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硅基垂直纳米间隙器件上 DNA 包覆金纳米粒子的介电泳捕获。

Dielectrophoretic trapping of DNA-coated gold nanoparticles on silicon based vertical nanogap devices.

机构信息

Walter Schottky Institut, Technische Universität München, Am Coulombwall 3, 85748 Garching, Germany.

出版信息

Phys Chem Chem Phys. 2011 Jun 7;13(21):9973-7. doi: 10.1039/c0cp02718a. Epub 2011 Mar 8.

Abstract

We report on the successful dielectrophoretic trapping and electrical characterization of DNA-coated gold nanoparticles on vertical nanogap devices (VNDs). The nanogap devices with an electrode distance of 13 nm were fabricated from Silicon-on-Insulator (SOI) material using a combination of anisotropic reactive ion etching (RIE), selective wet chemical etching and metal thin-film deposition. Au nanoparticles (diameter 40 nm) coated with a monolayer of dithiolated 8 base pairs double stranded DNA were dielectrophoretically trapped into the nanogap from electrolyte buffer solution at MHz frequencies as verified by scanning and transmission electron microscopy (SEM/TEM) analysis. First electrical transport measurements through the formed DNA-Au-DNA junctions partially revealed an approximately linear current-voltage characteristic with resistance in the range of 2-4 GΩ when measured in solution. Our findings point to the importance of strong covalent bonding to the electrodes in order to observe DNA conductance, both in solution and in the dry state. We propose our setup for novel applications in biosensing, addressing the direct interaction of biomolecular species with DNA in aqueous electrolyte media.

摘要

我们报告了在垂直纳米间隙器件(VND)上成功地通过介电泳捕获和电学特性分析 DNA 包裹的金纳米粒子。使用各向异性反应离子刻蚀(RIE)、选择性湿法刻蚀和金属薄膜沉积相结合的方法,从绝缘体上硅(SOI)材料制备出电极距离为 13nm 的纳米间隙器件。用单层二硫代 8 碱基对双链 DNA 修饰的 Au 纳米粒子(直径 40nm)在 MHz 频率下通过电解质缓冲溶液被介电泳捕获到纳米间隙中,这通过扫描和透射电子显微镜(SEM/TEM)分析得到了验证。通过形成的 DNA-Au-DNA 结进行的初步电输运测量部分揭示了一个大约线性的电流-电压特性,当在溶液中测量时,电阻在 2-4GΩ 范围内。我们的发现表明,为了在溶液中和干燥状态下观察 DNA 的电导率,与电极之间的强共价键合非常重要。我们提出了我们的设置,用于在生物传感中的新应用,解决在水溶液电解质介质中生物分子与 DNA 的直接相互作用。

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