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Single-Walled Carbon Nanotubes Probed with Insulator-Based Dielectrophoresis

机译:用绝缘体的介电电泳探测单壁碳纳米管

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Single-walled carbon nanotubes (SWNTs) offer unique electrical and optical properties. Common synthesis processes yield SWNTs with large length polydispersity (several tens of nanometers up to centimeters) and heterogeneous electrical and optical properties. Applications often require suitable selection and purification. Dielectrophoresis is one manipulation method for separating SWNTs based on dielectric properties and geometry. Here, we present a study of surfactant and single-stranded DNA-wrapped SWNTs suspended in aqueous solutions manipulated by insulator based dielectrophoresis (iDEP). This method allows us to manipulate SWNTs with the help of arrays of insulating posts in a microfluidic device around which electric field gradients are created by the application of an electric potential to the extremities of the device. Semiconducting SWNTs were imaged during dielectrophoretic manipulation with fluorescence microscopy making use of their fluorescence emission in the near IR. We demonstrate SWNT trapping at low-frequency alternating current (AC) electric fields with applied potentials not exceeding 1000 V. Interestingly, suspended SWNts showed both positive and negative dielectrophoresis, which we attribute to their potential and the suspension properties. Such behavior agrees with common theoretical models for nanoparticle dielectrophoresis. We further show that the measured potentials and suspension properties are in excellent agreement with a numerical model predicting the trapping locations in the iDEP device. This study is fundamental for the future application of low-frequency AC iDEP for technological applications of SWNTs.
机译:单壁碳纳米管(SWNT)提供独特的电气和光学性能。常见的合成方法产生具有大长度多分散度的SWNT(几十纳米高达厘米)和异质电气和光学性质。应用程序通常需要合适的选择和纯化。介电电泳是一种用于将SWNT分离基于介电性质和几何形状的一种操纵方法。在此,我们介绍了通过基于绝缘体的介电电泳(IDEP)的含水溶液中悬浮在悬浮的水溶液中的表面活性剂和单链DNA包裹的SWNT。该方法允许我们在微流体装置中的绝缘柱阵列的帮助下操纵SWNT,通过将电势施加到装置的四肢来产生电场梯度。在荧光显微镜下在介电测量期间在介电微孔操作期间对半导体SWNT进行成像,利用近IR的荧光发射。我们证明了在低频交流(AC)电场的SWNT俘获,施加电位不超过1000V。有趣的是,悬浮的SWNT显示出正极和负电泳,我们将其归因于它们的潜力和悬浮特性。这种行为与纳米粒子介电电泳的常见理论模型一致。我们进一步表明,测量的电位和悬架特性与预测IDEP设备中的捕获位置的数值模型非常一致。本研究是未来应用低频AC IDEP在瑞斯科技术应用的基础上的基础。

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