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Optics and Spectroscopy, 2023 Volume 131, Issue 10, Pages 1403–1411 (Mi os1462)

Nanophotonics

Retranslation of luminescence excitation during cascade transitions in hybrid nanostructures based on INP/INASP/INP NWs and CDSE/ZNS-TOPO QDs

A. I. Khrebtova, A. S. Kulaginaa, N. V. Sibirevb, A. N. Yablonskiic, A. S. Ruband, R. R. Reznikabef, G. È. Cirlinabef, V. V. Danilovd

a Alferov Federal State Budgetary Institution of Higher Education and Science Saint Petersburg National Research Academic University of the Russian Academy of Sciences, St. Petersburg, Russia
b Saint Petersburg State University, St. Petersburg, Russia
c Institute for Physics of Microstructures, Russian Academy of Sciences, Nizhny Novgorod, Russia
d Emperor Alexander I St. Petersburg State Transport University, St. Petersburg, Russia
e ITMO University, St. Petersburg, Russia
f Institute for Analytical Instrumentation, Russian Academy of Sciences, St. Petersburg, Russia

Abstract: The features of photoluminescence (PL) of hybrid nanostructures based on InP/InAsP/InP nanowires array with deposited colloidal CdSe/ZnS-trioctylphosphine oxide quantum dots at increasing pump power have been studied. Pumping was carried out by 10 ps laser pulses duration with 1 MHz repetition rate at 532 nm wavelength in the quasi-resonant region of QDs absorption. It has been established, that PL maximum of the nanostructure shifts hypsochromically with increasing of laser power, revealing a gradual dominance of the bands of its components. This PL manifestation is explained by the cascade filling of excited excitonic states, accompanied by the Auger recombination processes and light quenching. The role of free carriers absorption and energy exchange between excitonic states at high pump intensities is noted, as well as a sharp PL duration reduction associated with an increase of stimulated processes in absorption.

Keywords: spectral kinetics, nanowires, colloidal quantum dots, nonradiative energy transfer, cascade filling of states.

Received: 04.09.2023
Revised: 13.10.2023
Accepted: 27.10.2023

DOI: 10.61011/OS.2023.10.56892.5536-23



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