Bio-functionalization of ZnO water gated thin-film transistors

Mandeep Singh, M. Y. Mulla, K. Manoli, M. Magliulo, N. Ditaranto, N. Cioffi, G. Palazzo, L. Torsi, M. V. Santacroce, C. Franco, G. Scamarcio
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引用次数: 13

Abstract

ZnO based thin-film transistors are very promising to be used as electronic biosensors due to their very good electronic performances and inherent biocompatibility. Herein, we report on the use of a solution processed ZnO water gated thin-film transistor (WG-TFT) whose channel surface is bio-functionalized with a streptavidin protein layer. This is a very critical process as it endows the device with bio-recognition capabilities. The bio-functionalization process is carried out by attaching an organosilane self-assembled monolayer to the ZnO surface that is coupled to the biomolecule afterwards. A systematic X-Ray Photoelectron Spectroscopy surface characterization allows assessing that the immobilization of the streptavidin proteins on the ZnO surface has been successfully accomplished. Upon deposition of the protein layer, a decrease in the ZnO WG-TFT source-drain current is observed. Such an occurrence is ascribable to the electrostatic effect of the negatively charged protein molecules lying on the ZnO semiconductor layer in contact with the transistor 2D-channel. The deposited streptavidin layer can be prospectively further used for the immobilization and orientation of biotinylated recognition elements in view of the use of ZnO TFTs as electronic biosensors for real-life applications.
ZnO水门控薄膜晶体管的生物功能化
ZnO薄膜晶体管具有良好的电子性能和固有的生物相容性,在电子生物传感器领域具有广阔的应用前景。本文报道了一种溶液处理的ZnO水门控薄膜晶体管(WG-TFT),其通道表面具有链亲和素蛋白层的生物功能化。这是一个非常关键的过程,因为它赋予了设备生物识别能力。生物功能化过程是通过将有机硅烷自组装单层附着在ZnO表面,然后与生物分子偶联来实现的。系统的x射线光电子能谱表面表征可以评估链霉亲和素蛋白在ZnO表面的固定化已经成功完成。在蛋白质层沉积后,观察到ZnO WG-TFT源漏电流的减小。这种现象可归因于与晶体管2d通道接触的ZnO半导体层上带负电荷的蛋白质分子的静电效应。鉴于ZnO tft作为电子生物传感器在现实生活中的应用,所沉积的链霉亲和素层可以进一步用于生物素化识别元件的固定和定向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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