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基于亲和力的单壁碳纳米管传感器在微流控通道中无酶的糖感测

Enzyme-free sugar sensing in microfluidic channels with an affinity-based single-wall carbon nanotube sensor.

机构信息

Max-Planck-Institute for Solid State Research, Heisenbergstrasse 1, D-70569, Stuttgart, Germany.

出版信息

Anal Chem. 2010 Jul 15;82(14):6090-7. doi: 10.1021/ac1007656.

Abstract

We present a novel nonenzymatic carbon nanotube sensor integrated in a microfluidic channel for the detection of sugars. The sensor is assembled as a liquid-gated field-effect transistor, with the transistor channel composed of 1 to 10 nanotubes, which are controllably functionalized with boronic acid receptors. The devices show sensitivity to glucose in a concentration range of 5 to 30 mM. Furthermore, by controlling the type of nanotube-receptor coupling (as covalent or noncovalent) and by deploying a sensitive impedance-based detection technique, we corroborate in detail the transduction mechanism of our affinity-based sensor. In the case of covalent coupling, charge carrier scattering along the nanotubes is the dominant mechanism. While in the noncovalent case, surface charge effects dominate. The identification of the mechanism along with the tunability of the chemical coupling and the cost-effective integration in microchannels constitute a solid basis for the entry of nanotube-based sensors in lab-on-a-chip applications.

摘要

我们提出了一种新型的非酶碳纳米管传感器,集成在微流道中用于检测糖。该传感器被组装成液体门控场效应晶体管,晶体管通道由 1 到 10 根纳米管组成,这些纳米管可以通过硼酸受体进行可控功能化。该器件对 5 至 30 mM 浓度范围内的葡萄糖具有敏感性。此外,通过控制纳米管-受体偶联的类型(共价或非共价)并采用灵敏的基于阻抗的检测技术,我们详细证实了基于亲和力的传感器的转导机制。在共价偶联的情况下,载流子沿着纳米管的散射是主要机制。而非共价情况下,表面电荷效应占主导地位。这种机制的识别以及化学偶联的可调性和在微通道中的成本效益集成,为基于纳米管的传感器在芯片实验室应用中的应用奠定了坚实的基础。

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