4.8 Article

Luminescent Nanothermometer Operating at Very High Temperature-Sensing up to 1000 K with Upconverting Nanoparticles (Yb3+/Tm3+)

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 12, 期 39, 页码 43933-43941

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.0c13011

关键词

luminescence thermometry; optical sensors; luminescent nanomaterials; thermally and non-thermally coupled levels; lanthanide ions; extreme conditions

资金

  1. Polish National Science Centre [2018/31/N/ST4/00684, 2018/31/N/ST5/00636]
  2. Ministerio de Economia y Competitividad (MINECO) under the Spanish National Program of Materials [MAT2016-75586-C4-4-P]
  3. Ministerio de Ciencia e Innovacion (MICIIN) under the National Program of Sciences and Technological Materials [PID2019-106383GB-C44, PID2019-107335RA-I00]
  4. Agencia Canaria de Investigacion, Innovacion y Sociedad de la Informacion (ACIISI) [ProID2017010078]
  5. European Union through the European Social Fund under the Operational Program Knowledge Education Development [POWR.03.02.00-00-I023/17]
  6. EU-FEDER funds
  7. Bekker Programme scholarship - Polish National Agency for Academic Exchange

向作者/读者索取更多资源

Lanthanide-based luminescent nanothermometers play a crucial role in optical temperature determination. However, because of the strong thermal quenching of the luminescence, as well as the deterioration of their sensitivity and resolution with temperature elevation, they can operate in a relatively low-temperature range, usually from cryogenic to approximate to 800 K. In this work, we show how to overcome these limitations and monitor very high-temperature values, with high sensitivity (approximate to 2.1% K-1) and good thermal resolution (approximate to 1.4 K) at around 1000 K. As an optical probe of temperature, we chose upconverting Yb3+-Tm3+ codoped YVO4 nanoparticles. For ratiometric sensing in the low-temperature range, we used the relative intensities of the Tm3+ emissions associated with the F-3(2,3) and H-3(4) thermally coupled levels, that is, F-3(2,3) -> H-3(6)/H-3(4) -> H-3(6) (700/800 nm) band intensity ratio. In order to improve sensitivity and resolution in the high-temperature range, we used the 940/800 nm band intensity ratio of the nonthermally coupled levels of Yb3+ (F-2(5/2) -> F-2(7/2)) and Tm3+ (H-3(4) -> H-3(6) ). These NIR bands are very intense, even at extreme temperature values, and their intensity ratio changes significantly, allowing accurate temperature sensing with high thermal and spatial resolutions. The results presented in this work may be particularly important for industrial applications, such as metallurgy, catalysis, high-temperature synthesis, materials processing and engineering, and so forth, which require rapid, contactless temperature monitoring at extreme conditions.

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