Preview

Doklady BGUIR

Advanced search

ADVANCED TECHNOLOGY OF LUMINOPHOR SCREENS FOR SOLID RADIOLUMINESCENT LIGHT SOURCES

https://doi.org/10.35596/1729-7648-2019-125-7-59-66

Abstract

The article observes different methods of coating the phosphor screens on the tritiated titanium matrices for creating the solid-state radioluminescent light sources (SRLS). Technology of SRLS is alternative to the existing technology of the gas-filled radioluminescent light sources. The main idea of SRLS is in bonding the working isotope (tritium) in the solid matrix and combining it with the phosphor. The key problem of SRLS is to provide the closest contact between the tritiated carrier matrix and phosphor screen. The basic requirements for the phosphor screens for SRLS would be the strength of fixation on the plate, uniformity and radiological and thermal stability. There have been made a comparison of various techniques of coating and fixing the phosphor screens by their effect on spectral and brightness characteristics of SRLS. The improved sol-gel technique of suspended sedimentation of phosphor screen from the potassium water glass binder solution was developed. The composition of the solution was established experimentally and we get the strong and uniform experimental prototypes of the glass coated phosphor screens of various thickness. The developed technology allows to deposit the strong and uniform phosphor coatings without using any additional dispersing agents. Screen thickness regulates by the amount of phosphor in the suspension. Also the optimal thickness of the phosphor screen, giving the maximum luminescence intensity was determined. The two laboratory prototypes of solid-state radioluminescent light sources were manufactured by coating the phosphor directly on the tritium β-source.

About the Authors

E. V. Zelenina
Saint-Petersburg State Institute of Technology, Material Science Department; Khlopin Radium Institute
Russian Federation

Zelenina Elena Vladimirovna, PG student of the Department of Theoretical Foundations of Materials Science, head of the Department of Innovative Development

190013, Russian Federation, Saint-Petersburg, Moskovsky av., 26

tel. 8-921-406-19-98



E. A. Pechertseva
Saint-Petersburg State Institute of Technology, Material Science Department; Khlopin Radium Institute
Russian Federation

Student of the Department of Radiation Technology, engineer of the Department of Isotope Technology

190013, Russian Federation, Saint-Petersburg, Moskovsky av., 26

tel. 8-921-406-19-98



V. V. Bakhmetyev
Saint-Petersburg State Institute of Technology, Material Science Department
Russian Federation

Ph.D., head of Laboratory, Associate Professor, Department of Theoretical Foundations of Materials Science

190013, Russian Federation, Saint-Petersburg, Moskovsky av., 26

tel. 8-921-406-19-98



M. M. Sychov
Saint-Petersburg State Institute of Technology, Material Science Department
Russian Federation

D.Sci, head of Department, Professor, Department of Theoretical Foundations of Materials Science

190013, Russian Federation, Saint-Petersburg, Moskovsky av., 26

tel. 8-921-406-19-98



References

1. Ellefson R.E. High pressure bulk-phosphor tritium lamps. Technology transfer conference procceedings, 1990, U. S. DOE Washington, DC 20585.

2. Bower K.E. Polymers, phosphors, and voltaics for radioisotope microbatteries. 1. New York, CRCPress LLC, 2002.

3. Zelenina E.V., Sychov M.M., Kostylev A.I., Ogurtsov K.A. Prospects for the development of tritium-based solidstate radioluminescent light sources. Radiochemistry. 2019; 61:1, DOI: 10.1134/S1066362219010089.

4. Rodnyi P.A. Physical processes in inorganic scintillators. 1. New York, CRCPress LLC, 1997.

5. Zelenina E.V., Bakhmetyev V.V., Sychov M.M. Optimized technique of phosphor screens coating for the tritium radioluminescent light sources. IX conf. «Radiochemistry 2018», book of thesis, Saint-Petersburg. 2018. http://radiochemistry2018.ru.

6. William M. Yen, Marvin J. Weber. Inorganic phosphors: compositions, preparation, and optical properties. New York, CRCPress LLC, 2004.

7. Tompkins J.A. et al. Tritide based radioluminescent light sources in radioluminescent lighting technology. Technology transfer conference procceedings, 1990, U. S. DOE Washington, DC 20585.

8. Renschler C.L., Gill J.T., Walko R.J., Ashley C.S., Shepodd T.J., Reed S.1., Malone G.M., Leonard L.E., Ellefson R.E. and Clough R.L. Solid-State radioluminescent lighting. Radiat. Phys. Chem. 1994; 44: 6

9. Shionoya S., Yen W.M. (Eds.). Phosphor Handbook. 2. New York, CRCPress LLC, 2006.

10. Baranovsky V.I. Manufacturing technology of receiving electron-beam tubes. 2. Moscow, Energy, 1970.

11. Zelenina E., Bakhmetyev V., Pechertseva E., Sychov M.A modified sol-gel technique of phosphor screens preparation for tritium solid-state radioluminescent light sources (SRLS). J. of Sol-Gel Science and Technology. 2019. doi:10.1007/s10971-019-05022-2.


Review

For citations:


Zelenina E.V., Pechertseva E.A., Bakhmetyev V.V., Sychov M.M. ADVANCED TECHNOLOGY OF LUMINOPHOR SCREENS FOR SOLID RADIOLUMINESCENT LIGHT SOURCES. Doklady BGUIR. 2019;(7 (125)):59-66. (In Russ.) https://doi.org/10.35596/1729-7648-2019-125-7-59-66

Views: 5756


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 1729-7648 (Print)
ISSN 2708-0382 (Online)