互连性
电解质
材料科学
电化学
纳米技术
晶体管
生物电子学
盐(化学)
有机电子学
化学工程
电极
化学
计算机科学
电气工程
有机化学
生物传感器
物理化学
电压
人工智能
工程类
作者
David Ohayon,Lucas Q. Flagg,Andrea Giugni,Shofarul Wustoni,Ruipeng Li,Tania C. Hidalgo,Abdul‐Hamid Emwas,Rajendar Sheelamanthula,Iain McCulloch,Lee J. Richter,Sahika Inal
标识
DOI:10.1021/acsmaterialsau.2c00072
摘要
Organic electrochemical transistors (OECTs) are becoming increasingly ubiquitous in various applications at the interface with biological systems. However, their widespread use is hampered by the scarcity of electron-conducting (n-type) backbones and the poor performance and stability of the existing n-OECTs. Here, we introduce organic salts as a solution additive to improve the transduction capability, shelf life, and operational stability of n-OECTs. We demonstrate that the salt-cast devices present a 10-fold increase in transconductance and achieve at least one year-long stability, while the pristine devices degrade within four months of storage. The salt-added films show improved backbone planarity and greater charge delocalization, leading to higher electronic charge carrier mobility. These films show a distinctly porous morphology where the interconnectivity is affected by the salt type, responsible for OECT speed. The salt-based films display limited changes in morphology and show lower water uptake upon electrochemical doping, a possible reason for the improved device cycling stability. Our work provides a new and easy route to improve n-type OECT performance and stability, which can be adapted for other electrochemical devices with n-type films operating at the aqueous electrolyte interface.
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