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一种用于通过单个锥形纳米通道进行纳米颗粒传感的电容脉冲模型。

A capacitive-pulse model for nanoparticle sensing by single conical nanochannels.

作者信息

Sheng Qian, Wang Xinwei, Xie Yanbo, Wang Ceming, Xue Jianming

机构信息

State Key Laboratory of Nuclear Physics and Technology, School of Physics, Peking University, Beijing 100871, People's Republic of China.

School of Advanced Materials, Peking University Shenzhen Graduate School, Shenzhen 518055, People's Republic of China.

出版信息

Nanoscale. 2016 Jan 21;8(3):1565-71. doi: 10.1039/c5nr07596c.

Abstract

Nanochannel based devices have been widely used for single-molecule detection. The detection usually relies on the resistive-pulse model, where the change of the monitored current depends on the physical volumetric blocking of the nanochannel by the analyte. However, this mechanism requires that the nanochannel diameter should not be much larger than the analyte size, because, otherwise, the resultant current change would be too small to detect, and therefore poses particular challenges for the fabrication of nanochannels. To circumvent this issue, in this report, we propose a different mechanism of capacitive-pulse model, where the transport signals can be significantly magnified by the capacitive effect of the nanochannel. We experimentally demonstrate that current pulses with an averaged peak height of 0.87 nA can be achieved for transporting 60 nm nanoparticles through a conical nanochannel device, whereas the traditional resistive-pulse model only predicts one-order-of-magnitude lowered value. With further comprehensive simulation, the dependence of this effect on the nanochannel geometry as well as the surface charge density for both the nanochannel and the analyte is predicted, which would provide important guidance for better designing of the nanochannel-based sensors.

摘要

基于纳米通道的器件已被广泛用于单分子检测。该检测通常依赖于电阻脉冲模型,其中监测电流的变化取决于分析物对纳米通道的物理体积阻塞。然而,这种机制要求纳米通道的直径不应比分析物的尺寸大太多,因为否则,产生的电流变化会太小而无法检测到,因此给纳米通道的制造带来了特殊挑战。为了规避这个问题,在本报告中,我们提出了一种不同的电容脉冲模型机制,其中传输信号可以通过纳米通道的电容效应得到显著放大。我们通过实验证明,对于通过锥形纳米通道器件传输60纳米的纳米颗粒,可以实现平均峰值高度为0.87纳安的电流脉冲,而传统的电阻脉冲模型仅预测到一个数量级更低的值。通过进一步的综合模拟,预测了这种效应对于纳米通道几何形状以及纳米通道和分析物的表面电荷密度的依赖性,这将为更好地设计基于纳米通道的传感器提供重要指导。

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