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电动力学纳米探针的介电泳纳米粒子捕获。

Dielectrophoretic trapping of nanoparticles with an electrokinetic nanoprobe.

机构信息

Department of Mechanical Engineering, University of Louisville, Louisville, KY, USA.

出版信息

Electrophoresis. 2013 Jul;34(13):1922-30. doi: 10.1002/elps.201300004. Epub 2013 Jun 11.

Abstract

A high aspect ratio 3D electrokinetic nanoprobe is used to trap polystyrene particles (200 nm), gold nanoshells (120 nm), and gold nanoparticles (mean diameter 35 nm) at low voltages (<1 V(rms)). The nanoprobe is fabricated using room temperature self-assembly methods, without the need for nanoresolution lithography. The nanoprobe (150-500 nm in diameter, 2-150 μm in length) is mounted on the end of a glass micropipette, enabling user-specified positioning. The nanoprobe is one electrode within a point-and-plate configuration, with an indium-tin oxide cover slip serving as the planar electrode. The 3D structure of the nanoprobe enhances dielectrophoretic capture; further, electro-hydrodynamic flow enhances trapping, increasing the effective trapping region. Numerical simulations show low heating (1 K), even in biological media of moderate conductivity (1 S/m).

摘要

高纵横比 3D 电动纳米探头用于在低电压(<1 V(rms))下捕获聚苯乙烯颗粒(200nm)、金纳米壳(120nm)和金纳米颗粒(平均直径 35nm)。该纳米探头采用室温自组装方法制造,无需纳米分辨率光刻技术。纳米探头(直径 150-500nm,长度 2-150μm)安装在玻璃微管的末端,可实现用户指定的定位。纳米探头是点极板配置中的一个电极,氧化铟锡覆盖片用作平面电极。纳米探头的 3D 结构增强了介电泳捕获;此外,电流体动力学流动增强了捕获,增加了有效捕获区域。数值模拟表明,即使在中等电导率(1S/m)的生物介质中,加热也很低(1K)。

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