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Plant Photochemistry under Glass Coated with Upconversion Luminescent Film

Authors :
Denis V. Yanykin
Mark O. Paskhin
Alexander V. Simakin
Dmitriy E. Burmistrov
Roman V. Pobedonostsev
Alexey A. Vyatchinov
Maria V. Vedunova
Sergey V. Kuznetsov
Julia A. Ermakova
Alexander A. Alexandrov
Alexey P. Glinushkin
Valery P. Kalinitchenko
Mars Khayrullin
Elena Kuznetsova
Mikhail V. Dubinin
Valery A. Kozlov
Nikolai F. Bunkin
Alexey V. Sibirev
Alexander G. Aksenov
Sergey V. Gudkov
Source :
Applied Sciences, Vol 12, Iss 15, p 7480 (2022)
Publication Year :
2022
Publisher :
MDPI AG, 2022.

Abstract

It has been shown that the cultivation of plants under glass coated with nano-sized upconversion luminophores led to an increase in plant productivity and the acceleration of plant adaptation to ultraviolet radiation. In the present work, we examined the effect of upconversion nanopowders with the nominal composition Sr0.955Yb0.020Er0.025F2.045 on plant (Solanum lycopersicum) photochemistry. The composition, structure and size of nanoparticles were tested using X-ray pattern diffraction, scanning electron microscopy, and dynamic light scattering. Nanoparticles are capable of converting infrared radiation into red and green photons. Glasses coated with upconversion luminophores increase the intensity of photosynthetically active radiation and absorb the ultraviolet and far-red radiation. The chlorophyll a fluorescence method showed that plants growing under photoconversion and those growing under common film demonstrate different ability to utilize excitation energy via photosynthesis. It was shown that under ultraviolet and high light conditions, the efficiency of the photochemical reactions, the non-photochemical fluorescence quenching, and the electron transport remained relatively stable in plants growing under photoconversion film in contrast to plants growing under common film. Thus, cultivation of Solanum lycopersicum under photoconversion glasses led to the acceleration in plant growth due to greater efficiency of plant photochemistry under stress conditions.

Details

Language :
English
ISSN :
20763417
Volume :
12
Issue :
15
Database :
Directory of Open Access Journals
Journal :
Applied Sciences
Publication Type :
Academic Journal
Accession number :
edsdoj.7febc6e0e4f4e43819ec12e006cdcaf
Document Type :
article
Full Text :
https://doi.org/10.3390/app12157480