Bisognin R, Marguerite A, Roussel B, Kumar M, Cabart C, Chapdelaine C, Mohammad-Djafari A, Berroir J-M, Bocquillon E, Plaçais B, Cavanna A, Gennser U, Jin Y, Degiovanni P, Fève G
Laboratoire de Physique de l' Ecole normale supérieure, ENS, Université PSL, CNRS, Sorbonne Université, Université Paris-Diderot, Sorbonne Paris Cité, Paris, 75005, France.
Univ Lyon, Ens de Lyon, Université Claude Bernard Lyon 1, CNRS, Laboratoire de Physique, F-69342, Lyon, France.
Nat Commun. 2019 Jul 29;10(1):3379. doi: 10.1038/s41467-019-11369-5.
In quantum nanoelectronics, time-dependent electrical currents are built from few elementary excitations emitted with well-defined wavefunctions. However, despite the realization of sources generating quantized numbers of excitations, and despite the development of the theoretical framework of time-dependent quantum electronics, extracting electron and hole wavefunctions from electrical currents has so far remained out of reach, both at the theoretical and experimental levels. In this work, we demonstrate a quantum tomography protocol which extracts the generated electron and hole wavefunctions and their emission probabilities from any electrical current. It combines two-particle interferometry with signal processing. Using our technique, we extract the wavefunctions generated by trains of Lorentzian pulses carrying one or two electrons. By demonstrating the synthesis and complete characterization of electronic wavefunctions in conductors, this work offers perspectives for quantum information processing with electrical currents and for investigating basic quantum physics in many-body systems.
在量子纳米电子学中,随时间变化的电流由少数具有明确波函数发射的基本激发构成。然而,尽管已经实现了能产生量子化激发数目的源,并且尽管随时间变化的量子电子学理论框架也得到了发展,但迄今为止,无论是在理论层面还是实验层面,从电流中提取电子和空穴波函数仍然遥不可及。在这项工作中,我们展示了一种量子层析成像协议,该协议可从任何电流中提取所产生的电子和空穴波函数及其发射概率。它将双粒子干涉测量与信号处理相结合。利用我们的技术,我们提取了携带一个或两个电子的洛伦兹脉冲序列所产生的波函数。通过展示导体中电子波函数的合成与完整表征,这项工作为利用电流进行量子信息处理以及研究多体系统中的基本量子物理提供了前景。