材料科学
微接触印刷
单层
纳米技术
自组装单层膜
分子电子学
电极
薄膜
光刻胶
平版印刷术
导电体
沉积(地质)
分子
光电子学
图层(电子)
复合材料
化学
生物
沉积物
物理化学
古生物学
有机化学
作者
Yanni Jie,Dong Wang,Jianfeng Huang,Yongqiang Feng,Jun Yang,Jiawen Fang,Runfeng Chen
标识
DOI:10.1021/acsami.1c21079
摘要
Electronic transport through molecular-scale devices has been studied extensively for its extraordinary dimension superiority. Assembling such devices into large-scale functional circuits is crucial since the molecular tunnel junctions must be reliable, stable and reproducible during technological applications. In ideal circumstances, the device architecture should be designed such that the metal-molecule-metal (MMM) junctions can be analyzed by the more sensitive four point probe system. In this paper, we expound a delicate method to manufacture molecular junctions, which show excellent stability and reproducibility with high yields (>91 per cent). We form self-assembled monolayers (SAMs) on conductive Au thin film by microcontact printing and then generate robust covalently bound metal thin film electrodes on top of the SAMs by selective electroless deposition. Following MMM junction formation, a photoresist is coated and wells are opened on each feature by lithography. Then, Au thin film, as a permanent top electrode, is deposited into the photolithographically defined well. Conductivity analyzations were carried out on the 50 μm square junctions by the four point probe measurement, and the results showed reproducible tunneling I-V characteristics. This method reveals an approach not only offering a unique vehicle to investigate the electrical properties of molecule ensembles in MMMs, but also making a significant step toward MMM applications at the device level.
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