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Related Concept Videos

Temperature Measurement Sites01:14

Temperature Measurement Sites

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A thermometer measures body temperature. The common sites for measuring body temperature are the oral cavity, axillary region, temporal artery, and skin surface, such as the forehead, abdomen, and axilla. True core body temperature is assessed in the rectum, tympanic membrane, pulmonary artery, esophagus, and urinary bladder.
Oral: When assessing oral temperature, the thermometer tip should be placed under the tongue in the posterior sublingual pocket. It offers accurate readings and can be...
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Related Experiment Video

Updated: Sep 19, 2025

High-resolution Thermal Micro-imaging Using Europium Chelate Luminescent Coatings
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High-Sensitivity Optoelectronic Temperature Sensing Using Rare Earth Luminescent Materials for Antenna Radome

Ziyue Ju1, Yaqi Shi1, Fanbo Meng1

  • 1State Key Laboratory of Electromechanical Integrated Manufacturing of High-performance Electronic Equipment, School of Mechano-Electronic Engineering, School of Life Science and Technology, Xidian University, Xi'an, Shaanxi 710071, P. R. China.

ACS Applied Materials & Interfaces
|June 6, 2025
PubMed
Summary

A novel composite material, TiO2@Y2Ti2O7@YOF:Yb,Tm (TYY), enables highly sensitive optical temperature sensing. This material offers potential for advanced industrial temperature monitoring applications.

Keywords:
high-sensitivity optical temperature sensinghighly polar O-metal bondindustrial temperature monitoringlattice distortionratio-metric fluorescence temperature sensor

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Area of Science:

  • Materials Science
  • Nanotechnology
  • Optical Sensors

Background:

  • Developing advanced materials for precise optical temperature sensing is crucial for industrial applications.
  • Enhancing the sensitivity and reliability of temperature sensors requires novel material design strategies.

Purpose of the Study:

  • To design and synthesize a multilayer composite material, TiO2@Y2Ti2O7@YOF:Yb,Tm (TYY), for high-sensitivity optical temperature sensing.
  • To investigate the material's performance in both ratiometric and single-peak fluorescence modes.
  • To demonstrate the practical application of the sensor in industrial settings.

Main Methods:

  • Fabrication of a multilayer composite material (TYY) utilizing a polar O-metal bond.
  • Characterization using X-ray diffraction (XRD) to analyze structural properties.
  • Optical measurements to evaluate temperature sensing performance based on fluorescence emission peaks.
  • Testing the sensor for internal temperature detection in an antenna radome.

Main Results:

  • A ratiometric fluorescence temperature sensor achieved ultrahigh sensitivity of 5.8%·K⁻¹ at 303 K.
  • A single-peak fluorescence intensity sensor demonstrated high sensitivity of 2.2%·K⁻¹ at 413 K.
  • XRD analysis confirmed lattice distortion enhancing sensitivity due to thermal expansion differences.

Conclusions:

  • The TYY composite material exhibits excellent performance for optical temperature sensing.
  • The material's sensitivity is enhanced by structural modifications and strong crystal field interactions.
  • The developed sensor shows significant potential for real-time industrial temperature monitoring.