量子纠缠
量子传感器
量子技术
量子位元
量子计量学
W州
物理
量子成像
量子力学
量子隐形传态
量子计算机
量子
量子网络
群集状态
量子光学
开放量子系统
作者
Pankaj K. Jha,Nir Shitrit,Jeongmin Kim,Xuexin Ren,Yuan Wang,Xiang Zhang
出处
期刊:ACS Photonics
[American Chemical Society]
日期:2017-12-01
卷期号:5 (3): 971-976
被引量:78
标识
DOI:10.1021/acsphotonics.7b01241
摘要
Entanglement-based quantum science exploits subtle properties of quantum mechanics into applications such as quantum computing, sensing, and metrology. The emerging route for quantum computing applications, which calls for ultracompact, integrated, and scalable architecture, aims at on-chip entangled qubits. In this context, quantum entanglement among atomic qubits was achieved via cold-controlled collisions which are only significant at subwavelength separations. However, as other manifolds of quantum state engineering require single-site addressability and controlled manipulation of the individual qubit using diffraction-limited optics, entanglement of qubits separated by macroscopic distances at the chip level is still an outstanding challenge. Here, we report a novel platform for on-chip quantum state engineering by harnessing the extraordinary light-molding capabilities of metasurfaces. We theoretically demonstrate quantum entanglement between two qubits trapped on a chip and separated by macroscopic distances, by engineering their coherent and dissipative interactions via the metasurface. Spatially scalable interaction channels offered by the metasurface enable robust generation of entanglement, with large values of concurrence and remarkable revival from sudden death. The metasurface route to quantum state engineering opens a new paradigm for on-chip quantum science and technologies.
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