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Path-polarization hyperentangled and cluster states of photons on a chip

机译:芯片上光子的路径极化超纠缠和簇状态

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摘要

Encoding many qubits in different degrees of freedom (DOFs) of single photons is one of the routes toward enlarging the Hilbert space spanned by a photonic quantum state. Hyperentangled photon states (that is, states showing entanglement in multiple DOFs) have demonstrated significant implications for both fundamental physics tests and quantum communication and computation. Increasing the number of qubits of photonic experiments requires miniaturization and integration of the basic elements, and functions to guarantee the setup stability, which motivates the development of technologies allowing the precise control of different photonic DOFs on a chip. We demonstrate the contextual use of path and polarization qubits propagating within an integrated quantum circuit. We tested the properties of four-qubit linear cluster states built on both DOFs, and we exploited them to perform the Grover's search algorithm according to the one-way quantum computation model. Our results pave the way toward the full integration on a chip of hybrid multi-qubit multiphoton states.
机译:编码单个光子的不同自由度(DOF)中的许多量子位是扩大由光子量子态跨越的希尔伯特空间的途径之一。超纠缠光子状态(即在多个自由度中显示出纠缠的状态)对基本物理测试以及量子通信和计算都具有重要意义。增加光子实验的量子位数量需要对基本元素进行小型化和集成,并具有确保设置稳定性的功能,这推动了技术的发展,从而可以精确控制芯片上的不同光子自由度。我们演示了在集成量子电路中传播的路径和极化量子位的上下文使用。我们测试了建立在两个自由度上的四比特线性簇状态的性质,并利用它们根据单向量子计算模型执行了格罗弗的搜索算法。我们的结果为在混合多量子位多光子状态的芯片上完全集成铺平了道路。

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