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Electrostatic gating in carbon nanotube aptasensors

机译:静电控制碳纳米管

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摘要

Synthetic DNA aptamer receptors could boost the prospects of carbon nanotube (CNT)-based electronic biosensors if signal transduction can be understood and engineered. Here, we report CNT aptasensors for potassium ions that clearly demonstrate aptamer-induced electrostatic gating of electronic conduction. The CNT network devices were fabricated on flexible substrates via a facile solution processing route and non-covalently functionalised with potassium binding aptamers. Monotonic increases in CNT conduction were observed in response to increasing potassium ion concentration, with a level of detection as low as 10 picomolar. The signal was shown to arise from a specific aptamer-target interaction that stabilises a G-quadruplex structure, bringing high negative charge density near the CNT channel. Electrostatic gating is established via the specificity and the sign of the current response, and by observing its suppression when higher ionic strength decreases the Debye length at the CNT-water interface. Sensitivity towards potassium and selectivity against other ions is demonstrated in both resistive mode and real time transistor mode measurements. The effective device architecture presented, along with the identification of clear response signatures, should inform the development of new electronic biosensors using the growing library of aptamer receptors.
机译:合成DNA适体受体可能提振碳纳米管(CNT)的前景电子生物传感器信号转导是否可以被理解和改造。aptasensors显然的钾离子演示aptamer-induced静电控制电子传导。制作在柔性基板通过吗加工路线和温和的解决方案非共价functionalised与钾寡核苷酸适配子有约束力。传导是观察到的响应钾离子浓度增加,水平的检测低至10 picomolar。信号显示来自一个特定的aptamer-target交互,企稳G-quadruplex结构,使高负的问通道附近的电荷密度。静电控制通过建立特异性和电流响应的符号,并通过观察其抑制时更高离子强度减少的德拜长度CNT-water接口。钾和对其他离子选择性在电阻模式和实时晶体管的测量方式。设备架构,以及标识明确的响应特征,应该通知新的电子的发展生物传感器使用不断增长的适配子库受体。

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