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Verified CAS / Academic Author2 Decoded Studies

Prof. XU Chenhui

Tianjin University

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3448-1

High work function silver nanowire electrodes via ligand exchange reaction for stretchable organic thin-film transistors

Silver nanowires (AgNWs) are established as promising conductors for stretchable electronics, yet their application in p-type organic thin-film transistors (OTFTs) is constrained by a substantial work function mismatch with the highest occupied molecular orbital (HOMO) of organic semiconductors, resulting in severe charge injection barriers and degraded device performance. This study addresses the bottleneck through a ligand exchange reaction on the AgNW surface using fluorinated molecules, combined with a post-treatment-free fabrication process. The ligand-exchanged AgNW electrodes exhibit a work function exceeding 5 eV, closely aligning with the HOMO level of the p-type polymer semiconductor poly(indacenodithiophene-co-benzothiadiazole) (IDT-BT). Consequently, IDT-BT-based OTFTs incorporating these electrodes demonstrate a reduced threshold voltage and enhanced carrier transport, achieving a hole mobility of 0.4 cm2 V−1 s−1. Critically, the ligand exchange does not compromise mechanical deformability; the devices retain their original mobility after being subjected to 30% strain. These results validate the ligand-exchange strategy as an effective route for work function tuning of AgNW electrodes, enabling high-performance stretchable organic electronics without sacrificing mechanical resilience.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3522-7

Chain Alignment and Film Crystallinity Manipulation Towards High-Performance Large-Area Printed Stretchable Electronics

Scalable printing of stretchable conjugated polymer films is essential for low-cost, large-area wearable electronics, yet achieving optimal film morphology that simultaneously enhances energy dissipation and charge transport remains a critical challenge. This study demonstrates large-area stretchable conjugated polymer films with low crystallinity but strong chain alignment, fabricated by simultaneously regulating fluid field and solidification dynamics during bar-coating. The strong fluid field aligns polymer chains in the coating direction and promotes solution aggregation in the initial wet layer, while sequential rapid solidification restricts crystallization and facilitates aggregate alignment, forming highly-aligned nanofiber networks within the elastomer phase. These elastomer-constrained nanofiber networks maintain connectivity under strain, providing efficient charge transport channels. The resulting films exhibit high charge mobilities of 6.11 and 2.98 cm2 V−1 s−1 at 0% and 100% strains, respectively, among the highest reported for stretchable conjugated polymer films. The films also achieve a high X-ray sensitivity of 1757.2 μC Gyair−1 cm−2 and an ultralow detection limit of 72.5 nGyair s−1, with maintained imaging capability before and after stretching. This work establishes a robust morphology control strategy for high-performance, large-area stretchable conjugated polymer films, advancing their practical application in wearable electronics.