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首页> 外文期刊>Nano letters >Electrical Biosensing at Physiological Ionic Strength Using Graphene Field-Effect Transistor in Femtoliter Microdroplet
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Electrical Biosensing at Physiological Ionic Strength Using Graphene Field-Effect Transistor in Femtoliter Microdroplet

机译:在Femtoliter Microdroplet中使用石墨烯场效应晶体管的生理离子强度的电气生物沉积

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摘要

Graphene has strong potential for electrical biosensing owing to its two-dimensional nature and high carrier mobility which transduce the direct contact of a detection target with a graphene channel to a large conductivity change in a graphene field-effect transistor (GFET). However, the measurable range from the graphene surface is highly restricted by Debye screening, whose characteristic length is less than 1 nm at physiological ionic strength. Here, we demonstrated electrical biosensing utilizing the enzymatic products of the target. We achieved quantitative measurements of a target based on the site-binding model and real-time measurement of the enzyme kinetics in femtoliter microdroplets. The combination of a G-FET and microfluidics, named a "lab-on-a-graphene-FET", detected the enzyme urease with high sensitivity in the zeptomole range in 100 mM sodium phosphate buffer. Also, the lab-on-a-graphene-FET detected the gastric cancer pathogen Helicobacter pylori captured at a distance greater than the Debye screening length from the G-FET.
机译:由于其二维性质和高载流子迁移率,石墨烯具有强大的电气生物沉积电位,其通过将检测目标与石墨烯通道的直接接触转导到石墨烯场效应晶体管(GFET)的大电导率变化的直接接触。然而,来自石墨烯表面的可测量范围是通过去脱模的脱娇的筛选而受到高度限制,其特征长度在生理离子强度下小于1nm。在这里,我们展示了利用靶标的酶促产物的电生物溶解。我们基于位点结合模型和Femtoliter微型电池中的酶动力学的实时测量来实现靶的定量测量。 G-FET和微流体的组合命名为“实验室 - 一种石墨烯-FET”,检测到100mM磷酸钠缓冲液中Zeptomole范围内具有高灵敏度的酶脲酶。此外,实验室 - α-石墨烯-FET检测到捕获的胃癌病原体幽灵杆菌,距离G-FET的距离大于德细筛选长度。

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