4.6 Article

Tailoring Defect Density in UiO-66 Frameworks for Enhanced Pb(II) Adsorption

期刊

LANGMUIR
卷 37, 期 46, 页码 13602-13609

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.langmuir.1c02032

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资金

  1. National Nature Science Foundation of China [22076075]
  2. SUSTech-MIT Joint Centre for Mechanical Engineering Education and Research
  3. State Environmental Protection Key Laboratory of Integrated Surface Water-Groundwater Pollution Control

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Defect engineering in metal organic frameworks shows promising potential in enhancing adsorption performance for heavy metal removal from wastewater. By creating additional active sites, more open frameworks, and increased porosity, defective materials exhibit improved capability for Pb(II) removal. This study highlights the significance of defect engineering in heavy metal remediation and provides insight for designing advanced materials with enhanced adsorption performance.
Defect engineering of metal organic frameworks offers potential prospects for tuning their features toward particular applications. Herein, two series of defective UiO-66 frameworks were synthesized via changing the concentration of the linker and synthetic temperature of the reaction. These defective materials showed a significant improvement in the capability of Pb(II) removal from wastewater. This strategy for defect engineering not only created additional active sites, more open framework, and enhanced porosity but also exposed more oxygen groups, which served as the adsorption sites to improve Pb(II) adsorption. A relationship among degree of defects, texture features, and performances for Pb(II) removal was successfully developed as a proof-of-concept, highlighting the importance of defect engineering in heavy metal remediation. To investigate the kinetic and adsorption isotherms, we performed adsorption experiments influenced by the time and concentration of the adsorbate, respectively. For the practicality of the materials, the most significant parameters such as pH, temperature, adsorbent concentration, selectivity, and recyclability as well as simulated natural surface water were also examined. This study provides a clue for the researchers to design other advanced defective materials for the enhancement of adsorption performance by tuning the defect engineering.

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