Green and Efficient
Al-Doped LaFe<sub><i>x</i></sub>Al<sub>1–<i>x</i></sub>O<sub>3</sub> Perovskite
Oxide for Enhanced Phosphate Adsorption with Creation of Oxygen Vacancies
La-based metal oxide materials are environmentally friendly
and
show promise for phosphate adsorption. A series of Al-doped perovskite
oxides, such as LaFexAl1–xO3, were prepared using a facile citric
acid-assisted sol–gel method. The characterization results
demonstrated that with optimized Al doping, there was a significant
increase in the specific surface area and increased defect content
of perovskite oxide LaFexAl1–xO3. Adsorption experiments showed that
the performance of phosphate removal by LaFexAl1–xO3 was largely
enhanced due to the improved adsorption capacity, which is maximum
eight times higher compared with control perovskites prepared under
neutral conditions. The mass transfer rate for adsorption was considerably
boosted with phosphate removal within the initial 15 min. Spectroscopy
analysis and density functional theory calculation results showed
that the process of phosphate removal by the Al-doped perovskite oxides
LaFexAl1–xO3 involved electrostatic interactions, an inner-sphere
complex, and surface oxygen vacancies, among which the creation of
oxygen vacancies caused by the Al doping was the predominant mechanism
for reducing the bonding barrier during adsorption and generating
adsorption sites. The results enable the development of a green and
efficient perovskite adsorbent with a La-based perovskite material
for phosphorus removal