Optimization of Temperature Sensing with Polymer-Embedded Luminescent Ru(II) Complexes

Temperature is a key parameter in many fields and luminescence-based temperature sensing is a solution for those applications in which traditional (mechanical, electrical, or IR-based) thermometers struggle. Amongst the indicator dyes for luminescence thermometry, Ru(II) polyazaheteroaromatic comple...

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Main Authors: Nelia Bustamante, Guido Ielasi, Maximino Bedoya, Guillermo Orellana
Format: Article
Language:English
Published: MDPI AG 2018-02-01
Series:Polymers
Subjects:
Online Access:http://www.mdpi.com/2073-4360/10/3/234
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spelling doaj-170f8e7a9ee347f7929833d2ff67dcc72020-11-24T20:42:47ZengMDPI AGPolymers2073-43602018-02-0110323410.3390/polym10030234polym10030234Optimization of Temperature Sensing with Polymer-Embedded Luminescent Ru(II) ComplexesNelia Bustamante0Guido Ielasi1Maximino Bedoya2Guillermo Orellana3Chemical Optosensors and Applied Photochemistry Group (GSOLFA), Department of Organic Chemistry, Faculty of Chemistry, Universidad Complutense de Madrid, E-28040 Madrid, SpainChemical Optosensors and Applied Photochemistry Group (GSOLFA), Department of Organic Chemistry, Faculty of Chemistry, Universidad Complutense de Madrid, E-28040 Madrid, SpainChemical Optosensors and Applied Photochemistry Group (GSOLFA), Department of Organic Chemistry, Faculty of Chemistry, Universidad Complutense de Madrid, E-28040 Madrid, SpainChemical Optosensors and Applied Photochemistry Group (GSOLFA), Department of Organic Chemistry, Faculty of Chemistry, Universidad Complutense de Madrid, E-28040 Madrid, SpainTemperature is a key parameter in many fields and luminescence-based temperature sensing is a solution for those applications in which traditional (mechanical, electrical, or IR-based) thermometers struggle. Amongst the indicator dyes for luminescence thermometry, Ru(II) polyazaheteroaromatic complexes are an appealing option to profit from the widespread commercial technologies for oxygen optosensing based on them. Six ruthenium dyes have been studied, engineering their structure for both photostability and highest temperature sensitivity of their luminescence. The most apt Ru(II) complex turned out to be bis(1,10-phenanthroline)(4-chloro-1,10-phenanthroline)ruthenium(II), due to the combination of two strong-field chelating ligands (phen) and a substituent with electron withdrawing effect on a conjugated position of the third ligand (4-Clphen). In order to produce functional sensors, the dye has been best embedded into poly(ethyl cyanoacrylate), due to its low permeability to O2, high temperature sensitivity of the indicator dye incorporated into this polymer, ease of fabrication, and excellent optical quality. Thermosensitive elements have been fabricated thereof as optical fiber tips for macroscopic applications (water courses monitoring) and thin spots for microscopic uses (temperature measurements in cell culture-on-a-chip). With such dye/polymer combination, temperature sensing based on luminescence lifetime measurements allows 0.05 °C resolution with linear response in the range of interest (0–40 °C).http://www.mdpi.com/2073-4360/10/3/234temperatureluminescent sensorsluminescence lifetimeoptical fiberRu(II) dyespoly(ethyl cyanoacrylate)water monitoring
collection DOAJ
language English
format Article
sources DOAJ
author Nelia Bustamante
Guido Ielasi
Maximino Bedoya
Guillermo Orellana
spellingShingle Nelia Bustamante
Guido Ielasi
Maximino Bedoya
Guillermo Orellana
Optimization of Temperature Sensing with Polymer-Embedded Luminescent Ru(II) Complexes
Polymers
temperature
luminescent sensors
luminescence lifetime
optical fiber
Ru(II) dyes
poly(ethyl cyanoacrylate)
water monitoring
author_facet Nelia Bustamante
Guido Ielasi
Maximino Bedoya
Guillermo Orellana
author_sort Nelia Bustamante
title Optimization of Temperature Sensing with Polymer-Embedded Luminescent Ru(II) Complexes
title_short Optimization of Temperature Sensing with Polymer-Embedded Luminescent Ru(II) Complexes
title_full Optimization of Temperature Sensing with Polymer-Embedded Luminescent Ru(II) Complexes
title_fullStr Optimization of Temperature Sensing with Polymer-Embedded Luminescent Ru(II) Complexes
title_full_unstemmed Optimization of Temperature Sensing with Polymer-Embedded Luminescent Ru(II) Complexes
title_sort optimization of temperature sensing with polymer-embedded luminescent ru(ii) complexes
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2018-02-01
description Temperature is a key parameter in many fields and luminescence-based temperature sensing is a solution for those applications in which traditional (mechanical, electrical, or IR-based) thermometers struggle. Amongst the indicator dyes for luminescence thermometry, Ru(II) polyazaheteroaromatic complexes are an appealing option to profit from the widespread commercial technologies for oxygen optosensing based on them. Six ruthenium dyes have been studied, engineering their structure for both photostability and highest temperature sensitivity of their luminescence. The most apt Ru(II) complex turned out to be bis(1,10-phenanthroline)(4-chloro-1,10-phenanthroline)ruthenium(II), due to the combination of two strong-field chelating ligands (phen) and a substituent with electron withdrawing effect on a conjugated position of the third ligand (4-Clphen). In order to produce functional sensors, the dye has been best embedded into poly(ethyl cyanoacrylate), due to its low permeability to O2, high temperature sensitivity of the indicator dye incorporated into this polymer, ease of fabrication, and excellent optical quality. Thermosensitive elements have been fabricated thereof as optical fiber tips for macroscopic applications (water courses monitoring) and thin spots for microscopic uses (temperature measurements in cell culture-on-a-chip). With such dye/polymer combination, temperature sensing based on luminescence lifetime measurements allows 0.05 °C resolution with linear response in the range of interest (0–40 °C).
topic temperature
luminescent sensors
luminescence lifetime
optical fiber
Ru(II) dyes
poly(ethyl cyanoacrylate)
water monitoring
url http://www.mdpi.com/2073-4360/10/3/234
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