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Verification and spectral separation of up-conversion processes in fluorophosphate glass doped with ytterbium and thulium ions based on the dependence of their effective nonlinearity on wavelength

Abstract

The up-conversion luminescence (UCL) spectra of fluorophosphate glasses doped with a pair of rareearth ions (REI) of ytterbium (4%) and thulium (0.1%) excited by radiation of a diode laser operating in a steady-state mode at wavelength of 975 nm are studied. Each of the observed UCL bands is a result of manifestation of several up-conversion processes (UCP) corresponding to luminescence of thulium ions from different excited states. These UCPs are characterized by different degrees of effective nonlinearity (EN). The effect of pump power on the UCL spectra formed by UCPs with different EN is studied. The possibility of separation of spectra corresponding to individual UCPs from the total experimentally measured UCL spectrum of fluorophosphate glass doped with a pair of REIs of ytterbium (4%) and thulium (0.1%) is demonstrated. The separation is based on the calculation of the EN based on the dependences of the UCL on the excitation power.

About the Authors

M. V. Korolkov
B. I. Stepanov Institute of Physics of the National Academy of Sciences of Belarus
Belarus

Minsk



I. A. Khodasevich
B. I. Stepanov Institute of Physics of the National Academy of Sciences of Belarus
Belarus

Minsk



A. S. Grabtchikov
B. I. Stepanov Institute of Physics of the National Academy of Sciences of Belarus
Belarus

Minsk



G. Munkhbayar
National University of Mongolia
Mongolia

Ulan Bator



D. S. Mogilevtsev
B. I. Stepanov Institute of Physics of the National Academy of Sciences of Belarus
Belarus

Minsk



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Review

For citations:


Korolkov M.V., Khodasevich I.A., Grabtchikov A.S., Munkhbayar G., Mogilevtsev D.S. Verification and spectral separation of up-conversion processes in fluorophosphate glass doped with ytterbium and thulium ions based on the dependence of their effective nonlinearity on wavelength. Zhurnal Prikladnoii Spektroskopii. 2024;91(6):788-798. (In Russ.)

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