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The fabrication and characterization of adjustable nanogaps between gold electrodes on chip for electrical measurement of single molecules

机译:芯片上金电极之间可调节纳米间隙的制备和表征,用于单分子电测量

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摘要

This work reports on a new method to fabricate mechanically controllable break junctions (MCBJ) with finely adjustable nanogaps between two gold electrodes on solid state chips for characterizing electron transport properties of single molecules. The simple, low cost, robust and reproducible fabrication method combines conventional photolithography, chemical etching and electrodeposition to produce suspended electrodes separated with nanogaps. The MCBJ devices fabricated by the method can undergo many cycles in which the nanogap width can be precisely and repeatedly varied from zero to several nanometers. The method improves the success rate of the MCBJ experiments. Using these devices the electron transport properties of a typical molecular system, commercially available benzene-1,4-dithiol (BDT), have been studied. The I-V and G-V characteristic curves of BDT and the conductance value for a single BDT molecule established the excellent device suitability for molecular electronics research.
机译:这项工作报告了一种新方法,该方法可在固态芯片上的两个金电极之间制造具有可微调的纳米间隙的机械可控制的断裂结(MCBJ),以表征单个分子的电子传输特性。简单,低成本,耐用且可复制的制造方法结合了传统的光刻技术,化学蚀刻和电沉积技术,可生产出被纳米间隙隔开的悬浮电极。通过该方法制造的MCBJ器件可以经历许多循环,其中纳米间隙宽度可以精确且重复地从零变化到几纳米。该方法提高了MCBJ实验的成功率。使用这些装置,已经研究了典型分子系统,可商购的苯-1,4-二硫醇(BDT)的电子传输性能。 BDT的I-V和G-V特性曲线以及单个BDT分子的电导值为分子电子学研究建立了极好的器件适用性。

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