Zhu Chengbo, Wang Xiaolin
Spintronic and Electronic Materials Group, Institute for Superconducting and Electronic Materials, Australian Institute for Innovative Materials, University of Wollongong, North Wollongong, New South Wales 2500, Australia.
J Phys Condens Matter. 2015 Sep 23;27(37):375301. doi: 10.1088/0953-8984/27/37/375301. Epub 2015 Sep 1.
Theoretical predictions play an important role in finding potential applications in molecular electronics. Fullerenes have a number of potential applications, and the charge flow from a single C60 molecule to another becomes more versatile and more interesting after doping. Here, we report the conductance of two H2O@C60 molecules in series order and how the number of encapsulated water molecules influences the transport properties of the junction. Encapsulating an H2O molecule into one of the C60 cages increases the conductance of the dimer. Negative differential resistance is found in the dimer systems, and its peak-to-valley current ratio depends on the number of encapsulated H2O molecules. The conductance of the C60 dimer and the H2O@C60 dimer is two orders of magnitude smaller than that of the C60 monomer. Furthermore, we demonstrate that the conductance of the molecular junctions based on the H2O@C60 dimer can be tuned by moving the encapsulated H2O molecules. The conductance is H2O-position dependent. Our findings indicate that H2O@C60 can be used as a building block in C60-based molecular electronic devices and sensors.
理论预测在分子电子学中寻找潜在应用方面发挥着重要作用。富勒烯有许多潜在应用,并且在掺杂后,从单个C60分子到另一个分子的电荷流动变得更加多样和有趣。在此,我们报告了两个串联的H2O@C60分子的电导,以及封装的水分子数量如何影响结的传输特性。将一个H2O分子封装到一个C60笼中会增加二聚体的电导。在二聚体系统中发现了负微分电阻,其峰谷电流比取决于封装的H2O分子数量。C60二聚体和H2O@C60二聚体的电导比C60单体的电导小两个数量级。此外,我们证明基于H2O@C60二聚体的分子结的电导可以通过移动封装的H2O分子来调节。电导取决于H2O的位置。我们的研究结果表明,H2O@C60可以用作基于C60的分子电子器件和传感器的构建块。