The enhanced photocatalytic performance and first-principles computational insights of Ba doping-dependent TiO 2 quantum dots.
Muhammad IkramMuhammad Ahsan Ul HaqAli HaiderJunaid HaiderAnwar Ul-HamidIram ShahzadiMuhammad Ahsaan BariSalamat AliSouraya Goumri-SaidMohammed Benali KanounPublished in: Nanoscale advances (2022)
Degradation in the presence of visible light is essential for successfully removing dyes from industrial wastewater, which is pivotal for environmental and ecological safety. In recent years, photocatalysis has emerged as a prominent technology for wastewater treatment. This study aimed to improve the photocatalytic efficiency of synthesized TiO 2 quantum dots (QDs) under visible light by barium (Ba) doping. For this, different weight ratios (2% and 4%) of Ba-doped TiO 2 QDs were synthesized under ambient conditions via a simple and modified chemical co-precipitation approach. The QD crystal structure, functional groups, optical features, charge-carrier recombination, morphological properties, interlayer spacing, and presence of dopants were analyzed. The results showed that for 4% Ba-doped TiO 2 , the effective photocatalytic activity in the degradation process of methylene blue (MB) dye was 99.5% in an alkaline medium. Density functional theory analysis further corroborated that the band gap energy was reduced when Ba was doped into the TiO 2 lattice, implying a considerable redshift of the absorption edge due to in-gap states near the valence band.
Keyphrases
- visible light
- wastewater treatment
- quantum dots
- density functional theory
- crystal structure
- antibiotic resistance genes
- air pollution
- sensitive detection
- molecular dynamics
- high resolution
- body mass index
- dna damage
- human health
- weight loss
- climate change
- particulate matter
- energy transfer
- oxidative stress
- oxide nanoparticles
- aqueous solution