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Multiscale model of the manipulation of single atoms on insulating surfaces using an atomic force microscope tip

机译:使用原子力显微镜尖端对绝缘表面上的单个原子进行操作的多尺度模型

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摘要

We present the results of the multiscale modeling of the process of lateral manipulation of a Pd adatom adsorbed on the MgO (001) surface using a noncontact atomic force microscope (AFM) at finite temperature and in real time as a tip moves above the surface. We show that the stochastic motion of Pd adatoms can be controlled by localized forces from an oscillating tip and demonstrate how this can be achieved in practice. The energy barriers for manipulation as a function of tip position in three dimensions above the surface are determined from atomistic calculations and then used in a kinetic Monte Carlo algorithm to determine the evolution of the system at a finite temperature and in real time for a realistic trajectory of the tip, which is in turn governed by a complete numerical simulation of the instrument including the response of the feedback loops. We can then predict the probability of a successful manipulation event for a given procedure. The multiscale modeling technique developed in this work can be used to determine optimum experimental protocols for controlled single-atom manipulation using noncontact AFM.
机译:我们提出了使用非接触原子力显微镜(AFM)在有限的温度下以及尖端在表面上方移动时实时吸附在MgO(001)表面上的Pd吸附原子的横向操纵过程的多尺度建模结果。我们表明,Pd原子的随机运动可以通过来自振荡尖端的局部力来控制,并演示了如何在实践中实现这一点。通过原子计算确定用于操纵的能垒,该能垒是尖端在表面上方三个维度上的函数,然后在动力学蒙特卡洛算法中用于确定系统在有限温度下实时演化的真实轨迹尖端的角度,这又由仪器的完整数值模拟(包括反馈回路的响应)决定。然后,我们可以预测给定过程成功进行操纵事件的可能性。这项工作中开发的多尺度建模技术可用于确定使用非接触式AFM进行受控单原子操作的最佳实验方案。

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