论文标题
在ESR-STM实验中优化尖端表面相互作用
Optimizing tip-surface interactions in ESR-STM experiments
论文作者
论文摘要
通过扫描隧道显微镜(ESR-STM)进行的电子旋转共振是一种最近开发的实验技术,由于其潜力通过亚原子分辨率执行单旋转的潜在共振,它引起了极大的兴趣。在这里,我们对Tip-Adatom相互作用的作用进行了理论研究,并提供了选择实验参数的准则,以优化旋转共振测量值。我们考虑了MGO表面上的Fe Adatom的情况及其与自旋偏置的STM尖端的相互作用。我们解决了三个问题:首先,如何优化尖端样本距离以取消由表面旋转的尖端产生的有效磁场,以进行适当的磁场感应。其次,如何降低表面旋转谐振频率的电压依赖性,以最大程度地减少由于电压噪声而导致的尖端诱导的分解。第三,我们提出了一个实验方案,以推断应用场和尖端磁化之间的失呼角,这在实验结果的建模中起着至关重要的作用。
Electron-spin resonance carried out with scanning tunneling microscopes (ESR-STM) is a recently developed experimental technique that is attracting enormous interest on account of its potential to carry out single-spin on-surface resonance with subatomic resolution. Here we carry out a theoretical study of the role of tip-adatom interactions and provide guidelines for choosing the experimental parameters in order to optimize spin resonance measurements. We consider the case of the Fe adatom on a MgO surface and its interaction with the spin-polarized STM tip. We address three problems: first, how to optimize the tip-sample distance to cancel the effective magnetic field created by the tip on the surface spin, in order to carry out proper magnetic field sensing. Second, how to reduce the voltage dependence of the surface-spin resonant frequency, in order to minimize tip-induced decoherence due to voltage noise. Third, we propose an experimental protocol to infer the detuning angle between the applied field and the tip magnetization, which plays a crucial role in the modeling of the experimental results.