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用于N型有机电化学晶体管的空气稳定苝二酰亚胺三聚体材料

Air-Stable Perylene Diimide Trimer Material for N-Type Organic Electrochemical Transistors.

作者信息

Nguyen-Dang Tung, Bao Si Tong, Kaiyasuan Chokchai, Li Kunyu, Chae Sangmin, Yi Ahra, Joy Syed, Harrison Kelsey, Kim Jae Young, Pallini Francesca, Beverina Luca, Graham Kenneth R, Nuckolls Colin, Nguyen Thuc-Quyen

机构信息

Center for Polymers and Organic Solids, University of California at Santa Barbara, Santa Barbara, CA 93117, USA.

College of Engineering and Computer Science (CECS) and Center for Environmental Intelligence, VinUniversity, Gia-Lam, Hanoi, 12400, Vietnam.

出版信息

Adv Mater. 2024 Jun;36(24):e2312254. doi: 10.1002/adma.202312254. Epub 2024 Mar 30.

Abstract

A new method is reported to make air-stable n-type organic mixed ionic-electronic conductor (OMIEC) films for organic electrochemical transistors (OECTs) using a solution-processable small molecule helical perylene diimide trimer, hPDI[3]-C. Alkyl side chains are attached to the conjugated core for processability and film making, which are then cleaved via thermal annealing. After the sidechains are removed, the hPDI[3] film becomes less hydrophobic, more ordered, and has a deeper lowest unoccupied molecular orbital (LUMO). These features provide improved ionic transport, greater electronic mobility, and increased stability in air and in aqueous solution. Subsequently, hPDI[3]-H is used as the active material in OECTs and a device with a transconductance of 44 mS, volumetric capacitance of ≈250 F cm, µC value of 1 F cm V s, and excellent stability (> 5 weeks) is demonstrated. As proof of their practical applications, a hPDI[3]-H-based OECTs as a glucose sensor and electrochemical inverter is utilized. The approach of side chain removal after film formation charts a path to a wide range of molecular semiconductors to be used as stable, mixed ionic-electronic conductors.

摘要

据报道,一种新方法可利用可溶液加工的小分子螺旋苝二酰亚胺三聚体hPDI[3]-C制备用于有机电化学晶体管(OECT)的空气稳定型n型有机混合离子-电子导体(OMIEC)薄膜。为了便于加工和制膜,在共轭核上连接了烷基侧链,然后通过热退火将其裂解。侧链去除后,hPDI[3]薄膜的疏水性降低,有序性增加,最低未占据分子轨道(LUMO)更深。这些特性改善了离子传输、提高了电子迁移率,并增强了在空气和水溶液中的稳定性。随后,hPDI[3]-H被用作OECT中的活性材料,展示了一种跨导为44 mS、体积电容约为250 F/cm、µC值为1 F/cm V s且具有出色稳定性(>5周)的器件。作为其实际应用的证明,利用基于hPDI[3]-H的OECT作为葡萄糖传感器和电化学逆变器。成膜后去除侧链的方法为广泛的分子半导体用作稳定的混合离子-电子导体开辟了一条道路。

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