Department of Applied Science and Technology (DISAT), Politecnico di Torino, Corso Duca degli Abruzzi 24, 10129 Torino, Italy.
CNR-IMEM, Parco Area delle Scienze, 37a, 43124 Parma, Italy.
Sensors (Basel). 2022 Jan 26;22(3):969. doi: 10.3390/s22030969.
In biosensing applications, the exploitation of organic transistors gated via a liquid electrolyte has increased in the last years thanks to their enormous advantages in terms of sensitivity, low cost and power consumption. However, a practical aspect limiting the use of these devices in real applications is the contamination of the organic material, which represents an obstacle for the realization of a portable sensing platform based on electrolyte-gated organic transistors (EGOTs). In this work, a novel contamination-free microfluidic platform allowing differential measurements is presented and validated through finite element modeling simulations. The proposed design allows the exposure of the sensing electrode without contaminating the EGOT device during the whole sensing tests protocol. Furthermore, the platform is exploited to perform the detection of bovine serum albumin (BSA) as a validation test for the introduced differential protocol, demonstrating the capability to detect BSA at 1 pM concentration. The lack of contamination and the differential measurements provided in this work can be the first steps towards the realization of a reliable EGOT-based portable sensing instrument.
在生物传感应用中,近年来通过液体电解质门控的有机晶体管的应用得到了极大的发展,因为它们在灵敏度、低成本和低功耗方面具有巨大的优势。然而,在实际应用中限制这些器件使用的一个实际方面是有机材料的污染,这是基于电解质门控有机晶体管 (EGOT) 的便携式传感平台实现的一个障碍。在这项工作中,提出了一种新颖的无污染微流控平台,允许进行差分测量,并通过有限元建模模拟进行了验证。所提出的设计允许在不污染 EGOT 器件的情况下暴露传感电极,同时在整个传感测试协议期间都能进行。此外,该平台还用于检测牛血清白蛋白 (BSA),作为引入的差分协议的验证测试,证明了能够检测到 1 pM 浓度的 BSA。本工作中缺乏污染和差分测量,可以作为实现可靠的基于 EGOT 的便携式传感仪器的第一步。