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Tunable High Speed Atomic Rotor in Bi2Se3 Revealed by Current Noise

机译:在Bi2Se3中可调谐高速原子转子,通过电流噪声显示

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摘要

The ability to manipulate individual atoms and molecules using a scanning tunneling microscope (STM) has been crucial for the development of a vast array of atomic-scale devices and structures ranging from nanoscale motors and switches to quantum corrals. Molecular motors in particular have attracted considerable attention in view of their potential for assembly into complex nanoscale machines. Whereas the manipulated atoms or molecules are usually on top of a substrate, motors embedded in a lattice can be very beneficial for bottom-up construction, and may additionally be used to probe the influence of the lattice on the electronic properties of the host material. Here, we present the discovery of controlled manipulation of a rotor in Fe doped Bi2Se3. We find that the current into the rotor, which can be finely tuned with the voltage, drives omni-directional switching between three equivalent orientations, each of which can be frozen in at small bias voltage. Using current fluctuation measurements at 1 MHz and model simulations, we estimate that switching rates of hundreds of kHz for sub-nanoampere currents are achieved.
机译:使用扫描隧道显微镜(STM)操纵单个原子和分子的能力对于开发从纳米级马达、开关到量子畜栏的大量原子级设备和结构至关重要。鉴于分子马达具有组装成复杂纳米级机器的潜力,分子马达尤其受到了广泛关注。尽管被操纵的原子或分子通常位于衬底的顶部,但嵌入晶格中的马达对于自底向上的构造非常有益,并且还可用于探测晶格对主体材料电子性质的影响。在这里,我们展示了在掺铁Bi2Se3中发现的转子控制操作。我们发现,进入转子的电流可以随电压微调,驱动三个等效方向之间的全向切换,每个方向都可以在较小的偏置电压下冻结。使用1MHz下的电流波动测量和模型模拟,我们估计亚毫安电流的开关速率达到数百kHz。

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