Kinetics and quantum trajectories of luminescence intensity of single-color centers in sodium fluoride crystals
- Autores: Protasova Е.А.1, Rakevich A.L.1, Martynovich Е.F.1
- 
							Afiliações: 
							- Irkutsk Branch of Institute of Laser Physics of the Siberian Branch of the Russian Academy of Sciences
 
- Edição: Volume 88, Nº 7 (2024)
- Páginas: 1033-1038
- Seção: Luminescence and Laser Physics
- URL: https://cardiosomatics.ru/0367-6765/article/view/676724
- DOI: https://doi.org/10.31857/S0367676524070055
- EDN: https://elibrary.ru/PCIFRF
- ID: 676724
Citar
Texto integral
 Acesso aberto
		                                Acesso aberto Acesso está concedido
						Acesso está concedido Acesso é pago ou somente para assinantes
		                                							Acesso é pago ou somente para assinantes
		                                					Resumo
For the first time we studied the single-color centers in sodium fluoride crystals. The quantum intensity trajectories of three types of luminescence centers emitting in the visible region of the spectrum were observed; one of which is the F3+-center. The blinking of quantum trajectories is caused by transitions of the centers from the excited singlet state to the triplet state and, further, to the main singlet state. The average lifetime of the main triplet state for F3+-centers measured from observations of quantum trajectories of luminescence of single centers is 1.9 s, which coincides with the results of past measurements on the decay kinetics of triplet luminescence of ensemble of F3+-centers.
Texto integral
 
												
	                        Sobre autores
Е. Protasova
Irkutsk Branch of Institute of Laser Physics of the Siberian Branch of the Russian Academy of Sciences
							Autor responsável pela correspondência
							Email: eaprot@yandex.ru
				                					                																			                												                	Rússia, 							Irkutsk						
A. Rakevich
Irkutsk Branch of Institute of Laser Physics of the Siberian Branch of the Russian Academy of Sciences
														Email: eaprot@yandex.ru
				                					                																			                												                	Rússia, 							Irkutsk						
Е. Martynovich
Irkutsk Branch of Institute of Laser Physics of the Siberian Branch of the Russian Academy of Sciences
														Email: eaprot@yandex.ru
				                					                																			                												                	Rússia, 							Irkutsk						
Bibliografia
- Зилов С.А., Войтович А.П., Бойченко С.В. и др. // Изв. РАН Сер. физ. 2016. Т. 80. № 1. С. 89; Zilov S.A., Voitovich A.P., Bojchenko S.V. et al. // Bull. Russ. Acad. Sci. Phys. 2016. V. 80. No. 1. P. 81.
- Мартынович Е.Ф. // Письма в ЖЭТФ. 1989. Т. 49. № 12. С. 655; Martynovich E.F. // JETP Lett. 1989. V. 49. No. С. 752.
- Courrol L.C., Samad R.E., Gomes L. et al. // Opt. Express. 2004. V. 12. No. 2. Р. 288.
- Kurobori T., Sakai T., Aoshima S. // Phys. Stat. Sol. A. 2007. V. 204. No. 3. P. 699.
- Дресвянский В.П., Бойченко С.В., Зилов С.А. и др. // Изв. РАН. Сер. физ. 2016. Т. 80. № 1. С. 97; Dresvyanskiy V.P., Bojchenko S.V., Zilov S.A. et al. // Bull. Russ. Acad. Sci. Phys. 2016. V. 80. No. 1. P. 89.
- Мартынович Е.Ф. Центры окраски в лазерных кристаллах. Иркутск: Изд. Иркутского ун-та, 2004. 227 с.
- Martynovich E.F., Dresvyansky V.P., Lazareva N.L. et al. // Advanced Photonics 2017. OSA Technical Digest. Optica Publishing Group, 2017. Art. No. W2. Р. 6.
- Maurer P.C., Maze J.R., Stanwix P.L. et al. // Nature Phys. 2010. V. 6. No. 11. P. 912.
- Мартынович Е.Ф., Чернова Е.О., Дресвянский В.П. Способ записи полноцветных люминесцентных изображений в объеме оптического носителя. Патент РФ № 2653575, кл. C03B33/09, B44F1/06. 2018.
- Piccinini M., Nichelatti E., Ampollini A. et al. // EPL. 2017. V. 117. No. 3. Art. No. 37004.
- Мартынович Е.Ф. Нелинейный фотографический люминесцентный материал. Патент РФ № 2758567, кл. G03C1/725. 2021.
- Протасова Е.А., Ракевич А.Л., Мартынович Е.Ф. // Изв. РАН. Сер. физ. 2022. Т. 86. № 10. С. 1424; Protasova E.A., Rakevich A.L., Martynovich E.F. // Bull. Russ. Acad. Sci. Phys. 2022. V. 86. No. 10. P. 1179.
- Цуканов А.В. // Микроэлектрон. 2012. Т. 41. № 2. С. 104; Tsukanov A.V. // Russ. Microelectron. 2012. V. 41. No. 2. P. 91.
- Collins A.T., Thomaz M.F., Jorge M.I.B. // J. Physics C. 1983. V. 16. No. 11. P. 2177.
- Müller A., Neumann R., Schwartz K. et al. // Appl. Phys. A. 1998. V. 66 (Suppl. 1). P. 1147.
- Мартынович Е.Ф., Зилов С.А., Дресвянский В.П. // Опт. и спектроск. 2023. Т. 131. № 5. С. 667; Martynovich E.F., Zilov S.A., Dresvyanskiy V.P. // Opt. Spectrosc. 2023. V. 131. No. 5. P. 625.
- Boichenko S.V., Koenig K., Zilov S.A. et al. // J. Phys. Conf. Ser. 2014. V. 552. Art. No. 012048.
- Anipko A.V., Ivanov V. Yu., Juravleva E. Yu. et al. // Proc. 13th RPC (Tomsk, 2006). P. 159.
- Elsässer K., Seidel H. // Phys. Stat. Sol. B. 1971. V. 43. No. 1. P. 301.
- Shulgin B.V., Ivanov V. Yu., Tcherepanov A.N. et al. // Phys. Stat. Sol. C. 2007. V. 4. No. 3. P. 1126.
- Nahum J. // Phys. Rev. 1968. V. 174. No. 3. P. 1000.
- Andrews R.A., Kim Y.W. // Phys. Rev. 1968. V. 170. No. 3. P. 793.
- Аржанов А.И., Савостьянов А.О., Магарян К.А. и др. // Фотоника. 2021. Т. 15. № 8. С. 622; Arzhanov A.I., Savostianov A.O., Magaryan K.A. et al. // Photonics Russ. 2021. V. 15. No. 8. P. 622.
Arquivos suplementares
 
				
			 
						 
						 
					 
						 
						 
									

 
  
  
  Enviar artigo por via de e-mail
			Enviar artigo por via de e-mail 




