Wang Xiaochen, Meng Xiang, Zhu Yangzhi, Ling Haonan, Chen Yihang, Li Zhikang, Hartel Martin C, Dokmeci Mehmet R, Zhang Shiming, Khademhosseini Ali
California NanoSystems Institute, University of California-Los Angeles, Los Angeles, USA; College of Mechanical Engineering, Zhejiang University of Technology, Hangzhou, 310000, China.
California NanoSystems Institute, University of California-Los Angeles, Los Angeles, USA.
IEEE Electron Device Lett. 2021 Jan;42(1):46-49. doi: 10.1109/led.2020.3042310. Epub 2020 Dec 3.
Wearable and implantable pressure sensors are in great demand for personalized health monitoring. Pressure sensors with low operation voltage and low power-consumption are desired for energy-saving devices. Organic iontronic devices, such as organic electrochemical transistors (OECTs), have demonstrated great potential for low power-consumption bioelectronic sensing applications. The ability to conduct both electrons and ions, in addition to their low-operation voltage has enabled the widespread use of OECTs in different biosensing fields. However, despite these merits, OECTs have not been demonstrated for pressure sensing applications. This is because most OECTs are gated with aqueous electrolyte, which fails to respond to external pressure. Here, a low power-consumption iontronic pressure sensor is presented based on an OECT, in which an ionic hydrogel is used as a solid gating medium. The resultant iontronic device operated at voltages less than 1 V, with a power-consumption between ~ 10-10 W, while maintaining a tunable sensitivity between 1 ~ 10 kPa. This work places OECTs on the frontline for developing low power-consumption iontronic pressure sensors and for biosensing applications.
可穿戴和植入式压力传感器在个性化健康监测方面有巨大需求。节能设备需要低工作电压和低功耗的压力传感器。有机离子电子器件,如有机电化学晶体管(OECT),在低功耗生物电子传感应用中已展现出巨大潜力。除了低工作电压外,其传导电子和离子的能力使得OECT在不同生物传感领域得到广泛应用。然而,尽管有这些优点,OECT尚未用于压力传感应用。这是因为大多数OECT使用水性电解质作为栅极,无法对外界压力作出响应。在此,基于OECT提出了一种低功耗离子电子压力传感器,其中离子水凝胶用作固体栅极介质。所得离子电子器件在小于1 V的电压下工作,功耗约为10^-10 W,同时保持1~10 kPa之间的可调灵敏度。这项工作使OECT在开发低功耗离子电子压力传感器和生物传感应用方面处于前沿地位。