Ecosphere Resilience Research Centre, Faculty of Applied Science, University of Sri Jayewardenepura, Sri Lanka.
Department of Animal and Plant Sciences, The University of Sheffield, Sheffield, S10 2TN, United Kingdom.
Chemosphere. 2019 Dec;236:124384. doi: 10.1016/j.chemosphere.2019.124384. Epub 2019 Jul 16.
This study evaluates a novel adsorbent for ciprofloxacin (CPX) removal from water using a composite derived from municipal solid waste biochar (MSW-BC) and montmorillonite (MMT). The composite adsorbent and pristine materials were characterized using powder X-Ray Diffraction (PXRD), Fourier-Transform Infrared (FTIR) spectroscopy, and Scanning Electron Microscope (SEM) before and after the adsorption. Batch experiments were conducted to study the mechanisms involved in the adsorption process. Ciprofloxacin sorption mechanisms were interpreted in terms of its pH-dependency and the distribution coefficients. The SEM images confirmed the successful binding of MMT onto the MSW-BC through flaky structure along with a porous morphology. Encapsulation of MMT onto MSW-BC was exhibited through changes in the basal spacing of MMT via PXRD analysis. Results from FTIR spectra indicated the presence of functional groups for both pristine materials and the composite that were involved in the adsorption reaction. The Hill isotherm model and pseudo-second-order and Elovich kinetic models fitted the batch sorption data, which explained the surface heterogeneity of the composite and cooperative adsorption mechanisms. Changes made to the MSW-BC through the introduction of MMT, enhanced the active sites on the composite adsorbent, thereby improving its interaction with ionizable CPX molecules giving high sorption efficiency.
本研究采用城市固体废物生物炭(MSW-BC)和蒙脱石(MMT)复合材料评估了一种用于从水中去除环丙沙星(CPX)的新型吸附剂。在吸附前后,使用粉末 X 射线衍射(PXRD)、傅里叶变换红外(FTIR)光谱和扫描电子显微镜(SEM)对复合吸附剂和原始材料进行了表征。进行了批量实验以研究吸附过程中涉及的机制。根据其 pH 依赖性和分配系数,解释了环丙沙星的吸附机制。SEM 图像通过 PXRD 分析确认了 MMT 通过片状结构与多孔形态成功结合到 MSW-BC 上。MMT 封装到 MSW-BC 上通过 MMT 的基面间距的变化来展示。FTIR 光谱的结果表明,原始材料和复合材料都存在参与吸附反应的官能团。Hill 等温线模型、拟二级和 Elovich 动力学模型拟合了批量吸附数据,这解释了复合材料的表面不均匀性和协同吸附机制。通过在 MSW-BC 中引入 MMT 对其进行改性,增强了复合吸附剂上的活性位点,从而提高了其与可离子化 CPX 分子的相互作用,从而提高了吸附效率。