Investigation of the possibilities of detecting light elements in plants by the X-ray fluorescence analysis with synchrotron radiation at the “SR Technological Station” at the VEPP-4M storage ring

Cover Page

Cite item

Full Text

Open Access Open Access
Restricted Access Access granted
Restricted Access Subscription Access

Abstract

We consider the expansion of the capabilities of X-ray fluorescence element analysis on synchrotron radiation in Budker INP SB RAS with the purpose of detection of light elements. For this, the equipment and software of «Technological Station» was modified. Experimental installation is described, selection of parameters of experiment is substantiated, estimates of minimum detection limit for Al, Si, P, S, Cl are given.

About the authors

B. G Goldenberg

Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences; Center for Collective Use "Siberian Ring Photon Source Federal Research Center G.K. Boreskov Institute of Catalysis of the Siberian Branch of the Russian Academy of Sciences

Email: b.g.goldenberg@srf-skif.ru
Novosibirsk, Russia; Kaltsovo, Russia

I. S Gusev

Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences; Center for Collective Use "Siberian Ring Photon Source Federal Research Center G.K. Boreskov Institute of Catalysis of the Siberian Branch of the Russian Academy of Sciences

Novosibirsk, Russia; Kaltsovo, Russia

I. P Kopalkin

Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences

Novosibirsk, Russia

A. A Legkodymov

Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences; Center for Collective Use "Siberian Ring Photon Source Federal Research Center G.K. Boreskov Institute of Catalysis of the Siberian Branch of the Russian Academy of Sciences

Novosibirsk, Russia; Kaltsovo, Russia

Yu. P Kolmogorov

V.S. Sobolev Institute of Geology and Mineralogy of the Siberian Branch of the Russian Academy of Sciences

Novosibirsk, Russia

P. A Piminov

Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences

Novosibirsk, Russia

E. A Simonov

Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences

Novosibirsk, Russia

E. V Ambros

Central Siberian Botanical Garden of the Siberian Branch of the Russian Academy of Sciences

Novosibirsk, Russia

References

  1. Ambros E., Kotsupiy O., Karpova E. et al. // Plants. 2023. V. 12. No. 24. Art. No. 4193.
  2. Дарьин А.В., Ракшун Я.В. // Научн. вестн. Новосиб. гос. техн. ун-та. 2013.№2(51). С. 112.
  3. Трунова В.А., Зверева В.В. //Журн. структ. химии. 2016. Т. 57. № 7. С. 1401
  4. Trunova V.A., and Zvereva V.V. // J. Struct. Chem. 2016. V. 57. No. 7. P. 1327.
  5. Henke B.L., Gullikson E.M., and Davis J.C. // Atom. Data Nucl. Data Tables. 1993. V. 54. No. 2. P. 181.
  6. Гольденберг Б.Г., Гусев И.С., Зубавичус Я.В. // Поверхн. Рентген., синхротрон., нейтрон. иссл. 2023. № 10. С. 1
  7. Goldenberg B.G., Gusev I.S., and Zubavichus Y.V. // J. Surf. Invest.: X-Ray, Synchrotron Neutron Tech. 2023. V. 17. No. 5. P. 1088.
  8. Барышев В.Б. Рентгенофлуоресцентный элементный анализ на пучках синхротронного излучения. Дисс. . . канд. физ.-мат. наук. Новосибирск: ИЯФ СО РАН, 1984. 109 с.
  9. http://www.igc.irk.ru/ru/item/3449-standartnyj-obrazets-sostava-travosmesi
  10. Легкодымов А.А., Купер К.Э., Колмогоров Ю.П. и др. // Изв. РАН. Сер. физ. 2019. Т. 83. № 2. С. 158
  11. Legkodymov A.A., Kuper K.E., Baranov G.N. et al. // Bull. Russ. Acad. Sci. Phys. 2019. V. 83. No. 2. P. 112.

Supplementary files

Supplementary Files
Action
1. JATS XML

Copyright (c) 2025 Russian Academy of Sciences

Согласие на обработку персональных данных

 

Используя сайт https://journals.rcsi.science, я (далее – «Пользователь» или «Субъект персональных данных») даю согласие на обработку персональных данных на этом сайте (текст Согласия) и на обработку персональных данных с помощью сервиса «Яндекс.Метрика» (текст Согласия).