Serveur d'exploration sur les relations entre la France et l'Australie

Attention, ce site est en cours de développement !
Attention, site généré par des moyens informatiques à partir de corpus bruts.
Les informations ne sont donc pas validées.

Mini squeezers towards integrated systems

Identifieur interne : 001379 ( Main/Exploration ); précédent : 001378; suivant : 001380

Mini squeezers towards integrated systems

Auteurs : Alexandre Brieussel [France]

Source :

RBID : Hal:tel-01389218

Descripteurs français

English descriptors

Abstract

Squeezed states of light are quantum states that can be used in numerous protocols for quantum computation and quantum communication. Their generation in labora- tories has been investigated before, but they still lack compactness and practicality to easily integrate them into larger experiments. This thesis considers two experiments: one conducted in France, the miniOPO; and one conducted in Australia, the SquOPO. Both are new designs of compact sources of squeezed states of light towards an integrated system. The miniOPO is a linear cavity of 5mm length between the end of a fiber and a curved mirror with a PPKTP crystal of 1mm inside it. The squeezing generated in this cavity is coupled into the fiber to be able to be brought to a measurement device (homodyne) or to a larger experiment. The cavity is resonant for the squeezed light and the pump light, and locked in frequency using self-locking effects due to absorption of the pump in the crystal. The double resonance is achieved by changing the temperature of the crystal. Two different fibers have been tested in this experiment, a standard single-mode fiber and a photonic large core single-mode fiber. The squeezing obtained is still quite low (0.5dB with the standard fiber and 0.9dB for the photonic fiber) but a number of ameliorations are investigated to increase these levels in the future. The SqOPO is a monolithic square cavity made in a Lithium Niobate crystal using four total internal reflections on the four faces of the square to define an optical mode for the squeezed mode and the pump mode. The light is coupled in the resonator using frustrated internal reflection with prisms. The distance between the prisms and the resonator defined the coupling of the light, which allows us to control the finesse of the light in the resonator and by using birefringent prisms it is possible to tune independently the two frequencies in the resonator to achieve an optimal regime. The frequency of the light is locked using absorption of the pump light in the resonator to achieve self-locking, and double resonance is controlled by tuning the temperature of the crystal. We demonstrated 2.6dB of vacuum squeezing with this system. Once again, the amount of squeezing is low, but ameliorations that could be implemented in the future are discussed.

Url:


Affiliations:


Links toward previous steps (curation, corpus...)


