论文标题
量子状态先驱,使用带有游离电子的光子集成电路
Quantum state heralding using photonic integrated circuits with free electrons
论文作者
论文摘要
最近,集成的光子电路为电子显微镜带来了新的功能,并用于证明有效的电子相调制和电子光子相关性。在这里,我们使用游离电子和具有参数耦合的光子积分电路进行定量分析高保真度和高纯度量子状态先驱的可行性,并建议在不同的应用方案中塑造有用的电子和光子状态。采用耗散量子电动力学处理,我们为自由电子与波导时空模式耦合的框架制定了一个框架。为了避免多模耦合诱导的状态分流,我们表明,通过适当的波导设计,可以将相互作用简化为单模耦合到准TM00模式。在单模耦合极限中,我们超越了常规状态阶梯的处理,并表明梯子子空间内的电子 - 光子能量相关性仍然可以导致通过先驱方案对复杂的光学和电子状态制备的基本纯度和忠诚度限制。我们提出了将这种基本相关性用于其优势的应用程序,但也表明,可以通过使用具有实验性可行的相互作用长度的光子集成电路来克服一般应用的限制,这表明了其作为自由电子量子量子量子的平台的承诺。
Recently, integrated photonic circuits have brought new capabilities to electron microscopy and been used to demonstrate efficient electron phase modulation and electron-photon correlations. Here, we quantitatively analyze the feasibility of high fidelity and high purity quantum state heralding using a free electron and a photonic integrated circuit with parametric coupling, and propose schemes to shape useful electron and photonic states in different application scenarios. Adopting a dissipative quantum electrodynamics treatment, we formulate a framework for the coupling of free electrons to waveguide spatial-temporal modes. To avoid multimode-coupling induced state decoherence, we show that with proper waveguide design, the interaction can be reduced to a single-mode coupling to a quasi-TM00 mode. In the single-mode coupling limit, we go beyond the conventional state ladder treatment, and show that the electron-photon energy correlations within the ladder subspace can still lead to a fundamental purity and fidelity limit on complex optical and electron state preparations through heralding schemes. We propose applications that use this underlying correlation to their advantage, but also show that the imposed limitations for general applications can be overcome by using photonic integrated circuits with an experimentally feasible interaction length, showing its promise as a platform for free-electron quantum optics.