论文标题

产生单周期脉冲:单电子电路中传输的可扩展解决方案

Generation of a single-cycle acoustic pulse: a scalable solution for transport in single-electron circuits

论文作者

Wang, Junliang, Ota, Shunsuke, Edlbauer, Hermann, Jadot, Baptiste, Mortemousque, Pierre-André, Richard, Aymeric, Okazaki, Yuma, Nakamura, Shuji, Ludwig, Arne, Wieck, Andreas D., Urdampilleta, Matias, Meunier, Tristan, Kodera, Tetsuo, Kaneko, Nobu-Hisa, Takada, Shintaro, Bäuerle, Christopher

论文摘要

单周期,压缩光学和微波脉冲的合成引发了基本研究的新领域。但是,在声学领域,尚未引入这样一代。对于众多应用,表面声波的大空间范围(SAW)会导致不良的扰动,并限制了物理操作的准确性。特别是,该限制适用于单个飞行电子的锯驱动量子实验,其中额外的调制使运输电子的确切位置模棱两可,并导致不需要的旋转混合。在这里,我们通过证明强烈压缩的声脉冲的单发chiRP合成来解决这一挑战。使用这个孤立的锯脉冲在远处量子点之间运输单个电子,效率超过99%,我们表明CHIRP合成具有正常转导方法的竞争力。对锯驱动的发送过程进行时间分辨的研究,我们概述了从许多量子点源同步的单电子传输的chi锯脉冲的潜力。通过叠加多种脉冲,我们进一步指出了CHIRP合成的能力,可以生成可根据各种(OPTO)纳米力学应用量身定制的任意声学波形。我们的结果将压缩脉冲的范式转移到了声音子的场上,并为单电子传输的锯驱动平台铺平了道路,该平台精确,同步和可扩展。

The synthesis of single-cycle, compressed optical and microwave pulses sparked novel areas of fundamental research. In the field of acoustics, however, such a generation has not been introduced yet. For numerous applications, the large spatial extent of surface acoustic waves (SAW) causes unwanted perturbations and limits the accuracy of physical manipulations. Particularly, this restriction applies to SAW-driven quantum experiments with single flying electrons, where extra modulation renders the exact position of the transported electron ambiguous and leads to undesired spin mixing. Here, we address this challenge by demonstrating single-shot chirp synthesis of a strongly compressed acoustic pulse. Employing this solitary SAW pulse to transport a single electron between distant quantum dots with an efficiency exceeding 99%, we show that chirp synthesis is competitive with regular transduction approaches. Performing a time-resolved investigation of the SAW-driven sending process, we outline the potential of the chirped SAW pulse to synchronize single-electron transport from many quantum-dot sources. By superimposing multiple pulses, we further point out the capability of chirp synthesis to generate arbitrary acoustic waveforms tailorable to a variety of (opto)nanomechanical applications. Our results shift the paradigm of compressed pulses to the field of acoustic phonons and pave the way for a SAW-driven platform of single-electron transport that is precise, synchronized, and scalable.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源