Quach James Q, Su Chun-Hsu, Martin Andrew M, Greentree Andrew D, Hollenberg Lloyd C L
Centre for Quantum Computer Technology, School of Physics, The University of Melbourne, Victoria, Australia.
Opt Express. 2011 Jun 6;19(12):11018-33. doi: 10.1364/OE.19.011018.
By coupling controllable quantum systems into larger structures we introduce the concept of a quantum metamaterial. Conventional meta-materials represent one of the most important frontiers in optical design, with applications in diverse fields ranging from medicine to aerospace. Up until now however, metamaterials have themselves been classical structures and interact only with the classical properties of light. Here we describe a class of dynamic metamaterials, based on the quantum properties of coupled atom-cavity arrays, which are intrinsically lossless, reconfigurable, and operate fundamentally at the quantum level. We show how this new class of metamaterial could be used to create a reconfigurable quantum superlens possessing a negative index gradient for single photon imaging. With the inherent features of quantum superposition and entanglement of metamaterial properties, this new class of dynamic quantum metamaterial, opens a new vista for quantum science and technology.
通过将可控量子系统耦合到更大的结构中,我们引入了量子超材料的概念。传统超材料是光学设计中最重要的前沿领域之一,在从医学到航空航天等不同领域都有应用。然而到目前为止,超材料本身一直是经典结构,并且仅与光的经典特性相互作用。在此我们描述一类基于耦合原子 - 腔阵列量子特性的动态超材料,它们本质上是无损的、可重构的,并且从根本上在量子水平上运行。我们展示了这类新型超材料如何可用于创建具有用于单光子成像的负折射率梯度的可重构量子超透镜。凭借超材料特性的量子叠加和纠缠的固有特征,这类新型动态量子超材料为量子科学和技术开辟了新前景。