Yarnall Timothy, Abouraddy Ayman F, Saleh Bahaa E A, Teich Malvin C
Quantum Imaging Laboratory, Departments of Electrical & Computer Engineering and Physics, Boston University, Boston, Massachusetts 02215-2421, USA.
Phys Rev Lett. 2007 Dec 21;99(25):250502. doi: 10.1103/PhysRevLett.99.250502. Epub 2007 Dec 18.
We present the novel embodiment of a photonic qubit that makes use of one continuous spatial degree of freedom of a single photon and relies on the parity of the photon's transverse spatial distribution. Using optical spontaneous parametric down-conversion to produce photon pairs, we demonstrate the controlled generation of entangled-photon states in this new space. Specifically, two Bell states, and a continuum of their superpositions, are generated by simple manipulation of a classical parameter, the optical-pump spatial parity, and not by manipulation of the entangled photons themselves. An interferometric device, isomorphic in action to a polarizing beam splitter, projects the spatial-parity states onto an even-odd basis. This new physical realization of photonic qubits could be used as a foundation for future experiments in quantum information processing.
我们展示了一种新型的光子量子比特实施方案,该方案利用单个光子的一个连续空间自由度,并依赖于光子横向空间分布的奇偶性。通过光学自发参量下转换产生光子对,我们证明了在这个新空间中纠缠光子态的可控生成。具体而言,通过简单地操控一个经典参数——光泵浦空间奇偶性,而非通过操控纠缠光子本身,产生了两个贝尔态及其连续的叠加态。一种干涉装置,其作用与偏振分束器同构,将空间奇偶态投影到奇偶基上。这种光子量子比特的新物理实现可为未来的量子信息处理实验奠定基础。