Motazedifard Ali, Madani S A, Dashkasan J J, Vayaghan N S
Quantum Optics Group, Iranian Center for Quantum Technologies (ICQTs), Tehran, Iran.
Quantum Communication Group, Iranian Center for Quantum Technologies (ICQTs), Tehran, Iran.
Heliyon. 2021 Jun 24;7(6):e07384. doi: 10.1016/j.heliyon.2021.e07384. eCollection 2021 Jun.
We have experimentally created a robust, ultrabright and phase-stable polarization-entangled state close to maximally entangled Bell-state with %98-fidelity using the type-II spontaneous parametric down-conversion (SPDC) process in periodically-poled KTiOPO (PPKTP) collinear crystal inside a Sagnac interferometer (SI). Bell inequality measurement, Freedman's test, as the different versions of CHSH inequality, and also visibility test which all can be seen as the nonlocal realism tests, imply that our created entangled state shows a strong violation from the classical physics or any hidden-variable theory. We have obtained very reliable and very strong Bell violation as with high brightness and and very strong violation due to Freedman test as . Furthermore, using the tomographic reconstruction of quantum states together a maximum-likelihood-technique (MLT) as the numerical optimization, we obtain the physical non-negative definite density operator which shows the nonseparability and entanglement of our prepared state. By having the maximum likelihood density operator, we calculate some important entanglement-measures and entanglement entropies. The Sagnac configuration provides bidirectional crystal pumping yields to high-rate entanglement source which is very applicable in quantum communication, sensing and metrology as well as quantum information protocols, and has potential to be used in quantum illumination-based LIDAR and free-space quantum key distribution (QKD).
我们通过在Sagnac干涉仪(SI)内的周期性极化磷酸钛氧钾(PPKTP)共线晶体中利用II型自发参量下转换(SPDC)过程,实验创建了一种稳健、超亮且相位稳定的极化纠缠态,其接近最大纠缠的贝尔态,保真度达98%。贝尔不等式测量、弗里德曼测试(作为CHSH不等式的不同版本)以及可见度测试(所有这些都可视为非局域实在论测试)表明,我们创建的纠缠态明显违背了经典物理学或任何隐变量理论。我们获得了非常可靠且很强的贝尔违背,其亮度高,并且由于弗里德曼测试也有很强的违背。此外,使用量子态的断层重建结合最大似然技术(MLT)作为数值优化,我们得到了物理上非负定的密度算符,它显示了我们制备态的非可分性和纠缠性。通过拥有最大似然密度算符,我们计算了一些重要的纠缠度量和纠缠熵。Sagnac配置提供双向晶体泵浦,产生高速纠缠源,这在量子通信、传感和计量以及量子信息协议中非常适用,并且有潜力用于基于量子照明的激光雷达和自由空间量子密钥分发(QKD)。