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在非线性光子晶体中实现纠缠光子的片上操控。

On-chip steering of entangled photons in nonlinear photonic crystals.

机构信息

National Laboratory of Solid State Microstructures and School of Physics, Nanjing University, Nanjing 210093, China.

出版信息

Nat Commun. 2011 Aug 16;2:429. doi: 10.1038/ncomms1439.

Abstract

One promising technique for working toward practical photonic quantum technologies is to implement multiple operations on a monolithic chip, thereby improving stability, scalability and miniaturization. The on-chip spatial control of entangled photons will certainly benefit numerous applications, including quantum imaging, quantum lithography, quantum metrology and quantum computation. However, external optical elements are usually required to spatially control the entangled photons. Here we present the first experimental demonstration of on-chip spatial control of entangled photons, based on a domain-engineered nonlinear photonic crystal. We manipulate the entangled photons using the inherent properties of the crystal during the parametric downconversion, demonstrating two-photon focusing and beam-splitting from a periodically poled lithium tantalate crystal with a parabolic phase profile. These experimental results indicate that versatile and precise spatial control of entangled photons is achievable. Because they may be operated independent of any bulk optical elements, domain-engineered nonlinear photonic crystals may prove to be a valuable ingredient in on-chip integrated quantum optics.

摘要

一种有前途的实现实用光子量子技术的方法是在单片芯片上实现多个操作,从而提高稳定性、可扩展性和小型化。在片上对纠缠光子进行空间控制肯定会有益于许多应用,包括量子成像、量子光刻、量子计量学和量子计算。然而,通常需要外部光学元件来对纠缠光子进行空间控制。在这里,我们基于畴工程非线性光子晶体,首次展示了对纠缠光子的片上空间控制的实验演示。我们利用晶体在参量下转换过程中的固有特性来操纵纠缠光子,演示了具有抛物线相位分布的周期性极化钽酸锂晶体的双光子聚焦和分束。这些实验结果表明,纠缠光子的多功能和精确空间控制是可行的。由于它们可以独立于任何体光学元件运行,畴工程非线性光子晶体可能成为片上集成量子光学的一个有价值的组成部分。

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