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Recyclable Fe3O4@UiO-66-PDA core-shell nanomaterials for extensive metal ion adsorption: Batch experiments and theoretical analysis.
Tian, Shuangqin; Shi, Xin; Wang, Shujie; He, Yi; Zheng, Bifang; Deng, Xianhong; Zhou, Ziqin; Wu, Wenbin; Xin, Kai; Tang, Lihong.
Afiliação
  • Tian S; School of Chemistry Science and Engineering, Yunnan University, Kunming 650091, Yunnan Province, PR China. Electronic address: tianshuangqin@163.com.
  • Shi X; School of Chemistry Science and Engineering, Yunnan University, Kunming 650091, Yunnan Province, PR China; Honghe Prefecture Nationality Senior High School, Honghe 661200, Yunnan Province, PR China. Electronic address: 3121345006@qq.com.
  • Wang S; School of Chemistry Science and Engineering, Yunnan University, Kunming 650091, Yunnan Province, PR China. Electronic address: 3327939990@qq.com.
  • He Y; School of Chemistry Science and Engineering, Yunnan University, Kunming 650091, Yunnan Province, PR China. Electronic address: 3247429528@qq.com.
  • Zheng B; School of Chemistry Science and Engineering, Yunnan University, Kunming 650091, Yunnan Province, PR China. Electronic address: 3402464706@qq.com.
  • Deng X; School of Chemistry Science and Engineering, Yunnan University, Kunming 650091, Yunnan Province, PR China. Electronic address: 2928817735@qq.com.
  • Zhou Z; School of Chemistry Science and Engineering, Yunnan University, Kunming 650091, Yunnan Province, PR China. Electronic address: 1465021825@qq.com.
  • Wu W; School of Chemistry Science and Engineering, Yunnan University, Kunming 650091, Yunnan Province, PR China. Electronic address: 644661220@qq.com.
  • Xin K; School of Chemistry Science and Engineering, Yunnan University, Kunming 650091, Yunnan Province, PR China. Electronic address: 798791018@qq.com.
  • Tang L; School of Chemistry Science and Engineering, Yunnan University, Kunming 650091, Yunnan Province, PR China. Electronic address: lihongtang@ynu.edu.cn.
J Colloid Interface Sci ; 665: 465-476, 2024 Jul.
Article em En | MEDLINE | ID: mdl-38537592
ABSTRACT
With the ever-increasing challenge of heavy metal pollution, the imperative for developing highly efficient adsorbents has become apparent to remove metal ions from wastewater completely. In this study, we introduce a novel magnetic core-shell adsorbent, Fe3O4@UiO-66-PDA. It features a polydopamine (PDA) modified zirconium-based metal-organic framework (UiO-66) synthesized through a simple solvothermal method. The adsorbent boasts a unique core-shell architecture with a high specific surface area, abundant micropores, and remarkable thermal stability. The adsorption capabilities of six metal ions (Fe3+, Mn2+, Pb2+, Cu2+, Hg2+, and Cd2+) were systematically investigated, guided by the theory of hard and soft acids and bases. Among these, three representative metal ions (Fe3+, Pb2+, and Hg2+) were scrutinized in detail. The activated Fe3O4@UiO-66-PDA exhibited exceptional adsorption capacities for these metal ions, achieving impressive values of 97.99 mg/g, 121.42 mg/g, and 130.72 mg/g, respectively, at pH 5.0. Moreover, the adsorbent demonstrated efficient recovery from aqueous solution using an external magnet, maintaining robust adsorption efficiency (>80%) and stability even after six cycles. To delve deeper into the optimized adsorption of Hg2+, density functional theory (DFT) analysis was employed, revealing an adsorption energy of -2.61 eV for Hg2+. This notable adsorption capacity was primarily attributed to electron interactions and coordination effects. This study offers valuable insights into metal ion adsorption facilitated, by magnetic metal-organic framework (MOF) materials.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: J Colloid Interface Sci Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: J Colloid Interface Sci Ano de publicação: 2024 Tipo de documento: Article