Department of Chemical Engineering, Stanford University, Stanford, California 94305, United States.
Optoelectronics Group, Cavendish Laboratory, University of Cambridge, JJ Thomson Avenue, Cambridge CB3 0HE, United Kingdom.
ACS Appl Mater Interfaces. 2020 Sep 9;12(36):40581-40589. doi: 10.1021/acsami.0c10201. Epub 2020 Aug 30.
High levels of performance and stability have been demonstrated for conjugated polymer thin-film transistors in recent years, making them promising materials for flexible electronic circuits and displays. For sensing applications, however, most research efforts have been focusing on electrochemical sensing devices. Here we demonstrate a highly stable biosensing platform using polymer transistors based on the dual-gate mechanism. In this architecture a sensing signal is transduced and amplified by the capacitive coupling between a low- bottom dielectric and a high- ionic elastomer top dielectric that is in contact with an analyte solution. The new design exhibits a high signal amplification, high stability under bias stress in various aqueous environments, and low signal drift. Our platform, furthermore, while responding expectedly to charged analytes such as the protein bovine serum albumin, is insensitive to changes of salt concentration of the analyte solution. These features make this platform a potentially suitable tool for a variety of biosensing applications.
近年来,共轭聚合物薄膜晶体管在性能和稳定性方面表现出色,有望成为柔性电子电路和显示器的理想材料。然而,对于传感应用,大多数研究工作都集中在电化学传感设备上。在这里,我们展示了一种基于双栅极机制的高度稳定的生物传感平台。在这种结构中,通过低底介电常数和与分析物溶液接触的高离子弹性体顶介电常数之间的电容耦合,将传感信号进行转换和放大。新设计表现出高信号放大、在各种水基环境下偏置应力下的高稳定性以及低信号漂移。此外,我们的平台在对带电分析物(如蛋白质牛血清白蛋白)做出预期响应的同时,对分析物溶液盐浓度的变化不敏感。这些特性使该平台成为各种生物传感应用的潜在合适工具。