Group of Applied Physics, University of Geneva, CH-1211 Geneva 4, Switzerland.
Phys Rev Lett. 2012 May 11;108(19):190503. doi: 10.1103/PhysRevLett.108.190503. Epub 2012 May 10.
Storage of quantum information encoded into heralded single photons is an essential constituent of long-distance quantum communication based on quantum repeaters and of optical quantum information processing. The storage of photonic polarization qubits is, however, difficult because many materials are birefringent and have polarization-dependent absorption. Here we present a simple scheme that eliminates these polarization effects, and we demonstrate it by storing heralded polarization qubits into a solid-state quantum memory. The quantum memory is implemented with a biaxial yttrium orthosilicate (Y2SiO5) crystal doped with rare-earth ions. Heralded single photons generated from a filtered spontaneous parametric down-conversion source are stored, and quantum state tomography of the retrieved polarization state reveals an average fidelity of 97.5±0.4%, which is significantly higher than what is achievable with a measure-and-prepare strategy.
存储编码为单光子的量子信息是基于量子中继器的长距离量子通信和光量子信息处理的基本组成部分。然而,光子极化量子比特的存储是困难的,因为许多材料是双折射的,并且具有偏振相关的吸收。在这里,我们提出了一种简单的方案,可以消除这些偏振效应,并通过将单光子极化量子比特存储在固态量子存储器中来验证该方案。量子存储器由掺稀土离子的双轴硅酸钇(Y2SiO5)晶体实现。从过滤的自发参量下转换源生成的单光子被存储,并且对检索的偏振状态的量子态层析成像显示平均保真度为 97.5±0.4%,这明显高于使用测量-准备策略可实现的保真度。