论文标题
使用范德华单层铁电极控制分子轨道排序
Control of molecular orbital ordering using a van der Waals monolayer ferroelectric
论文作者
论文摘要
二维(2D)铁电材料为量子状态电气控制提供了有希望的平台。特别是由于其2D性质,它们适合通过接近效应影响沉积分子的量子状态。在这里,我们报告了可吸附在单层铁电材料SNTE上的邻苯丙氨酸分子中的电气控制分子态。特别是,我们证明了SNTE中的菌株和铁电顺序在吸附的邻苯二甲胺分子中两种不同的轨道顺序之间产生了过渡。通过使用扫描隧道显微镜(STM)控制铁电域的极化,我们成功证明了轨道阶可以被电操作。我们的结果表明,2D系统中的铁弹性耦合如何允许控制分子态,从而为铁电转换分子轨道排序的起点提供了一个起点,最终是分子磁化的电气控制。
Two-dimensional (2D) ferroelectric materials provide a promising platform for the electrical control of quantum states. In particular, due to their 2D nature, they are suitable for influencing the quantum states of deposited molecules via the proximity effect. Here, we report electrically controllable molecular states in phthalocyanine molecules adsorbed on monolayer ferroelectric material SnTe. In particular, we demonstrate that the strain and ferroelectric order in SnTe creates a transition between two distinct orbital orders in the adsorbed phthalocyanine molecules. By controlling the polarization of the ferroelectric domain using scanning tunneling microscopy (STM), we have successfully demonstrated that orbital order can be manipulated electrically. Our results show how ferroelastic coupling in 2D systems allows control of molecular states, providing a starting point for ferroelectrically switchable molecular orbital ordering and ultimately, electrical control of molecular magnetism.