4.6 Article

MIL-100(Fe)@GO composites with superior adsorptive removal of cationic and anionic dyes from aqueous solutions

期刊

JOURNAL OF MOLECULAR STRUCTURE
卷 1265, 期 -, 页码 -

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ELSEVIER
DOI: 10.1016/j.molstruc.2022.133365

关键词

MIL-100(Fe); GO; Adsorption mechanism; Dyes

资金

  1. Shandong Provincial Natural Science Foundation , China [ZR2021MB105]

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The separation of synthetic dyes from industrial wastewaters is crucial for addressing water pollution. This study focuses on synthesizing new adsorbent materials, specifically MIL-100(Fe)@GO composites, with superior adsorption efficiency. The composites show excellent adsorption performance for various pollutant dyes, surpassing the values reported for pristine MIL-100(Fe). The adsorption behavior of the composites is determined by their structural and morphological characteristics, as well as by the properties of the dyes.
The separation of synthetic dyes from industrial wastewaters is an important objective in addressing water pollution. The removal of pollutant dyes from industrial wastewater prior to its release into the environment is an essential task; thus, synthesizing new adsorbent materials with superior adsorption efficiency is an important undertaking. Herein, we report the synthesis of MIL-100(Fe)@GO (graphene oxide) composites exhibiting superior adsorption performance toward methyl orange (MO), Congo red (CR), methylene blue (MB), and acid chrome blue K (AC). The room-temperature adsorption capacities of MIL-100(Fe)@GO-1 for these dyes were 533.7 (MB), 760.1 (MO), 1386.3 (AC), and 1786.6 (CR) mg g -1 , exceeding those values previously reported for pristine MIL-100(Fe) by 31.1%, 17.8%, 54.8%, and 8.9%, respectively. The adsorption behavior of the composites can be described on the basis of the structural and morphological characteristics and zeta potential of MIL-100(Fe)@GO and the adsorption capacity and structural characteristics of the dyes. The adsorption uptakes of MIL-100(Fe)@GO toward the pollutant dyes was controlled by the synergistic effects of the hydrogen-bonding, hydrophobic interactions, and pi- pi interactions and agglomeration pores of MIL-100(Fe)@GO. The obtained results revealed that the synergetic interplay of electrostatic, hydrogen-bonding, pi-pi, and hydrophobic interactions and adsorption space led to two distinct adsorption regimes for MO and AC depending on the adsorbate concentration. (c) 2022 Elsevier B.V. All rights reserved.

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