论文标题
648双孔频率梳中的希尔伯特空间维度
648 Hilbert space dimensionality in a biphoton frequency comb
论文作者
论文摘要
量子纠缠是量子信息处理的宝贵资源,其中增加其维度为量子通信,群集计算和量子相测量中的误差弹性提供了一种途径。连续可变子空间的时频纠缠使每个粒子的多个量子位的高维编码仅受光谱相关带宽和读取时序抖动的限制。 Extending from a dimensionality of two in discrete polarization variables, here we demonstrate a hyperentangled, mode-locked, biphoton frequency comb with a time-frequency Hilbert space dimensionality of at least 648. Hong-Ou-Mandel revivals of the biphoton qubits are observed with 61 time-bin recurrences, biphoton joint spectral correlations over 19 frequency-bins, and an overall interference visibility高维Qubits中最多可达98.4%。我们在时间和频率键子空间中描述了高维纠缠的Schmidt模式分解分析,不仅验证了纠缠维度,而且还检查了时间频率缩放。我们观察到违反高维Qubits的钟形,最大为18.5标准偏差,而反复的相关性Clauser-Horne-Horne-Horne-Holt-Holt-Holt-Holt S-Parameter最高为2.771。我们的两光子频率梳子是致密量子信息处理和高维量子键分布的平台。
Qubit entanglement is a valuable resource for quantum information processing, where increasing its dimensionality provides a pathway towards higher capacity and increased error resilience in quantum communications, cluster computation and quantum phase measurements. Time-frequency entanglement, a continuous variable subspace, enables the high-dimensional encoding of multiple qubits per particle, bounded only by the spectral correlation bandwidth and readout timing jitter. Extending from a dimensionality of two in discrete polarization variables, here we demonstrate a hyperentangled, mode-locked, biphoton frequency comb with a time-frequency Hilbert space dimensionality of at least 648. Hong-Ou-Mandel revivals of the biphoton qubits are observed with 61 time-bin recurrences, biphoton joint spectral correlations over 19 frequency-bins, and an overall interference visibility of the high-dimensional qubits up to 98.4%. We describe the Schmidt mode decomposition analysis of the high-dimensional entanglement, in both time- and frequency-bin subspaces, not only verifying the entanglement dimensionality but also examining the time-frequency scaling. We observe a Bell violation of the high-dimensional qubits up to 18.5 standard deviations, with recurrent correlation-fringe Clauser-Horne-Shimony-Holt S-parameter up to 2.771. Our biphoton frequency comb serves as a platform for dense quantum information processing and high-dimensional quantum key distribution.