Defect Engineering for Quantum Grade Rare-Earth Nanocrystals
Author(s) -
Shuping Liu,
Alexandre Fossati,
Diana Serrano,
Alexandre Tallaire,
Alban Ferrier,
Philippe Goldner
Publication year - 2020
Publication title -
acs nano
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.554
H-Index - 382
eISSN - 1936-086X
pISSN - 1936-0851
DOI - 10.1021/acsnano.0c02971
Subject(s) - nanocrystal , rare earth , materials science , nanotechnology , quantum dot , quantum , physics , metallurgy , quantum mechanics
Nanostructured systems that combine optical and spin transitions offer new functionalities for quantum technologies by providing efficient quantum light-matter interfaces. Rare-earth (RE) ion-doped nanoparticles are promising in this field as they show long-lived optical and spin quantum states. However, further development of their use in highly demanding applications, such as scalable single-ion-based quantum processors, requires controlling defects that currently limit coherence lifetimes. In this work, we show that a post-treatment process that includes multistep high-temperature annealing followed by high-power microwave oxygen plasma processing advantageously improves key properties for quantum technologies. We obtain single crystalline Eu 3+ :Y 2 O 3 nanoparticles (NPs) of 100 nm diameter, presenting bulk-like inhomogeneous line widths (Γ inh ) and population lifetimes ( T 1 ). Furthermore, a significant coherence lifetime ( T 2 ) extension, up to a factor of 5, is successfully achieved by modifying the oxygen-related point defects in the NPs by the oxygen plasma treatment. These promising results confirm the potential of engineered RE NPs to integrate devices such as cavity-based single-photon sources, quantum memories, and processors. In addition, our strategy could be applied to a large variety of oxides to obtain outstanding crystalline quality NPs for a broad range of applications.
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