Conversion of selective characteristics of electrically controlled chirped multilayer inhomogeneous diffraction structures based on photopolymerizing compositions with nematic liquid crystals
- Autores: Sharangovich S.N.1, Dolgirev V.O.1, Rastrygin D.S.1
- 
							Afiliações: 
							- Tomsk State University of Control and Radioelectronics Systems
 
- Edição: Volume 89, Nº 1 (2025)
- Páginas: 28-33
- Seção: Wave Phenomena: Physics and Applications
- URL: https://cardiosomatics.ru/0367-6765/article/view/683814
- DOI: https://doi.org/10.31857/S0367676525010057
- EDN: https://elibrary.ru/DBZAIR
- ID: 683814
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
We developed the analytical model of optical radiation diffraction on chirped multilayer inhomogeneous diffraction structures formed by the holographic method in photopolymerizing compositions with nematic liquid crystals having smooth optical heterogeneity in layer thickness. By numerical calculation, it was shown that using the chirping method it is possible to multiply the angular and spectral characteristics of multilayer inhomogeneous holographic diffraction structures formed in photopolymerizing compositions with nematic liquid crystals.
			                Sobre autores
S. Sharangovich
Tomsk State University of Control and Radioelectronics SystemsTomsk, Russia
V. Dolgirev
Tomsk State University of Control and Radioelectronics SystemsTomsk, Russia
D. Rastrygin
Tomsk State University of Control and Radioelectronics Systems
														Email: gg9dragon9gg@gmail.com
				                					                																			                												                								Tomsk, Russia						
Bibliografia
- Шарангович С.Н., Долгирев В.О., Растрыгин Д.С. // Изв. РАН. Сер. физ. 2024. Т. 88. № 1. С. 11
- Sharangovich S.N., Dolgirev V.O., Rastrygin D.S. // Bull. Russ. Acad. Sci. Phys. 2024. V. 88. No. 1. P. 6.
- Долгирев В.О., Шарангович С.Н. // Изв. РАН. Сер. физ. 2023. Т. 87. № 1. С. 12
- Sharangovich S.N., Dolgirev V.O. // Bull. Russ. Acad. Sci. Phys. 2023. V. 87. No. 1. P. 7.
- Malallah R., Li H., Qi Y. et al. // J. Opt. Soc. Amer. A. 2019. V. 36. No. 3. P. 320.
- Malallah R., Li H., Qi Y. et al. // J. Opt. Soc. Amer. A. 2019. V. 36. No. 3. P. 334.
- Pen E.F., Rodionov M.Yu., Chubakov P.A. // Optoelectron. Instrum. Data Process. 2017. V. 53. P. 59.
- Pen E.F., Rodionov M.Yu. // Quantum Electron. 2017. V. 40. No. 10. P. 919.
- Nordin G.P., Johnsonm R.V. // J. Opt. Soc. Amer. A. 1992. V. 9. No. 12. P. 2206.
- Yan X., Wang X., Chen Y. et al. // Appl. Phys. B. 2019. V. 125. Art. No. 67.
- Yan X., Gao L., Yang X. et al. // Opt. Express. 2014. V. 22. No. 21. P. 26128.
- Казанский Н.Л., Хонина С.Н., Карпеев С.В., Порфирьев А.П. // Квант. электрон. 2020. Т. 50. № 7. С. 636
- Kazanskiy N.L., Khonina S.N., Karpeev S.V. et al. // Quantum Electron. 2020. V. 50. No. 7. P. 629.
- Kudryashov S.I. // Appl. Surf. Sci. 2019. V. 484. P. 948.
- Pavlov D. // Optics Lett. 2019. V. 44. No. 2. P. 283.
- Aimin Y., Liren L., Yanan Z. et al. // J. Opt. Soc. Amer. A. 2009. V. 26. No. 1. P. 135.
- Dovolnov E.A., Sharangovich S.N., Sheridan J.T. // Photorefractive effects, materials, and devices 2005 (PR05). OSA Trends in Optics and Photonics Series (TOPS), 2005. P. 337.
- Сонин А.С. Введение в физику жидких кристаллов. M.: Наука. Главн. ред. физ.-мат. лит., 1983. 320 с.
Arquivos suplementares
 
				
			 
						 
						 
					 
						 
						 
									

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