Photon echo, spectral hole burning, and optically detected magnetic resonance inYb3+171:LiNbO3bulk crystal and …

物理 铌酸锂 离子 超精细结构 激发态 原子物理学 凝聚态物理 材料科学 光学 量子力学
作者
F. Chiossi,Eloïse Lafitte-Houssat,Kangwei Xia,Fiammetta Sardi,Zhonghan Zhang,Sacha Welinski,Perrine Berger,Loïc Morvan,V. Foteinou,Alban Ferrier,Diana Serrano,Roman Kolesov,Jörg Wrachtrup,Philippe Goldner
出处
期刊:Physical review [American Physical Society]
卷期号:105 (18) 被引量:7
标识
DOI:10.1103/physrevb.105.184115
摘要

Recent progress in the realization of high-quality optical resonators and waveguides along with the possibility to incorporate rare-earth ions, make lithium niobate a promising material to build integrated platforms for quantum information processing. $^{171}\mathrm{Yb}^{3+}$ is a particularly attractive system because it can show long coherence lifetimes at zero magnetic field thanks to transitions insensitive to magnetic field fluctuations. In this paper, we investigate the optical and spin properties of $^{171}\mathrm{Yb}^{3+}$ ions in ${\mathrm{LiNbO}}_{3}$ bulk crystals as well as implanted waveguides. Using hole-burning spectroscopy and optically detected magnetic resonance, we studied ground and excited state hyperfine structures and probed optical and spin spectral holes. Importantly, the hole linewidths suggest that part of the ions in the waveguides are in a similar environment as in the bulk sample. We furthermore characterized spin population relaxation and coherence lifetimes of $^{171}\mathrm{Yb}^{3+}$ ions in the bulk crystal at temperatures between 50 mK and 9 K. At low temperatures, ${T}_{2}$ up to 9.5 $\ensuremath{\mu}\mathrm{s}$ (34 kHz homogeneous linewidth) and spin relaxation rates as long as $\ensuremath{\approx}100$ ms were measured. Our results show that $^{171}\mathrm{Yb}^{3+}$:$\mathrm{Li}\mathrm{Nb}{\mathrm{O}}_{3}$ is a system that exhibits narrow optical homogeneous linewidths over a 50 GHz bandwidth together with an electron spin degree of freedom. This is of interest for a variety of applications in integrated quantum photonics such as quantum memories or quantum processors.
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