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Effect of UV Irradiation on the Growth of ZnO:Er Nanorods and Their Intrinsic Defects

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Author
Buryi, Maksym
Ridzoňová, KatarínaORCiD Profile - 0000-0002-6490-5293WoS Profile - R-2009-2017
Neykova, Neda
Landova, Lucie
Hajek, Frantisek
Babin, Vladimir
Decka, Katerina
Sharma, Rupendra Kumar
Pop-Georgievski, Ognen

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Publication date
2023
Published in
Chemosensors
Volume / Issue
11 (3)
ISBN / ISSN
ISSN: 2227-9040
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  • Faculty of Mathematics and Physics

This publication has a published version with DOI 10.3390/chemosensors11030156

Abstract
Nanorods of erbium-doped zinc oxide (ZnO:Er) were fabricated using a hydrothermal method. One batch was prepared with and another one without constant ultraviolet (UV) irradiation applied during the growth. The nanorods were free-standing (FS) as well as deposited onto a fused silica glass substrate (GS). The goal was to study the atomistic aspects influencing the charge transport of ZnO nanoparticles, especially considering the differences between the FS and GS samples. We focused on the excitons; the intrinsic defects, such as zinc interstitials, zinc vacancies, and related shallow donors; and the conduction electrons. UV irradiation was applied for the first time during the ZnO:Er nanorod growth. This led to almost total exciton and zinc vacancy luminescence reduction, and the number of shallow donors was strongly suppressed in the GS samples. The effect was much less pronounced in the FS rods. Moreover, the exciton emission remained unchanged there. At the same time, the Er(3+) content was decreased in the FS particles grown under constant UV irradiation while Er(3+) was not detected in the GS particles at all. These phenomena are explained.
Keywords
deposited ZnO nanorods, free-standing ZnO nanorods, hydrothermal growth under UV, electron paramagnetic resonance, sensing, luminescence
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https://hdl.handle.net/20.500.14178/2357
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WOS:000955492500001
SCOPUS:2-s2.0-85151137514
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