材料科学
阈值电压
跨导
晶体管
电化学
电极
电压
放大器
纳米技术
光电子学
过驱动电压
生物电子学
聚合物
兴奋剂
导电聚合物
生物传感器
CMOS芯片
电气工程
化学
复合材料
物理化学
工程类
作者
Siew Ting Melissa Tan,Gi-Jun Lee,Ilaria Denti,Garrett LeCroy,Kalee Rozylowicz,Adam Marks,Sophie Griggs,Iain McCulloch,Alexander Giovannitti,Alberto Salleo
标识
DOI:10.1002/adma.202202359
摘要
Organic electrochemical transistors (OECTs) have shown promise as transducers and amplifiers of minute electronic potentials due to their large transconductances. Tuning the OECT threshold voltage is important to achieve low-powered devices with amplification properties within the desired operational voltage range. However, traditional design approaches have struggled to decouple channel and materials properties from threshold voltage, thereby compromising on several other OECT performance metrics, such as electrochemical stability, transconductance, and dynamic range. In this work, simple solution-processing methods are utilized to chemically dope polymer gate electrodes, thereby controlling their work function, which in turn tunes the operation voltage range of the OECTs without perturbing their channel properties. Chemical doping of initially air-sensitive polymer electrodes further improves their electrochemical stability in ambient conditions. Thus, OECTs that are simultaneously low-powered and electrochemically resistant to oxidative side reactions under ambient conditions are demonstrated. This approach shows that threshold voltage, which is once interwoven with other OECT properties, can in fact be an independent design parameter, expanding the design space of OECTs.
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