| Authors | هاجر جعفری,رزیتا منصف,Elmuez A. Dawi,Forat H. Alsultany,روح اله میرزایی محمد آبادی,مسعود صلواتی |
| Journal | Applied Water Science |
| Page number | 1 |
| Volume number | 15 |
| IF | 5.7 |
| Paper Type | Full Paper |
| Published At | 2025-07-05 |
| Journal Grade | Scientific - research |
| Journal Type | Electronic |
| Journal Country | Iran, Islamic Republic Of |
| Journal Index | JCR ,SCOPUS |
| Keywords | Carbon, based nanocomposites · Sonochemical synthesis · Triclinic Sr2V2O7 pyrovanadate nanostructures · Nano, photocatalyst · Degradation pathways |
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Abstract
The present study equips sonochemical synthesis of Sr 2 V 2 O 7 (SVO) nanoparticles with carbon coating’s impact to destroy
the solutions polluted with hazardous contaminants including rhodamine B (RhB), methylene blue (MB), and methyl orange
(MO) under visible-light radiation. Using diverse amine templates with dual functionality of precipitation/capping agent
in sono-reaction, identification techniques exhibited morphologically desirable and triclinic SVO sample in the presence of
teta, which had a mean of 72.08 nm and specific surface area of 14.621 m2
/g. To minimize charge recombination, increase in
surface area/photoactive sites, and shift toward a larger wavelength window, the incorporation of different carbon structures
on the SVO surface was perused. Particularly, detailed photodegradation investigations followed the order of MO < MB < RhB
with maximum efficiency for binary SVO/g-C 3 N 4 nanocomposites as compared with other as-obtained SVO-based com-
pounds. Photo-operational variables in starting RhB concentration and catalyst dosage offered that 89.39% degradation could
result in 50 mg of SVO/g-C 3N4 nanocomposites and 10 ppm dye within 120 min of visible irradiation. High photo-durability
of resultant SVO/g-C 3 N 4 nanocomposites showed five time regeneration process with only 14.39% reduction in activity. It is
hoped that the effectiveness of the photocatalytic heterostructure’s design based on SVO nanoparticles and g-C3N4 nanosheets
could be contributed in regulating the interface charge transfer pathway for environmental clean-up.