Jang Yeonsik, Jeong Hyunhak, Kim Dongku, Hwang Wang-Taek, Kim Jun-Woo, Jeong Inho, Song Hyunwook, Yoon Jiyoung, Yi Gyu-Chul, Jeong Heejun, Lee Takhee
Department of Physics and Astronomy, and Institute of Applied Physics, Seoul National University, Seoul 08826, Korea.
Nanotechnology. 2016 Apr 8;27(14):145301. doi: 10.1088/0957-4484/27/14/145301. Epub 2016 Feb 23.
We investigated the electrical characteristics of molecular electronic devices consisting of benzenedithiolate self-assembled monolayers and a graphene electrode. We used the multilayer graphene electrode as a protective interlayer to prevent filamentary path formation during the evaporation of the top electrode in the vertical metal-molecule-metal junction structure. The devices were fabricated both on a rigid SiO2/Si substrate and on a flexible poly(ethylene terephthalate) substrate. Using these devices, we investigated the basic charge transport characteristics of benzenedithiolate molecular junctions in length- and temperature-dependent analyses. Additionally, the reliability of the electrical characteristics of the flexible benzenedithiolate molecular devices was investigated under various mechanical bending conditions, such as different bending radii, repeated bending cycles, and a retention test under bending. We also observed the inelastic electron tunneling spectra of our fabricated graphene-electrode molecular devices. Based on the results, we verified that benzenedithiolate molecules participate in charge transport, serving as an active tunneling barrier in solid-state graphene-electrode molecular junctions.
我们研究了由苯二硫醇盐自组装单分子层和石墨烯电极组成的分子电子器件的电学特性。我们使用多层石墨烯电极作为保护中间层,以防止在垂直金属-分子-金属结结构中顶部电极蒸发期间形成丝状路径。这些器件分别在刚性SiO2/Si衬底和柔性聚对苯二甲酸乙二酯衬底上制备。利用这些器件,我们在长度和温度相关分析中研究了苯二硫醇盐分子结的基本电荷传输特性。此外,还研究了柔性苯二硫醇盐分子器件在不同弯曲半径、重复弯曲循环和弯曲保持测试等各种机械弯曲条件下电学特性的可靠性。我们还观察了我们制备的石墨烯电极分子器件的非弹性电子隧穿光谱。基于这些结果,我们证实苯二硫醇盐分子参与电荷传输,在固态石墨烯电极分子结中作为有源隧穿势垒。