4.8 Article

Selenophene Substitution Enabled High-Performance n-Type Polymeric Mixed Ionic-Electronic Conductors for Organic Electrochemical Transistors and Glucose Sensors

Journal

ADVANCED MATERIALS
Volume -, Issue -, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202310503

Keywords

glucose sensors; mixed ionic-electronic conductors; n-type polymer semiconductors; organic electrochemical transistors; selenium substitution

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By changing the composition of the polymer, especially by increasing the content of selenophene, the performance of n-type polymers can be improved, enabling high-performance organic electrochemical transistors and biosensors.
High-performance n-type polymeric mixed ionic-electronic conductors (PMIECs) are essential for realizing organic electrochemical transistors (OECTs)-based low-power complementary circuits and biosensors, but their development still remains a great challenge. Herein, by devising two novel n-type polymers (f-BTI2g-SVSCN and f-BSeI2g-SVSCN) containing varying selenophene contents together with their thiophene-based counterpart as the control, it is demonstrated that gradually increasing selenophene loading in polymer backbones can simultaneously yield lowered lowest unoccupied molecular orbital levels, boosted charge-transport properties, and improved ion-uptake capabilities. Therefore, a remarkable volumetric capacitance (C*) of 387.2 F cm-3 and a state-of-the-art OECT electron mobility (mu e,OECT) of 0.48 cm2 V-1 s-1 are synchronously achieved for f-BSeI2g-SVSCN having the highest selenophene content, yielding an unprecedented geometry-normalized transconductance (gm,norm) of 71.4 S cm-1 and record figure of merit (mu C*) value of 191.2 F cm-1 V-1 s-1 for n-type OECTs. Thanks to such excellent performance of f-BSeI2g-SVSCN-based OECTs, a glucose sensor with a remarkably low detection limit of 10 nMm and decent selectivity is further implemented, demonstrating the power of selenophene substitution strategy in enabling high-performance n-type PMIECs for biosensing applications. With selenophene substitution, the resulting polymers demonstrate enhanced charge transport properties and improved ion-uptake capabilities, resulting in unprecedented performance for n-type organic electrochemical transistors. These advancements hold great promise for various biosensing applications, exemplified by the successful development of a highly sensitive glucose sensor.image

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