Theoretical Model of Nanoparticle Detection Mechanism in Microchannel with Gating Probe Electrodes

K. Doi, M. Ueda, S. Kawano
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引用次数: 4

Abstract

In recent years, high-speed molecular detection technologies have attracted much attention and some important experimental results in this area have been reported. Tsutsui et al. successfully obtained electric signals of Au nanoparticles flowing in microchannels with gating nanoelectrodes [Tsutsui et al., Nano Lett., Vol. 9, No. 4 (2009), pp. 1659-1662]. The result of their study is expected to contribute to the fundamental development of high-speed DNA sequencers for the next generation. However, details of electro-fluid dynamics phenomena remain to be clarified. In the present study, a theoretical model is developed to explain the mechanism of the detection of charged metallic particles using gating nanoelectrodes, focusing on electric transient responses observed experimentally. The behavior of charges in the experimental system is discussed theoretically, and the resistance, capacitance, and time constant produced by the interaction between a metallic nanoparticle and the gating electrode are quantitatively evaluated. The theoretical result is in reasonable agreement with the experimental data obtained using Au nanoparticles. Thus, the present method is applicable to the study of more complex systems in which molecular fluid dynamics affects electric response.
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门控探针电极微通道中纳米颗粒检测机理的理论模型
近年来,高速分子检测技术备受关注,并在该领域取得了一些重要的实验成果。Tsutsui等人利用门控纳米电极成功地获得了金纳米颗粒在微通道中流动的电信号[Tsutsui et al., Nano Lett]。, Vol. 9, No. 4 (2009), pp. 1659-1662。他们的研究结果有望为下一代高速DNA测序仪的基础开发做出贡献。然而,电流体动力学现象的细节仍有待澄清。在本研究中,建立了一个理论模型来解释用门控纳米电极检测带电金属粒子的机制,重点是实验观察到的电瞬态响应。从理论上讨论了实验系统中电荷的行为,并定量评价了金属纳米粒子与门控电极相互作用产生的电阻、电容和时间常数。理论结果与实验结果基本吻合。因此,本方法适用于分子流体动力学影响电响应的更复杂系统的研究。
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