Infra-red fluorimeter on the base of native optoelectronic components for photodiagnostics of superficial neoplasms

Capa

Citar

Texto integral

Acesso aberto Acesso aberto
Acesso é fechado Acesso está concedido
Acesso é fechado Acesso é pago ou somente para assinantes

Resumo

The results of infra-red spectral range fluorimeter development on the base of native optoelectron-ic components for IR-luminescence diagnostics of superficial neoplasms are presented. Functions of modulating signal formation and data filtration are transmitted to electronic components in this device version. Comfortable, chiep and compact programmable device with analog-to-digital con-verter function of Arduino type were used instead of expensive units. The fluorimeter has been tested in Vladimirsky MONIKI (Moscow). This device ensures achievement of high values of the luminescence diagnostic contrast index of neoplasms/normal tissue.

Sobre autores

I. Shilov

Fryazino branch Kotelnikov Institute of Radio Engineering and Electronics of RAS

Email: laserlab@ms.ire.rssi.ru
Vvedensky Squar., 1, Fryazino, Moscow region, 141190 Russian Federation

S. Marechek

Fryazino branch Kotelnikov Institute of Radio Engineering and Electronics of RAS

Email: laserlab@ms.ire.rssi.ru
Vvedensky Squar., 1, Fryazino, Moscow region, 141190 Russian Federation

A. Gorshkova

Fryazino branch Kotelnikov Institute of Radio Engineering and Electronics of RAS

Email: laserlab@ms.ire.rssi.ru
Vvedensky Squar., 1, Fryazino, Moscow region, 141190 Russian Federation

E. Novichikhin

Fryazino branch Kotelnikov Institute of Radio Engineering and Electronics of RAS

Autor responsável pela correspondência
Email: laserlab@ms.ire.rssi.ru
Vvedensky Squar., 1, Fryazino, Moscow region, 141190 Russian Federation

Bibliografia

  1. Guan Q., Wang M. // Nano Life. 2021. V. 11. № 4. Article No. 2141004. https://doi.org/10.1142/S179398442141004X
  2. Оптическая биомедицинская диагностика. Т. II. /Под редакцией В. В. Тучина. М.: Физматлит, 2007.
  3. Gaiduk M.I., Grigoryants V.V., Mironov A.F. et al. // Photochemistry and Photobiology B: Biology. 1990. V. 7. № 1. P. 15. https://doi.org/10.1016/1011-1344(90)85139-n
  4. Алексеев Ю.В., Румянцева В.Д., Шилов И.П. и др. // Лазерная медицина. 2017. № 2. С. 20. https://doi.org/10.37895/2071-8004-2016-20-2-20-25
  5. Лощенов В.Б., Стратонников А.А., Волкова А.И., Прохоров А.М. // Журн. Рос. хим. общ. им. Д. И. Менделеева. 1998. Т. 42. № 5. С. 50.
  6. Шилов И.П., Даниэльян Г.Л., Маречек С.В. и др. // РЭ. 2022. Т. 67. № 4. С. 384. https://doi.org/10.31857/S003384942204009X
  7. Ivanov A.V., Rumyantseva V.D., Shchamkhalov K.S., Shilov I.P. // Laser Physics. 2010. V. 20. № 12. P. 2056. https://doi.org/10.1134/S1054660X10220032

Arquivos suplementares

Arquivos suplementares
Ação
1. JATS XML

Declaração de direitos autorais © Russian Academy of Sciences, 2025