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Parameter dependence of the decoherence of orbital angular momentum entanglement in atmospheric turbulence

机译:大气湍流中轨道角动量纠缠的退相干的参数依赖性

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The orbital angular momentum (OAM) state of light can potentially be used to implement higher dimensional entangled systems for quantum communication. Unfortunately, optical fibers in use today support only modes with zero OAM values. Free-space quantum communication is an alternative to traditional way of communicating through optical fibers. However the refractive index fluctuation of the atmosphere gives rise to random phase aberrations on a propagating optical beam. To transmit quantum information successfully through a free-space optical channel, one needs to understand how atmospheric turbulence influences quantum entanglement. Here, we present a numerical study of the evolution of quantum entanglement between a pair of qubits. The qubits consist of photons entangled in the OAM basis. The photons propagate in a turbulent atmosphere modeled by a series of consecutive phase screens based on the Kolmogorov theory of turbulence. Maximally entangled initial states are considered, and the concurrence is used as a measure of entanglement. We show how the evolution of entanglement is influenced by various parameters such as the beam waist, the strength of the turbulence and the wavelength of the beam. We restricted our analysis to the OAM values l = ±1 and we compared our results to previous work.
机译:光的轨道角动量(OAM)状态可以潜在地用于实现高维纠缠系统以进行量子通信。不幸的是,当今使用的光纤仅支持零OAM值的模式。自由空间量子通信是通过光纤通信的传统方式的替代方法。然而,大气的折射率波动在传播的光束上引起随机的相位像差。为了成功地通过自由空间光通道传输量子信息,人们需要了解大气湍流如何影响量子纠缠。在这里,我们对一对量子位之间的量子纠缠的演化进行了数值研究。量子位由基于OAM纠缠的光子组成。光子在湍流中传播,该湍流由一系列基于Kolmogorov湍流理论的连续相屏模拟。考虑最大纠缠的初始状态,并将并发用作纠缠的量度。我们展示了纠缠的演化如何受到各种参数的影响,例如束腰,湍流强度和束波长。我们将分析限制在OAM值l =±1,并将我们的结果与以前的工作进行了比较。

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