Effects of fabrication methods on spin relaxation and crystallite quality in Tm-doped Y3Al5O12 powders studied using spectral hole burning

High-quality rare-earth-ion (REI) doped materials are a prerequisite for many applications such as quantum memories, ultra-high-resolution optical spectrum analyzers and information processing. Compared to bulk materials, REI doped powders offer low-cost fabrication and a greater range of accessible...

Full description

Bibliographic Details
Main Authors: Thomas Lutz, Lucile Veissier, Charles W. Thiel, Philip J. T. Woodburn, Rufus L. Cone, Paul E. Barclay, Wolfgang Tittel
Format: Article
Language:English
Published: Taylor & Francis Group 2016-01-01
Series:Science and Technology of Advanced Materials
Subjects:
Online Access:http://dx.doi.org/10.1080/14686996.2016.1148528
id doaj-2a134dc010d84c20b513052a3ac5c155
record_format Article
spelling doaj-2a134dc010d84c20b513052a3ac5c1552021-07-06T11:30:13ZengTaylor & Francis GroupScience and Technology of Advanced Materials1468-69961878-55142016-01-01171637010.1080/14686996.2016.11485281148528Effects of fabrication methods on spin relaxation and crystallite quality in Tm-doped Y3Al5O12 powders studied using spectral hole burningThomas Lutz0Lucile Veissier1Charles W. Thiel2Philip J. T. Woodburn3Rufus L. Cone4Paul E. Barclay5Wolfgang Tittel6 Department of Physics & Astronomy, Institute for Quantum Science and Technology, University of Calgary Department of Physics & Astronomy, Institute for Quantum Science and Technology, University of Calgary Department of Physics, Montana State University Department of Physics, Montana State University Department of Physics, Montana State University Department of Physics & Astronomy, Institute for Quantum Science and Technology, University of Calgary Department of Physics & Astronomy, Institute for Quantum Science and Technology, University of Calgary High-quality rare-earth-ion (REI) doped materials are a prerequisite for many applications such as quantum memories, ultra-high-resolution optical spectrum analyzers and information processing. Compared to bulk materials, REI doped powders offer low-cost fabrication and a greater range of accessible material systems. Here we show that crystal properties, such as nuclear spin lifetime, are strongly affected by mechanical treatment, and that spectral hole burning can serve as a sensitive method to characterize the quality of REI doped powders. We focus on the specific case of thulium doped $$ \mathrm{Y}_3\mathrm{Al}_5\mathrm{O}_{12} $$ (Tm:YAG). Different methods for obtaining the powders are compared and the influence of annealing on the spectroscopic quality of powders is investigated on a few examples. We conclude that annealing can reverse some detrimental effects of powder fabrication and, in certain cases, the properties of the bulk material can be reached. Our results may be applicable to other impurities and other crystals, including color centers in nano-structured diamond.http://dx.doi.org/10.1080/14686996.2016.1148528rare earth ion doped powderspowder processingpowder synthesisannealingspectral hole burning
collection DOAJ
language English
format Article
sources DOAJ
author Thomas Lutz
Lucile Veissier
Charles W. Thiel
Philip J. T. Woodburn
Rufus L. Cone
Paul E. Barclay
Wolfgang Tittel
spellingShingle Thomas Lutz
Lucile Veissier
Charles W. Thiel
Philip J. T. Woodburn
Rufus L. Cone
Paul E. Barclay
Wolfgang Tittel
Effects of fabrication methods on spin relaxation and crystallite quality in Tm-doped Y3Al5O12 powders studied using spectral hole burning
Science and Technology of Advanced Materials
rare earth ion doped powders
powder processing
powder synthesis
annealing
spectral hole burning
author_facet Thomas Lutz
Lucile Veissier
Charles W. Thiel
Philip J. T. Woodburn
Rufus L. Cone
Paul E. Barclay
Wolfgang Tittel
author_sort Thomas Lutz
title Effects of fabrication methods on spin relaxation and crystallite quality in Tm-doped Y3Al5O12 powders studied using spectral hole burning
title_short Effects of fabrication methods on spin relaxation and crystallite quality in Tm-doped Y3Al5O12 powders studied using spectral hole burning
title_full Effects of fabrication methods on spin relaxation and crystallite quality in Tm-doped Y3Al5O12 powders studied using spectral hole burning
title_fullStr Effects of fabrication methods on spin relaxation and crystallite quality in Tm-doped Y3Al5O12 powders studied using spectral hole burning
title_full_unstemmed Effects of fabrication methods on spin relaxation and crystallite quality in Tm-doped Y3Al5O12 powders studied using spectral hole burning
title_sort effects of fabrication methods on spin relaxation and crystallite quality in tm-doped y3al5o12 powders studied using spectral hole burning
publisher Taylor & Francis Group
series Science and Technology of Advanced Materials
issn 1468-6996
1878-5514
publishDate 2016-01-01
description High-quality rare-earth-ion (REI) doped materials are a prerequisite for many applications such as quantum memories, ultra-high-resolution optical spectrum analyzers and information processing. Compared to bulk materials, REI doped powders offer low-cost fabrication and a greater range of accessible material systems. Here we show that crystal properties, such as nuclear spin lifetime, are strongly affected by mechanical treatment, and that spectral hole burning can serve as a sensitive method to characterize the quality of REI doped powders. We focus on the specific case of thulium doped $$ \mathrm{Y}_3\mathrm{Al}_5\mathrm{O}_{12} $$ (Tm:YAG). Different methods for obtaining the powders are compared and the influence of annealing on the spectroscopic quality of powders is investigated on a few examples. We conclude that annealing can reverse some detrimental effects of powder fabrication and, in certain cases, the properties of the bulk material can be reached. Our results may be applicable to other impurities and other crystals, including color centers in nano-structured diamond.
topic rare earth ion doped powders
powder processing
powder synthesis
annealing
spectral hole burning
url http://dx.doi.org/10.1080/14686996.2016.1148528
work_keys_str_mv AT thomaslutz effectsoffabricationmethodsonspinrelaxationandcrystallitequalityintmdopedy3al5o12powdersstudiedusingspectralholeburning
AT lucileveissier effectsoffabricationmethodsonspinrelaxationandcrystallitequalityintmdopedy3al5o12powdersstudiedusingspectralholeburning
AT charleswthiel effectsoffabricationmethodsonspinrelaxationandcrystallitequalityintmdopedy3al5o12powdersstudiedusingspectralholeburning
AT philipjtwoodburn effectsoffabricationmethodsonspinrelaxationandcrystallitequalityintmdopedy3al5o12powdersstudiedusingspectralholeburning
AT rufuslcone effectsoffabricationmethodsonspinrelaxationandcrystallitequalityintmdopedy3al5o12powdersstudiedusingspectralholeburning
AT paulebarclay effectsoffabricationmethodsonspinrelaxationandcrystallitequalityintmdopedy3al5o12powdersstudiedusingspectralholeburning
AT wolfgangtittel effectsoffabricationmethodsonspinrelaxationandcrystallitequalityintmdopedy3al5o12powdersstudiedusingspectralholeburning
_version_ 1721317510027935744