translating Extracellular Electron Transfer Activities with Organic Electrochemical Transistors
Published on: January 31, 2025
Photothermal-Thermoelectric Cooperative Effects Mediating Zero-Bias Microscale Current Amplification in Organic
Jingtian Chi1,2, Peng Ju2, Yueyuan Cai1
1College of Chemistry and Chemical Engineering, Key Laboratory of Marine Chemistry Theory and Technology, Ministry of Education, Ocean University of China, No. 238 Songling Road, Qingdao 266100, PR China.
Abstract:
Light-driven organic photoelectrochemical transistors (OPECTs) in bioanalytical contexts show significant potential, yet they often demand a considerable current for photoelectrode-driven redox processes. Here, a robust near-infrared excited photothermal-thermoelectric-driven OPECT sensing platform has been meticulously crafted to facilitate minute current amplification with precision. To attain this objective, the initial step involves harnessing energy via photothermal-thermoelectric-based electrodes. Upon exposure to near-infrared radiation, the photothermal active matrix of MXene and the conformative effector of Bi2Te3, endowed with thermoelectric attributes, oscillated between thermal and thermoelectric field oscillations, thereby facilitating the diffusion of charge carriers responsive to near-infrared stimuli and modulating the doping state of the channel film to propel the operation of OPECTs. At the interface between Bi2Te3/MXene and the liquid medium, a sophisticated biosensing mechanism was integrated, involving immune competitive enzyme biocatalytic precipitation, which orchestrated target-dependent alterations in the channel current signal, thereby facilitating the detection of marine algal toxin okadaic acid with precision. This study provides near-infrared-stimulated photothermal- thermoelectric-driven OPECT devices, capable of amplifying microcurrents, and delineates novel operational frameworks and perspectives for optoelectronic interfacing with biological entities.
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