论文标题
部分可观测时空混沌系统的无模型预测
Ultrashort electron wavepackets via frequency-comb synthesis
论文作者
论文摘要
单电子源是现代量子纳米电子设备的重要组成部分。由于它们的高精度和稳定性,它们已成功地用于计量应用,研究基本物质相互作用以及最近用于电子量子光学器件。传统上,它们是由最新的任意波形发生器驱动的,这些波形发生器能够在100 PS低下的时间尺度中产生单电子脉冲。在这项工作中,我们使用另一种方法来产生超短的电子波袋。通过组合频率梳提供的几种谐波,我们合成Lorentzian电压脉冲,然后使用它们来产生电子波袋。通过这项技术,我们报告了在二维电子气体的费米海顶部产生27 ps的电子波袋的生成和检测,这是迄今为止最短的。电子脉动这一简短的研究可以研究纳米电子系统中难以捉摸的超快基本量子动力学,并为通过levitons实现飞行电子量子的方式铺平了道路。
Single-electron sources are an essential component of modern quantum nanoelectronic devices. Owing to their high accuracy and stability, they have been successfully employed for metrology applications, studying fundamental matter interactions and more recently for electron quantum optics. They are traditionally driven by state-of-the-art arbitrary waveform generators that are capable of producing single-electron pulses in the sub-100 ps timescale. In this work, we use an alternative approach for generating ultrashort electron wavepackets. By combining several harmonics provided by a frequency comb, we synthesise Lorentzian voltage pulses and then use them to generate electron wavepackets. Through this technique, we report on the generation and detection of an electron wavepacket with temporal duration of 27 ps generated on top of the Fermi sea of a 2-dimensional electron gas - the shortest reported to date. Electron pulses this short enable studies on elusive, ultrafast fundamental quantum dynamics in nanoelectronic systems and pave the way to implement flying electron qubits by means of Levitons.