Bouchard Frédéric, Harris Jérémie, Mand Harjaspreet, Bent Nicolas, Santamato Enrico, Boyd Robert W, Karimi Ebrahim
Department of Physics, University of Ottawa, 25 Templeton St., Ottawa, Ontario, K1N 6N5 Canada.
Dipartimento di Scienze Fisiche, Universitá di Napoli "Federico II", Complesso di Monte S. Angelo, 80126 Napoli, Italy.
Sci Rep. 2015 Oct 15;5:15330. doi: 10.1038/srep15330.
Entanglement is at the heart of many unusual and counterintuitive features of quantum mechanics. Once two quantum subsystems have become entangled, it is no longer possible to ascribe an independent state to either; instead, the subsystems are completely described only as part of a greater, composite system. As a consequence of this, each entangled subsystem experiences a loss of coherence following entanglement. We refer to this decrease in coherence as decoherence. Decoherence leads inevitably to the leaking of information from each subsystem to the composite entangled system. Here, we demonstrate a process of decoherence reversal, whereby we recover information lost from the entanglement of the optical orbital angular momentum and radial profile degrees of freedom possessed by a photon pair. These results carry great potential significance, since quantum memories and quantum communication schemes depend on an experimenter's ability to retain the coherent properties of a particular quantum system.
纠缠是量子力学许多非同寻常且违反直觉的特征的核心所在。一旦两个量子子系统发生了纠缠,就不再能够为其中任何一个子系统赋予独立的状态;相反,这些子系统只能作为一个更大的复合系统的一部分来进行完整描述。由此产生的结果是,每个纠缠的子系统在纠缠之后都会经历相干性的丧失。我们将这种相干性的降低称为退相干。退相干不可避免地导致信息从每个子系统泄漏到复合纠缠系统中。在此,我们展示了一个退相干逆转过程,通过该过程我们恢复了因光子对所具有的光学轨道角动量和径向分布自由度的纠缠而丢失的信息。这些结果具有巨大的潜在意义,因为量子存储器和量子通信方案依赖于实验者保持特定量子系统相干特性的能力。