论文标题
单分子自旋跨界纳米摄体设备中的多级电阻切换和增强的自旋过渡温度
Multilevel Resistance Switching and Enhanced Spin Transition Temperature in Single Molecule Spin Crossover Nanogap Devices
论文作者
论文摘要
自旋跨界(SCO)分子是有希望的双稳定磁开关,并在分子旋转中应用。然而,当单个SCO分子限制在两个金属电极之间时,对单个SCO分子的开关效应知之甚少。在这里,我们检查了[Fe(iii)(etosalpet)(NCS)] SCO分子的开关特性,该分子是专门针对表面沉积量身定制的,并且仅在纳米纳语P中仅与一个金电极结合。温度依赖性的电导率测量在含有电迁移金断裂连接的SCO分子上显示,在200 k以下的两个电阻状态下,电压独立的电力样状态切换。过渡温度与同一材料的散装膜中发生的83 K的过渡温度大不相同。这表明批量合作的SCO现象不再用于单个分子,并且表面相互作用大大增加了SCO现象的温度。这项工作的另一个关键发现是一些设备显示在多个电阻级别之间切换。我们提出,在这种情况下,纳米含量中存在两个SCO分子,并且都参与电子传输和开关。
Spin crossover (SCO) molecules are promising bi-stable magnetic switches with applications in molecular spintronics. However, little is known about the switching effects of a single SCO molecule when it is confined between two metal electrodes. Here we examine the switching properties of a [Fe(III)(EtOSalPet )(NCS)] SCO molecule that is specifically tailored for surface deposition and binding to only one gold electrode in a nanogap device. Temperature dependent conductivity measurements on SCO molecule containing electromigrated gold break junctions show voltage independent telegraphic-like switching between two resistance states at temperature below 200 K. The transition temperature is very different from the transition temperature of 83 K that occurs in a bulk film of the same material. This indicates that the bulk, co-operative SCO phenomenon is no longer preserved for a single molecule and that the surface interaction drastically increases the temperature of the SCO phenomenon. Another key finding of this work is that some devices show switching between multiple resistance levels. We propose that in this case, two SCO molecules are present within the nanogap with both participating in the electronic transport and switching.