Coherence Time Extension by Large-Scale Optical Spin Polarization in a Rare-Earth Doped Crystal

Optically addressable spins are actively investigated in quantum communication, processing, and sensing. Optical and spin coherence lifetimes, which determine quantum operation fidelity and storage time, are often limited by spin-spin interactions, which can be decreased by polarizing spins. Spin po...

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Main Authors: Sacha Welinski, Alexey Tiranov, Moritz Businger, Alban Ferrier, Mikael Afzelius, Philippe Goldner
Format: Article
Language:English
Published: American Physical Society 2020-09-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.10.031060
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spelling doaj-a2746bccd40549d0a981fd6ec1394ce32020-11-25T03:46:05ZengAmerican Physical SocietyPhysical Review X2160-33082020-09-0110303106010.1103/PhysRevX.10.031060Coherence Time Extension by Large-Scale Optical Spin Polarization in a Rare-Earth Doped CrystalSacha WelinskiAlexey TiranovMoritz BusingerAlban FerrierMikael AfzeliusPhilippe GoldnerOptically addressable spins are actively investigated in quantum communication, processing, and sensing. Optical and spin coherence lifetimes, which determine quantum operation fidelity and storage time, are often limited by spin-spin interactions, which can be decreased by polarizing spins. Spin polarization can be achieved using optical pumping, large magnetic fields, or mK-range temperatures. Here, we show that optical pumping of a small fraction of ions with a fixed-frequency laser, coupled with spin-spin interactions and spin diffusion, leads to substantial spin polarization in a paramagnetic rare-earth doped crystal, ^{171}Yb^{3+}∶Y_{2}SiO_{5}. Indeed, more than 90% spin polarization has been achieved at 2 K and zero magnetic field. Using this spin polarization mechanism, we further demonstrate an increase in optical coherence lifetime from 0.3 ms to 0.8 ms, due to a strong decrease in spin-spin interactions. This effect opens the way to new schemes for obtaining long optical and spin coherence lifetimes in various solid-state systems such as ensembles of rare-earth ions or color centers in diamond, which are of interest for a broad range of quantum technologies.http://doi.org/10.1103/PhysRevX.10.031060
collection DOAJ
language English
format Article
sources DOAJ
author Sacha Welinski
Alexey Tiranov
Moritz Businger
Alban Ferrier
Mikael Afzelius
Philippe Goldner
spellingShingle Sacha Welinski
Alexey Tiranov
Moritz Businger
Alban Ferrier
Mikael Afzelius
Philippe Goldner
Coherence Time Extension by Large-Scale Optical Spin Polarization in a Rare-Earth Doped Crystal
Physical Review X
author_facet Sacha Welinski
Alexey Tiranov
Moritz Businger
Alban Ferrier
Mikael Afzelius
Philippe Goldner
author_sort Sacha Welinski
title Coherence Time Extension by Large-Scale Optical Spin Polarization in a Rare-Earth Doped Crystal
title_short Coherence Time Extension by Large-Scale Optical Spin Polarization in a Rare-Earth Doped Crystal
title_full Coherence Time Extension by Large-Scale Optical Spin Polarization in a Rare-Earth Doped Crystal
title_fullStr Coherence Time Extension by Large-Scale Optical Spin Polarization in a Rare-Earth Doped Crystal
title_full_unstemmed Coherence Time Extension by Large-Scale Optical Spin Polarization in a Rare-Earth Doped Crystal
title_sort coherence time extension by large-scale optical spin polarization in a rare-earth doped crystal
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2020-09-01
description Optically addressable spins are actively investigated in quantum communication, processing, and sensing. Optical and spin coherence lifetimes, which determine quantum operation fidelity and storage time, are often limited by spin-spin interactions, which can be decreased by polarizing spins. Spin polarization can be achieved using optical pumping, large magnetic fields, or mK-range temperatures. Here, we show that optical pumping of a small fraction of ions with a fixed-frequency laser, coupled with spin-spin interactions and spin diffusion, leads to substantial spin polarization in a paramagnetic rare-earth doped crystal, ^{171}Yb^{3+}∶Y_{2}SiO_{5}. Indeed, more than 90% spin polarization has been achieved at 2 K and zero magnetic field. Using this spin polarization mechanism, we further demonstrate an increase in optical coherence lifetime from 0.3 ms to 0.8 ms, due to a strong decrease in spin-spin interactions. This effect opens the way to new schemes for obtaining long optical and spin coherence lifetimes in various solid-state systems such as ensembles of rare-earth ions or color centers in diamond, which are of interest for a broad range of quantum technologies.
url http://doi.org/10.1103/PhysRevX.10.031060
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