Photonic and Optomechanical Thermometry
Publiceringsår
2022
Upphovspersoner
Briant, Tristan; Krenek, Stephen; Cupertino, Andrea; Loubar, Ferhat; Braive, Rémy; Weituschat, Lukas; Ramos, Daniel; Martin, Maria Jose; Postigo, Pablo A.; Casas, Alberto; Eisermann, Réne; Schmid, Daniel; Tabandeh, Shahin; Hahtela, Ossi; Pourjamal, Sara; Kozlova, Olga; Kroker, Stefanie; Dickmann, Walter; Zimmermann, Lars; Winzer, Georg; Martel, Théo; Steeneken, Peter G.; Norte, Richard A.; Briaudeau, Stéphan
Visa merAbstrakt
Temperature is one of the most relevant physical quantities that affects almost all processes in nature. However, the realization of accurate temperature standards using current temperature references, like the triple point of water, is difficult due to the requirements on material purity and stability of the environment. In addition, in harsh environments, current temperature sensors with electrical readout, like platinum resistors, are difficult to implement, urging the development of optical temperature sensors. In 2018, the European consortium Photoquant, consisting of metrological institutes and academic partners, started investigating new temperature standards for self-calibrated, embedded optomechanical sensor applications, as well as optimised high resolution and high reliability photonic sensors, to measure temperature at the nano and meso-scales and as a possible replacement for the standard platinum resistant thermometers. This article presents an overview of the results obtained with sensor prototypes that exploit photonic and optomechanical techniques for sensing temperatures over a large temperature range (5 K to 300 K). Different concepts are demonstrated, including ring resonators, ladder-like resonators and suspended membrane optomechanical thermometers, highlighting initial performance and challenges, like self-heating that need to be overcome to realize photonic and optomechanical thermometry applications.
Visa merOrganisationer och upphovspersoner
Publikationstyp
Publikationsform
Artikel
Moderpublikationens typ
Tidning
Artikelstyp
En originalartikel
Målgrupp
VetenskapligKollegialt utvärderad
Kollegialt utvärderadUKM:s publikationstyp
A1 Originalartikel i en vetenskaplig tidskriftPublikationskanalens uppgifter
Öppen tillgång
Öppen tillgänglighet i förläggarens tjänst
Ja
Öppen tillgång till publikationskanalen
Helt öppen publikationskanal
Licens för förläggarens version
CC BY
Parallellsparad
Nej
Övriga uppgifter
Vetenskapsområden
El-, automations- och telekommunikationsteknik, elektronik
Nyckelord
[object Object],[object Object],[object Object],[object Object],[object Object]
Språk
engelska
Internationell sampublikation
Ja
Sampublikation med ett företag
Nej
DOI
10.3390/opt3020017
Publikationen ingår i undervisnings- och kulturministeriets datainsamling
Ja