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Synthesis of EDTA-functionalized graphene oxide-chitosan nanocomposite for simultaneous removal of inorganic and organic pollutants from complex wastewater

吸附 热重分析 化学 朗缪尔吸附模型 傅里叶变换红外光谱 结晶紫 核化学 纳米复合材料 零电荷点 石墨烯 无机化学 化学工程 材料科学 有机化学 纳米技术 工程类 病理 医学
作者
Monu Verma,Ingyu Lee,Joosung Oh,Vinod Kumar,Hyunook Kim
出处
期刊:Chemosphere [Elsevier BV]
卷期号:287 (Pt 4): 132385-132385 被引量:130
标识
DOI:10.1016/j.chemosphere.2021.132385
摘要

Discharging of inorganic and organic pollutants creates a serious threat to the human health and the environment. In the current work, we have synthesized Ethylenediaminetetraacetic acid (EDTA) functionalized graphene oxide-chitosan nanocomposite (GO-EDTA-CS) for simultaneous removal of inorganic (i.e., mercury (Hg(II) and copper (Cu(II)) and organic pollutants (i.e., methylene blue (MB) and crystal violet (CV)) from wastewater via adsorption process. The structural, functional, morphological, elemental compositions, surface area and thermal properties of the synthesized nanocomposite were identified using powder X−ray diffraction (XRD), Fourier transform infrared spectroscopy (FTIR), field scanning electron microscopy (FESEM), energy dispersive spectroscopy (EDS), Brunauer−Emmett−Teller (BET), and thermogravimetric analyzer (TGA), respectively. Different batch adsorption experiments such as pH effect, contact time, initial pollutants concentration, reusability etc. were studied in monocomponent system to optimize the results. The adsorption process apparently followed pseudo−second−order (PSO) kinetics for both pollutants, however the adsorption kinetics was also explained by the intra−particle diffusion model. The isotherm data for both metals ions and dyes were well fit by the Langmuir isotherm model. The maximum adsorption capacities of the adsorbent were determined 324 ± 3.30 130 ± 2.80, 141 ± 6.60, and 121 ± 3.50 mg g −1 for Hg(II), Cu(II), MB, and CV, respectively. The excellent adsorption capacity was attributed to the availability of various active functional groups (e.g., –COOH, –OH, –NH 2 , etc.) on the adsorbent. The EDS, elemental mapping and FTIR analysis performed before and after the adsorption of heavy metals and dyes by GO-EDTA-CS confirmed the simultaneous adsorption of the pollutants. Moreover, GO-EDTA-CS could maintain its adsorption capacity for both inorganic and organic pollutants even after seven cycles of adsorption-desorption, indicating itself a promising adsorbent for practical wastewater treatment containing both inorganic and organic toxic pollutants. • Both heavy metal ions and organic dyes removed via EDTA functionalized GO−CS nanocomposite. • Adsorption capacity of 324±3.30, 130±2.80, 141±6.60, and 121±3.50 mg g −1 obtained for Hg(II), Cu(II), MB, and CV, respectively. • Adsorption mechanism of both metals and dyes by GO−EDTA−CS confirmed by EDS, mapping and FTIR. • Removal efficiency of >96.47% observed for multiple metals and dyes in real wastewater.
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