论文标题
两个电子在介质束分离器上相互作用
Two electrons interacting at a mesoscopic beam splitter
论文作者
论文摘要
光束分离器对相互作用颗粒的一致到达的非线性响应使量子工程和计量学中的许多应用都带来了巨大的挑战,可以在单个粒子水平上实现重点相互作用。在这里,我们探测具有未经库仑相互作用的系统中个体弹道电子之间的介质收缩,并引入概念以量化相关的参数非线性。联合检测的完整计数统计数据使我们能够探索相互作用介导的能量交换。我们观察到从50 \%到70 \%的巧合计数之间的增加,统计上无法区分的需求来源与与电子发射的独立断层扫描一致的相关签名。分析建模和数值模拟是实验结果的一致性,其两个电子之间的库仑相互作用是分散二次鞍形中反向传播的库仑相互作用,并证明了足够强的相互作用,$ u/(\ hbarω)> 10 $,以启用单光线内检测和量子逻辑门。
The non-linear response of a beam splitter to the coincident arrival of interacting particles enables numerous applications in quantum engineering and metrology yet poses considerable challenge to achieve focused interactions on the individual particle level. Here we probe the coincidence correlations at a mesoscopic constriction between individual ballistic electrons in a system with unscreened Coulomb interactions and introduce concepts to quantify the associated parametric non-linearity. The full counting statistics of joint detection allows us to explore the interaction-mediated energy exchange. We observe an increase from 50\% up to 70\% in coincidence counts between statistically indistinguishable on demand sources, and a correlation signature consistent with independent tomography of the electron emission. Analytical modeling and numerical simulations underpin consistency of the experimental results with Coulomb interactions between two electrons counterpropagating in a dispersive quadratic saddle, and demonstrate interactions sufficiently strong, $U/(\hbar ω) > 10$, to enable single-shot in-flight detection and quantum logic gates.