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A novel MIL-125(Ti)-based nanocomposite for enhanced adsorption and catalytic degradation of tetracycline hydrochloride: Synergetic mechanism of calcination and the nitrogen-containing reticulated surface layer.

Authors :
Song, Xiaoli
He, Jialing
Wang, Yu
Wang, Junlong
Zhang, Shuwei
Source :
Journal of Colloid & Interface Science. Sep2023, Vol. 645, p918-932. 15p.
Publication Year :
2023

Abstract

[Display omitted] • Surface modifying MIL-125(Ti) with functional organic molecular is a useful way. • The adsorption and visible light catalytic properties of the nanocomposite is obviously enhanced. • Calcination further improves the adsorption and photocatalytic performance. • TPE-2Py@DSMIL-125(Ti) has great applicability, reproducibility and stability. A multi-nitrogen conjugated organic molecule (TPE-2Py) was selected to surface modify the calcined MIL-125(Ti) to prepare a nanocomposite (TPE-2Py@DSMIL-125(Ti)) for adsorption and photodegradation of organic pollutant (tetracycline hydrochloride) under visible light. A novel reticulated surface layer was formed on the nanocomposite, and the adsorption capacity of TPE-2Py@DSMIL-125(Ti) for tetracycline hydrochloride can reach 157.7 mg/g under neutral conditions, which is higher than that of most other reported materials. Kinetic and thermodynamic studies show that the adsorption is a spontaneous heat absorption process, dominated by chemisorption, in which electrostatic interaction, π-π conjugation and Ti-N covalent bonds played dominant roles. The photocatalytic study shows that the visible photo-degradation efficiency of TPE-2Py@DSMIL-125(Ti) for tetracycline hydrochloride can further reach 89.1% after adsorption. Mechanism studies reveal that •O 2 − and h+ play a major role in the degradation process, and the separation and transfer rate of photo-generated carriers increase, improving its visible photocatalytic performance. This study revealed the relationship between the adsorption/photocatalytic properties of the nanocomposite and the structure of the molecular as well as the calcination, providing a convenient strategy to regulate the removal efficiency of MOFs materials towards organic pollutants. Furthermore, TPE-2Py@DSMIL-125(Ti) exhibits good reusability and even better removal efficiency for tetracycline hydrochloride in real water samples, indicating its sustainable treatment of pollutants in contaminated water. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00219797
Volume :
645
Database :
Academic Search Index
Journal :
Journal of Colloid & Interface Science
Publication Type :
Academic Journal
Accession number :
163846759
Full Text :
https://doi.org/10.1016/j.jcis.2023.05.028