Cargando…

Luminescence nanothermometry using a trivalent lanthanide co-doped perovskite

This study investigates in detail the laser-mediated upconversion emission and temperature-sensing capability of (Ca(0.99−a)Yb(0.01)Er(a))TiO(3). Samples were prepared at different concentrations to observe the effect of erbium on upconversion while increasing its concentration and keeping all the o...

Descripción completa

Detalles Bibliográficos
Autores principales: Singh, Prashansha, Jain, Neha, Shukla, Shraddha, Tiwari, Anish Kumar, Kumar, Kaushal, Singh, Jai, Pandey, Avinash C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9847348/
https://www.ncbi.nlm.nih.gov/pubmed/36756403
http://dx.doi.org/10.1039/d2ra05935e
_version_ 1784871433148563456
author Singh, Prashansha
Jain, Neha
Shukla, Shraddha
Tiwari, Anish Kumar
Kumar, Kaushal
Singh, Jai
Pandey, Avinash C.
author_facet Singh, Prashansha
Jain, Neha
Shukla, Shraddha
Tiwari, Anish Kumar
Kumar, Kaushal
Singh, Jai
Pandey, Avinash C.
author_sort Singh, Prashansha
collection PubMed
description This study investigates in detail the laser-mediated upconversion emission and temperature-sensing capability of (Ca(0.99−a)Yb(0.01)Er(a))TiO(3). Samples were prepared at different concentrations to observe the effect of erbium on upconversion while increasing its concentration and keeping all the other parameters constant. Doping is a widespread technological process which involves incorporating an element called a dopant in a lower ratio to the host lattice to derive hybrid materials with desired properties. The (Ca(0.99−a)Yb(0.01)Er(a))TiO(3) perovskite nanoparticles were synthesized via a sol–gel technique. The frequency upconversion was performed using a 980 nm laser diode excitation source. X-ray diffractometry (XRD) confirmed that the synthesized samples are crystalline in nature and have an orthorhombic structure. The temperature-sensing ability was examined using the fluorescence intensity ratio (FIR) algorithm of two emission bands ((2)H(11/2) → (4)I(15/2) and (4)S(3/2) → (4)I(15/2)) of the Er(3+) ion. Temperature-dependent upconversion luminescence is observed over a broad temperature range of 298–623 K. The maximum sensor sensitivity obtained is 6.71 × 10(−3) K(−1) at 110°.
format Online
Article
Text
id pubmed-9847348
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-98473482023-02-07 Luminescence nanothermometry using a trivalent lanthanide co-doped perovskite Singh, Prashansha Jain, Neha Shukla, Shraddha Tiwari, Anish Kumar Kumar, Kaushal Singh, Jai Pandey, Avinash C. RSC Adv Chemistry This study investigates in detail the laser-mediated upconversion emission and temperature-sensing capability of (Ca(0.99−a)Yb(0.01)Er(a))TiO(3). Samples were prepared at different concentrations to observe the effect of erbium on upconversion while increasing its concentration and keeping all the other parameters constant. Doping is a widespread technological process which involves incorporating an element called a dopant in a lower ratio to the host lattice to derive hybrid materials with desired properties. The (Ca(0.99−a)Yb(0.01)Er(a))TiO(3) perovskite nanoparticles were synthesized via a sol–gel technique. The frequency upconversion was performed using a 980 nm laser diode excitation source. X-ray diffractometry (XRD) confirmed that the synthesized samples are crystalline in nature and have an orthorhombic structure. The temperature-sensing ability was examined using the fluorescence intensity ratio (FIR) algorithm of two emission bands ((2)H(11/2) → (4)I(15/2) and (4)S(3/2) → (4)I(15/2)) of the Er(3+) ion. Temperature-dependent upconversion luminescence is observed over a broad temperature range of 298–623 K. The maximum sensor sensitivity obtained is 6.71 × 10(−3) K(−1) at 110°. The Royal Society of Chemistry 2023-01-18 /pmc/articles/PMC9847348/ /pubmed/36756403 http://dx.doi.org/10.1039/d2ra05935e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Singh, Prashansha
Jain, Neha
Shukla, Shraddha
Tiwari, Anish Kumar
Kumar, Kaushal
Singh, Jai
Pandey, Avinash C.
Luminescence nanothermometry using a trivalent lanthanide co-doped perovskite
title Luminescence nanothermometry using a trivalent lanthanide co-doped perovskite
title_full Luminescence nanothermometry using a trivalent lanthanide co-doped perovskite
title_fullStr Luminescence nanothermometry using a trivalent lanthanide co-doped perovskite
title_full_unstemmed Luminescence nanothermometry using a trivalent lanthanide co-doped perovskite
title_short Luminescence nanothermometry using a trivalent lanthanide co-doped perovskite
title_sort luminescence nanothermometry using a trivalent lanthanide co-doped perovskite
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9847348/
https://www.ncbi.nlm.nih.gov/pubmed/36756403
http://dx.doi.org/10.1039/d2ra05935e
work_keys_str_mv AT singhprashansha luminescencenanothermometryusingatrivalentlanthanidecodopedperovskite
AT jainneha luminescencenanothermometryusingatrivalentlanthanidecodopedperovskite
AT shuklashraddha luminescencenanothermometryusingatrivalentlanthanidecodopedperovskite
AT tiwarianishkumar luminescencenanothermometryusingatrivalentlanthanidecodopedperovskite
AT kumarkaushal luminescencenanothermometryusingatrivalentlanthanidecodopedperovskite
AT singhjai luminescencenanothermometryusingatrivalentlanthanidecodopedperovskite
AT pandeyavinashc luminescencenanothermometryusingatrivalentlanthanidecodopedperovskite