Efficient adsorption of azo anionic dye Congo Red by micro-nano metal-organic framework MIL-68(Fe) and MIL-68(Fe)/chitosan composite sponge: Preparation, characterization and adsorption performance

吸附 刚果红 壳聚糖 复合数 Zeta电位 解吸 材料科学 核化学 金属有机骨架 金属 傅里叶变换红外光谱 化学工程 化学 无机化学 纳米技术 纳米颗粒 冶金 有机化学 复合材料 工程类
作者
Yonghui Jin,Liuping Fan,Yanhui Li,Qiuju Du,Fengling Song,Bing Chen,Kewei Chen,Yang Zhang,Mingzhen Wang,Yaohui Sun,Shiyong Zhao,Zhenyu Jing,Xinxin Pi,Yuqi Wang,Dechang Wang
出处
期刊:International Journal of Biological Macromolecules [Elsevier]
卷期号:252: 126198-126198 被引量:6
标识
DOI:10.1016/j.ijbiomac.2023.126198
摘要

Micro-nano metal-organic framework (MIL-68(Fe)) for efficient adsorption of azo anionic dye Congo red (CR) was successfully prepared by one-step hydrothermal method under acidic environment. And a MIL-68(Fe)/chitosan composite sponge (MIL-68(Fe)/CS) was prepared under the coating of chitosan (CS). After comparing the performance of MIL-68(Fe) and MIL-68(Fe)/CS, we focus on exploring MIL-68(Fe)/CS. It ensured the CR removal efficiency while reaching the adsorption equilibrium faster than MIL-68(Fe), and solved the defect that the powder was difficult to be stripped by water after adsorption. The physicochemical properties and surface morphology of the adsorbent were characterized by SEM, FTIR, XRD, TGA, BET, and Zeta potential. The effects of pH, contact time, adsorbent dosage, initial solution concentration and temperature on the adsorption performance of the adsorbent were systematically analyzed. The pseudo-second-order model and the Sips model were most consistent for the adsorption process, indicating that the adsorption process of MIL-68(Fe)/chitosan composite sponge on CR is a complex physicochemical process. The removal rates of CR by MIL-68(Fe) and MIL-68(Fe)/chitosan composite sponge reached the maximum values of 99.55 % and 99.51 % at 318 K, respectively. And the maximum adsorption capacity of CR by MIL-68(Fe)/chitosan composite sponge at 318 K was 1184.16 mg·g-1. After six cycles of adsorption and desorption, the removal rate of CR was still higher than 80 %. The synergistic effects of π-π stacking, electrostatic interactions, hydrogen bonding and pore filling have important effects on CR removal.
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