论文标题
通过电流携带的处理量子信号
Processing quantum signals carried by electrical currents
论文作者
论文摘要
弹道导体中电子连贯操作的最新发展包括每一个时期涉及一到几个电子激发的时间周期性电流的产生。但是,使用单个电子作为量子信息的载体进行飞行Qubit计算或量子测量应用程序,要求采用一种通用方法来揭示嵌入量子电流中的单粒子激发以及如何在其中编码量子信息。在这里,我们提出了一种通用信号处理算法,以提取基本单粒子状态,称为信号的电子原子,以任何周期性的量子电流中存在。这些激发及其相互量子相干性描述了多余的单电子连贯性,就像音符和得分相同的方式描述了音乐仪器发出的声音信号。通过评估实验相关的单电子源的质量,说明了该方法是朝着量子电流信号处理开发的第一步。通过定期时钟但随机注入的单位电荷洛伦兹电压脉冲获得的随机量子电流的示例使我们能够讨论如何在发射的单个颗粒激发之间改变施加电压的相互作用和Pauli原理的相互作用。
Recent developments in the coherent manipulation of electrons in ballistic conductors include the generation of time-periodic electrical currents involving one to few electronic excitations per period. However, using individual electrons as carrier of quantum information for flying qubit computation or quantum metrology applications calls for a general method to unravel the single-particle excitations embedded in a quantum electrical current and how quantum information is encoded within it. Here, we propose a general signal processing algorithm to extract the elementary single-particle states, called electronic atoms of signal, present in any periodic quantum electrical current. These excitations and their mutual quantum coherence describe the excess single-electron coherence in the same way musical notes and score describe a sound signal emitted by a music instrument. This method, which is the first step towards the development of signal processing of quantum electrical currents is illustrated by assessing the quality of experimentally relevant single electron sources. The example of randomized quantum electrical currents obtained by regularly clocked but randomly injected unit charge Lorentzian voltage pulses enables us to discuss how interplay of the coherence of the applied voltage and of the Pauli principle alter the quantum coherence between the emitted single particle excitations.