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经典非可分态到混合纠缠双光子态的直接传输。

Direct transfer of classical non-separable states into hybrid entangled two photon states.

机构信息

Photonic Sciences Lab., Physical Research Laboratory, Navarangpura, Ahmedabad, 380009, Gujarat, India.

National Centre for Biological Sciences, Bengaluru, India.

出版信息

Sci Rep. 2017 Aug 4;7(1):7331. doi: 10.1038/s41598-017-07318-1.

Abstract

Hybrid entangled states, having entanglement between different degrees-of-freedom (DoF) of a particle pair, are of great interest for quantum information science and communication protocols. Among different DoFs, the hybrid entangled states encoded with polarization and orbital angular momentum (OAM) allow the generation of qubit-qudit entangled states, macroscopic entanglement with very high quanta of OAM and improvement in angular resolution in remote sensing. Till date, such hybrid entangled states are generated by using a high-fidelity polarization entangled states and subsequent imprinting of chosen amount of OAM using suitable mode converters such as spatial light modulator in complicated experimental schemes. Given that the entangled sources have feeble number of photons, loss of photons during imprinting of OAM using diffractive optical elements limits the use of such hybrid states for practical applications. Here we report, on a simple generic experimental scheme to generate hybrid entangled states in polarization and OAM through direct transfer of classical non-separable states of the pump beam in parametric down conversion process. As a proof of principle, using local non-separable pump states of OAM mode l = 3, we have produced quantum hybrid entangled states with entanglement witness parameter of ~1.25 ± 0.03 violating by 8 standard deviation.

摘要

混合纠缠态在粒子对的不同自由度(DoF)之间存在纠缠,这对量子信息科学和通信协议非常重要。在不同的自由度中,偏振和轨道角动量(OAM)编码的混合纠缠态允许生成量子比特-量子位纠缠态、具有非常高的 OAM 量子数的宏观纠缠态以及提高遥感中的角分辨率。迄今为止,这种混合纠缠态是通过使用高保真度的偏振纠缠态并随后使用合适的模式转换器(如空间光调制器)在复杂的实验方案中对所选数量的 OAM 进行印记来产生的。鉴于纠缠源的光子数量很少,在使用衍射光学元件印记 OAM 时的光子损失限制了这种混合态在实际应用中的使用。在这里,我们报告了一种简单的通用实验方案,通过参量下转换过程中泵浦光束的经典不可分离态的直接传输,在偏振和 OAM 中产生混合纠缠态。作为原理验证,我们使用 OAM 模式 l = 3 的局域不可分离泵浦态,产生了量子混合纠缠态,纠缠见证参数约为 1.25 ± 0.03,违反了 8 个标准差。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/86fa/5544695/475f8aa9e835/41598_2017_7318_Fig1_HTML.jpg

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