论文标题
来自不同来源的单光子的两光子干扰
Two-Photon Interference of Single Photons from Dissimilar Sources
论文作者
论文摘要
纠缠交换和先驱是许多分布式量子信息协议的核心。对于光子,这通常涉及基于两光子干扰效应的钟状测量。在这种情况下,将高速率,超稳定和纯量子源与长寿命量子记忆相结合的混合系统特别有趣。在这里,我们开发了从不同来源的光子脉冲两光子干扰的理论描述,以预测二阶互相关测量结果。这些直接与量化光子无法区分性直接相关。我们研究了它们对关键系统参数的依赖性,例如量子状态寿命和频率失调,并量化发射时间抖动,纯dephasing和频谱徘徊的影响。我们的结果表明,对于固定的发射极寿命,对于每个频率引起的频率都有最佳的发射体寿命,这会导致最高的光子没有可区分性。对于现实世界系统参数,对涉及III-V量子点,钻石颜色中心,2D材料和原子的不同混合组合的期望进行了定量比较。我们的工作都为治疗不同发射器提供了理论基础,并能够评估在混合光子量子网络中可以耐受的缺陷。
Entanglement swapping and heralding are at the heart of many protocols for distributed quantum information. For photons, this typically involves Bell state measurements based on two-photon interference effects. In this context, hybrid systems that combine high rate, ultra-stable and pure quantum sources with long-lived quantum memories are particularly interesting. Here, we develop a theoretical description of pulsed two-photon interference of photons from dissimilar sources to predict the outcomes of second-order cross-correlation measurements. These are directly related to, and hence used to quantify, photon indistinguishability. We study their dependence on critical system parameters such as quantum state lifetime and frequency detuning, and quantify the impact of emission time jitter, pure dephasing and spectral wandering. Our results show that for fixed lifetime of emitter one, for each frequency detuning there is an optimal lifetime of emitter two that leads to highest photon indistinguishability. Expectations for different hybrid combinations involving III-V quantum dots, color centers in diamond, 2D materials and atoms are quantitatively compared for real-world system parameters. Our work both provides a theoretical basis for the treatment of dissimilar emitters and enables assessment of which imperfections can be tolerated in hybrid photonic quantum networks.