A novel optical thermometry based on the energy transfer from charge transfer band to Eu3+-Dy3+ ions in SrWO4
- Abstract
- Optical thermometry based on the up-conversion intensity ratio of thermally coupled levels of rare earth ions has been widely studied to achieve an inaccessible temperature measurement in submicron scale. In this work, a novel optical temperature sensing strategy based on the energy transfer from charge transfer bands of W-O and Eu-O to Eu3+-Dy3+ ions is proposed. A series of Eu3+/Dy3+ co-doped SrWO4 is synthesized by the conventional high-temperature solid-state method. It is found that the emission spectra, emission intensity ratio of Dy3+ (572 nm) and Eu3+ (615 nm), fluorescence color, lifetime decay curves of Dy3+ (572 nm) and Eu3+ (615 nm), and relative and absolute sensitivities of Eu3+/Dy3+ co-doped SrWO4 are temperature dependent under the 266 nm excitation in the temperature range from 11 K to 529 K. The emission intensity ratio of Dy3+ (572 nm) and Eu3+ (615 nm) ions exhibits exponentially relation to the temperature due to the different energy transfer from the charge transfer bands to Dy3+ and Eu3+ ions. In this host, the maximum relative sensitivity Sr can be reached as high as 1.71% K-1, being much higher than those previously reported material. It opens a new route to obtain optical thermometry with high sensitivity through using down-conversion fluorescence under ultraviolet excitation.
- Author(s)
- Jing Wang
- Issued Date
- 2017
- Awarded Date
- 2017. 8
- Type
- Dissertation
- Publisher
- 부경대학교
- URI
- https://repository.pknu.ac.kr:8443/handle/2021.oak/14276
http://pknu.dcollection.net/common/orgView/000002379551
- Affiliation
- 부경대학교 대학원
- Department
- 대학원 의생명융합공학협동과정
- Advisor
- Hyo Jin Seo
- Table Of Contents
- Abstract ii
1. Introduction 1
2. Background and methods of optical temperature sensing 3
2.1. Temperature dependent nonradiative processes of lanthanide luminescence 4
2.2. Methods of optical temperature sensing 9
3. Sample preparation and spectroscopic measurement 11
3.1. Sample preparation 11
3.2. Characterization 12
4. Results and discussion 13
4.1. Structure and morphology 13
4.1.1. X-ray diffraction patterns of SrWO4 13
4.1.2. Morphology and composition 17
4.2. Luminescence properties of SrWO4: Eu3+, Dy3+ 20
4.2.1. Excitation and emission spectra 20
4.2.2. Optical temperature sensing performance 27
5. Conclusions 37
Acknowledgements 38
References 39
- Degree
- Master
-
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- 대학원 > 의생명융합공학협동과정
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