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通过基于WSe的场效应晶体管中受体的有序取向实现精确且快速的分析物检测。

Precise and Prompt Analyte Detection via Ordered Orientation of Receptor in WSe-Based Field Effect Transistor.

作者信息

Zafar Muhammad Shahzad, Dastgeer Ghulam, Kalam Abul, Al-Sehemi Abdullah G, Imran Muhammad, Kim Yong Ho, Chae Heeyeop

机构信息

School of Chemical Engineering, Sungkyunkwan University, Suwon 16419, Korea.

SKKU Advanced Institute of Nanotechnology (SAINT), Sungkyunkwan University, Suwon 16419, Korea.

出版信息

Nanomaterials (Basel). 2022 Apr 11;12(8):1305. doi: 10.3390/nano12081305.

Abstract

Field-effect transistors (FET) composed of transition metal dichalcogenide (TMDC) materials have gained huge importance as biosensors due to their added advantage of high sensitivity and moderate bandgap. However, the true potential of these biosensors highly depends upon the quality of TMDC material, as well as the orientation of receptors on their surfaces. The uncontrolled orientation of receptors and screening issues due to crossing the Debye screening length while functionalizing TMDC materials is a big challenge in this field. To address these issues, we introduce a combination of high-quality monolayer WSe with our designed Pyrene-based receptor moiety for its ordered orientation onto the WSe FET biosensor. A monolayer WSe sheet is utilized to fabricate an ideal FET for biosensing applications, which is characterized via Raman spectroscopy, atomic force microscopy, and electrical prob station. Our construct can sensitively detect our target protein (streptavidin) with 1 pM limit of detection within a short span of 2 min, through a one-step functionalizing process. In addition to having this ultra-fast response and high sensitivity, our biosensor can be a reliable platform for point-of-care-based diagnosis.

摘要

由过渡金属二硫属化物(TMDC)材料组成的场效应晶体管(FET)作为生物传感器已变得极为重要,这归因于其具有高灵敏度和适度带隙的额外优势。然而,这些生物传感器的真正潜力在很大程度上取决于TMDC材料的质量以及其表面受体的取向。在对TMDC材料进行功能化时,受体的无控制取向以及由于跨越德拜屏蔽长度而产生的屏蔽问题是该领域的一大挑战。为了解决这些问题,我们将高质量的单层WSe与我们设计的基于芘的受体部分相结合,使其在WSe FET生物传感器上有序取向。利用单层WSe片材制造用于生物传感应用的理想FET,并通过拉曼光谱、原子力显微镜和电探针台对其进行表征。我们构建的生物传感器能够通过一步功能化过程,在短短2分钟内以1 pM的检测限灵敏地检测我们的目标蛋白(链霉亲和素)。除了具有这种超快速响应和高灵敏度外,我们的生物传感器还可以成为基于即时检测诊断的可靠平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f4fb/9028725/1c271af099dd/nanomaterials-12-01305-g001.jpg

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