The hierarchical porous material HP-UiO-NH2-X was prepared by an environmentally friendly method using water as a modulator and used for adsorption of ofloxacin
Qingxin Lu, Jiaxin Zheng, Yaoyao Zhang, Wenjuan Lu
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引用次数: 0
Abstract
Hierarchical Porous Metal-Organic Frameworks (HP-MOFs) are widely recognized for their broad applications in adsorption, owing to their structural tunability and diverse pore types. However, existing synthesis methods often face challenges, including prolonged synthesis times, high energy consumption, and complex procedures. In this study, we utilized water, an environmentally friendly modulator, to successfully synthesize hierarchical porous UiO-series materials via a one-step solvothermal method. HP-UiO-66-NH2-X with varied pore structures was synthesized by adjusting the H2O/Zr4+ ratio in the precursor. The adsorption performance of the resulting materials for ofloxacin (OFL) was subsequently evaluated. Characterization results demonstrated that this approach effectively modulated the coordination between organic ligands and metal centers, leading to ligand defects and the precise tuning of the UiO-66-NH2 framework's pore structure. When the H2O/Zr4+ ratio was 22.2 (M/M), the synthesized HP-UiO-66-NH2-2 material exhibited optimal adsorption performance (233.1 mg/g) and excellent selectivity. The adsorption process involved multiple interactions, including electrostatic interactions, pore filling, metal coordination, hydrogen bonding, and π-π interactions. In adsorption-desorption cycling tests, HP-UiO-66-NH2-2 maintained over 90 % removal efficiency after 10 cycles, demonstrating its excellent reusability and stability. Therefore, this study proposes an environmentally friendly and simplified synthesis strategy, successfully producing HP-UiO-66-NH2-X materials with remarkable performance in removing OFL. This approach offers a novel perspective for improving the performance and applicability of environmentally friendly materials.
期刊介绍:
Microporous and Mesoporous Materials covers novel and significant aspects of porous solids classified as either microporous (pore size up to 2 nm) or mesoporous (pore size 2 to 50 nm). The porosity should have a specific impact on the material properties or application. Typical examples are zeolites and zeolite-like materials, pillared materials, clathrasils and clathrates, carbon molecular sieves, ordered mesoporous materials, organic/inorganic porous hybrid materials, or porous metal oxides. Both natural and synthetic porous materials are within the scope of the journal.
Topics which are particularly of interest include:
All aspects of natural microporous and mesoporous solids
The synthesis of crystalline or amorphous porous materials
The physico-chemical characterization of microporous and mesoporous solids, especially spectroscopic and microscopic
The modification of microporous and mesoporous solids, for example by ion exchange or solid-state reactions
All topics related to diffusion of mobile species in the pores of microporous and mesoporous materials
Adsorption (and other separation techniques) using microporous or mesoporous adsorbents
Catalysis by microporous and mesoporous materials
Host/guest interactions
Theoretical chemistry and modelling of host/guest interactions
All topics related to the application of microporous and mesoporous materials in industrial catalysis, separation technology, environmental protection, electrochemistry, membranes, sensors, optical devices, etc.