Enhanced Photocatalytic Degradation by the Preparation of a Stable La-Doped FeTiO 3 Photocatalyst: Experimental and DFT Study.
Xingrui LuoPeng ZhuJinming ZengTongxiang LiangQingqing QiuPublished in: Inorganic chemistry (2024)
The rapid photocarrier recombination limits the photocatalytic activity of iron titanate (FeTiO 3 ) to be further improved. Developing novel approaches to inhibit the rapid recombination rate of the FeTiO 3 photocatalysts is crucial for efficiently degrading pollutants in wastewater. Rare earth ions, with unique electron dispositions and large ion radii, could effectively inhibit photocarrier recombination. Herein, novel lanthanum (La)-doped FeTiO 3 photocatalysts were designed and successfully synthesized. The photocatalytic performance of the 12 mol % La/FeTiO 3 photocatalyst was superior in degrading tetracycline hydrochloride (TCH), methylene blue (MB), and brilliant blue (BB). These degradation rate constants ( k ) were 0.12358, 0.01357, and 0.03064 L mg -1 min -1 , respectively, which were 12.83, 1.61, and 7.78 times that of pure FeTiO 3 . The photoelectronic tests and density functional theory (DFT) calculations revealed that the La 4f orbital forms an impurity energy level in the conduction band of FeTiO 3 . This level narrows the bandgap and acts as an electron acceptor, capturing photoexcited electrons and inhibiting the rapid recombination of photoexcited electron-hole pairs in FeTiO 3 . This work enhances the potential of FeTiO 3 in the photocatalysis field and provides important insights into the efficient degradation of organic pollutants in wastewater.
Keyphrases
- visible light
- density functional theory
- solar cells
- dna repair
- dna damage
- molecular dynamics
- loop mediated isothermal amplification
- wastewater treatment
- quantum dots
- single cell
- electron transfer
- growth factor
- anaerobic digestion
- electron microscopy
- risk assessment
- molecularly imprinted
- oxidative stress
- heavy metals
- molecular docking
- mass spectrometry
- sensitive detection
- recombinant human
- highly efficient