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Quantum computation based on photonic systems with two degrees of freedom assisted by the weak cross-Kerr nonlinearity

机译:基于光子系统的量子计算,弱交叉克尔非线性辅助两度自由度

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Most of previous quantum computations only take use of one degree of freedom (DoF) of photons. An experimental system may possess various DoFs simultaneously. In this paper, with the weak cross-Kerr nonlinearity, we investigate the parallel quantum computation dependent on photonic systems with two DoFs. We construct nearly deterministic controlled-not (CNOT) gates operating on the polarization spatial DoFs of the two-photon or one-photon system. These CNOT gates show that two photonic DoFs can be encoded as independent qubits without auxiliary DoF in theory. Only the coherent states are required. Thus one half of quantum simulation resources may be saved in quantum applications if more complicated circuits are involved. Hence, one may trade off the implementation complexity and simulation resources by using different photonic systems. These CNOT gates are also used to complete various applications including the quantum teleportation and quantum superdense coding.
机译:以前的大多数量子计算仅采用光子的一种自由度(DOF)。实验系统可以同时具有各种DOF。在本文中,随着弱交叉克尔非线性,我们研究了依赖于两种DOF的光子系统的并联量子计算。我们构造在双光子或一光子系统的偏振空间DOF上操作的几乎确定的控制 - 不是(CNOT)栅极。这些CNOT门表明,两个光子DOF可以在理论上被编码为无辅助DOF的独立QUBITS。只需要连贯状态。因此,如果涉及更复杂的电路,则量子模拟资源的一半可以保存在量子应用中。因此,可以通过使用不同的光子系统来缩掉实现复杂性和仿真资源。这些CNOT栅极也用于完成包括量子传送和量子超级编码的各种应用。

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