Le document en format XML

<record>
<TEI>
<teiHeader>
<fileDesc>
<titleStmt>
<title xml:lang="en">Mini squeezers towards integrated systems</title>
<title xml:lang="fr">Mini squeezers vers des systèmes integrés</title>
<author>
<name sortKey="Brieussel, Alexandre" sort="Brieussel, Alexandre" uniqKey="Brieussel A" first="Alexandre" last="Brieussel">Alexandre Brieussel</name>
<affiliation wicri:level="1">
<hal:affiliation type="laboratory" xml:id="struct-109" status="VALID">
<idno type="RNSR">199812880N</idno>
<orgName>Laboratoire Kastler Brossel</orgName>
<orgName type="acronym">LKB (Jussieu)</orgName>
<desc>
<address>
<addrLine>Case 74 - Tour 12, 4 place Jussieu, F-75252 Paris CEDEX 05</addrLine>
<country key="FR"></country>
</address>
<ref type="url">http://www.lkb.ens.fr</ref>
</desc>
<listRelation>
<relation active="#struct-59704" type="direct"></relation>
<relation active="#struct-93591" type="direct"></relation>
<relation name="UMR8552" active="#struct-441569" type="direct"></relation>
</listRelation>
<tutelles>
<tutelle active="#struct-59704" type="direct">
<org type="institution" xml:id="struct-59704" status="VALID">
<orgName>École normale supérieure - Paris</orgName>
<orgName type="acronym">ENS Paris</orgName>
<desc>
<address>
<addrLine>45, Rue d'Ulm - 75230 Paris cedex 05</addrLine>
<country key="FR"></country>
</address>
<ref type="url">http://www.ens.fr</ref>
</desc>
</org>
</tutelle>
<tutelle active="#struct-93591" type="direct">
<org type="institution" xml:id="struct-93591" status="VALID">
<orgName>Université Pierre et Marie Curie - Paris 6</orgName>
<orgName type="acronym">UPMC</orgName>
<desc>
<address>
<addrLine>4 place Jussieu - 75005 Paris</addrLine>
<country key="FR"></country>
</address>
<ref type="url">http://www.upmc.fr/</ref>
</desc>
</org>
</tutelle>
<tutelle name="UMR8552" active="#struct-441569" type="direct">
<org type="institution" xml:id="struct-441569" status="VALID">
<idno type="IdRef">02636817X</idno>
<idno type="ISNI">0000000122597504</idno>
<orgName>Centre National de la Recherche Scientifique</orgName>
<orgName type="acronym">CNRS</orgName>
<date type="start">1939-10-19</date>
<desc>
<address>
<country key="FR"></country>
</address>
<ref type="url">http://www.cnrs.fr/</ref>
</desc>
</org>
</tutelle>
</tutelles>
</hal:affiliation>
<country>France</country>
</affiliation>
</author>
</titleStmt>
<publicationStmt>
<idno type="wicri:source">HAL</idno>
<idno type="RBID">Hal:tel-01389218</idno>
<idno type="halId">tel-01389218</idno>
<idno type="halUri">https://tel.archives-ouvertes.fr/tel-01389218</idno>
<idno type="url">https://tel.archives-ouvertes.fr/tel-01389218</idno>
<date when="2016-05-13">2016-05-13</date>
<idno type="wicri:Area/Hal/Corpus">000169</idno>
<idno type="wicri:Area/Hal/Curation">000169</idno>
<idno type="wicri:Area/Hal/Checkpoint">000041</idno>
<idno type="wicri:explorRef" wicri:stream="Hal" wicri:step="Checkpoint">000041</idno>
<idno type="wicri:Area/Main/Merge">001379</idno>
<idno type="wicri:Area/Main/Curation">001379</idno>
<idno type="wicri:Area/Main/Exploration">001379</idno>
</publicationStmt>
<sourceDesc>
<biblStruct>
<analytic>
<title xml:lang="en">Mini squeezers towards integrated systems</title>
<title xml:lang="fr">Mini squeezers vers des systèmes integrés</title>
<author>
<name sortKey="Brieussel, Alexandre" sort="Brieussel, Alexandre" uniqKey="Brieussel A" first="Alexandre" last="Brieussel">Alexandre Brieussel</name>
<affiliation wicri:level="1">
<hal:affiliation type="laboratory" xml:id="struct-109" status="VALID">
<idno type="RNSR">199812880N</idno>
<orgName>Laboratoire Kastler Brossel</orgName>
<orgName type="acronym">LKB (Jussieu)</orgName>
<desc>
<address>
<addrLine>Case 74 - Tour 12, 4 place Jussieu, F-75252 Paris CEDEX 05</addrLine>
<country key="FR"></country>
</address>
<ref type="url">http://www.lkb.ens.fr</ref>
</desc>
<listRelation>
<relation active="#struct-59704" type="direct"></relation>
<relation active="#struct-93591" type="direct"></relation>
<relation name="UMR8552" active="#struct-441569" type="direct"></relation>
</listRelation>
<tutelles>
<tutelle active="#struct-59704" type="direct">
<org type="institution" xml:id="struct-59704" status="VALID">
<orgName>École normale supérieure - Paris</orgName>
<orgName type="acronym">ENS Paris</orgName>
<desc>
<address>
<addrLine>45, Rue d'Ulm - 75230 Paris cedex 05</addrLine>
<country key="FR"></country>
</address>
<ref type="url">http://www.ens.fr</ref>
</desc>
</org>
</tutelle>
<tutelle active="#struct-93591" type="direct">
<org type="institution" xml:id="struct-93591" status="VALID">
<orgName>Université Pierre et Marie Curie - Paris 6</orgName>
<orgName type="acronym">UPMC</orgName>
<desc>
<address>
<addrLine>4 place Jussieu - 75005 Paris</addrLine>
<country key="FR"></country>
</address>
<ref type="url">http://www.upmc.fr/</ref>
</desc>
</org>
</tutelle>
<tutelle name="UMR8552" active="#struct-441569" type="direct">
<org type="institution" xml:id="struct-441569" status="VALID">
<idno type="IdRef">02636817X</idno>
<idno type="ISNI">0000000122597504</idno>
<orgName>Centre National de la Recherche Scientifique</orgName>
<orgName type="acronym">CNRS</orgName>
<date type="start">1939-10-19</date>
<desc>
<address>
<country key="FR"></country>
</address>
<ref type="url">http://www.cnrs.fr/</ref>
</desc>
</org>
</tutelle>
</tutelles>
</hal:affiliation>
<country>France</country>
</affiliation>
</author>
</analytic>
</biblStruct>
</sourceDesc>
</fileDesc>
<profileDesc>
<textClass>
<keywords scheme="mix" xml:lang="en">
<term>Compact squeezers</term>
<term>Photonic fiber</term>
<term>Wave guide</term>
</keywords>
<keywords scheme="mix" xml:lang="fr">
<term>Fibres</term>
<term>Fibres photoniques</term>
<term>Guide d'onde</term>
<term>OPO</term>
<term>Optique quantique</term>
<term>Vide comprimé</term>
</keywords>
</textClass>
</profileDesc>
</teiHeader>
<front>
<div type="abstract" xml:lang="en">Squeezed states of light are quantum states that can be used in numerous protocols for quantum computation and quantum communication. Their generation in labora- tories has been investigated before, but they still lack compactness and practicality to easily integrate them into larger experiments. This thesis considers two experiments: one conducted in France, the miniOPO; and one conducted in Australia, the SquOPO. Both are new designs of compact sources of squeezed states of light towards an integrated system. The miniOPO is a linear cavity of 5mm length between the end of a fiber and a curved mirror with a PPKTP crystal of 1mm inside it. The squeezing generated in this cavity is coupled into the fiber to be able to be brought to a measurement device (homodyne) or to a larger experiment. The cavity is resonant for the squeezed light and the pump light, and locked in frequency using self-locking effects due to absorption of the pump in the crystal. The double resonance is achieved by changing the temperature of the crystal. Two different fibers have been tested in this experiment, a standard single-mode fiber and a photonic large core single-mode fiber. The squeezing obtained is still quite low (0.5dB with the standard fiber and 0.9dB for the photonic fiber) but a number of ameliorations are investigated to increase these levels in the future. The SqOPO is a monolithic square cavity made in a Lithium Niobate crystal using four total internal reflections on the four faces of the square to define an optical mode for the squeezed mode and the pump mode. The light is coupled in the resonator using frustrated internal reflection with prisms. The distance between the prisms and the resonator defined the coupling of the light, which allows us to control the finesse of the light in the resonator and by using birefringent prisms it is possible to tune independently the two frequencies in the resonator to achieve an optimal regime. The frequency of the light is locked using absorption of the pump light in the resonator to achieve self-locking, and double resonance is controlled by tuning the temperature of the crystal. We demonstrated 2.6dB of vacuum squeezing with this system. Once again, the amount of squeezing is low, but ameliorations that could be implemented in the future are discussed.</div>
</front>
</TEI>
<affiliations>
<list>
<country>
<li>France</li>
</country>
</list>
<tree>
<country name="France">
<noRegion>
<name sortKey="Brieussel, Alexandre" sort="Brieussel, Alexandre" uniqKey="Brieussel A" first="Alexandre" last="Brieussel">Alexandre Brieussel</name>
</noRegion>
</country>
</tree>
</affiliations>
</record>

Pour manipuler ce document sous Unix (Dilib)

EXPLOR_STEP=$WICRI_ROOT/Wicri/Asie/explor/AustralieFrV1/Data/Main/Exploration
HfdSelect -h $EXPLOR_STEP/biblio.hfd -nk 001379 | SxmlIndent | more

Ou

HfdSelect -h $EXPLOR_AREA/Data/Main/Exploration/biblio.hfd -nk 001379 | SxmlIndent | more

Pour mettre un lien sur cette page dans le réseau Wicri

{{Explor lien
   |wiki=    Wicri/Asie
   |area=    AustralieFrV1
   |flux=    Main
   |étape=   Exploration
   |type=    RBID
   |clé=     Hal:tel-01389218
   |texte=   Mini squeezers towards integrated systems
}}

Wicri

This area was generated with Dilib version V0.6.33.
Data generation: Tue Dec 5 10:43:12 2017. Site generation: Tue Mar 5 14:07:20 2024