Department of Chemistry, Banasthali Vidyapith, Banasthali, Rajasthan, 304022, India.
Department of Chemistry, Banasthali Vidyapith, Banasthali, Rajasthan, 304022, India; School of Chemical Sciences, Central University of Gujarat, Gandhinagar, 382030, India.
Environ Pollut. 2020 Mar;258:113773. doi: 10.1016/j.envpol.2019.113773. Epub 2019 Dec 9.
Excess fluoride concentration in drinking water is a global issue, as this has an adverse effect on human health. Several adsorbents have been synthesized from natural raw material to remove fluoride from water. Reported adsorbents have some problems with the leaching of metal ions, fewer adsorption sites, and low adsorption capacity. Therefore, to address this, an effective biomaterial derived from the Luffa cylindrica (LC), containing many active sites, was integrated with a nano form of cerium oxide to form a robust, biocompatible, highly porous, and reusable LC-Ce adsorbent. This synthesized biosorbent offers better interaction between the active sites of LC-Ce and fluoride, resulting in higher adsorption capacity. Several factors, influence the adsorption process, were studied by a central composite design (CCD) model of statistical analysis. Langmuir's and Freundlich's models well describe the adsorption and kinetics governed by the pseudo-second-order model. The maximum monolayer adsorption capacity was found to be 212 and 52.63 mg/g for LC-Ce and LC, respectively determined by the Langmuir model. Detailed XPS and FTIR analyses revealed the underlying mechanism of fluoride adsorption via ion-exchange, electrostatic interaction, H-bonding, and ion-pair formation. All the results indicate that LC-Ce could serve as a suitable adsorbent for efficient fluoride removal (80-85%).
饮用水中过量的氟浓度是一个全球性的问题,因为这会对人类健康产生不利影响。已经有几种吸附剂是由天然原料合成的,用于从水中去除氟化物。已报道的吸附剂存在金属离子浸出、吸附位点较少和吸附容量低等问题。因此,为了解决这个问题,一种有效的生物材料是由丝瓜(LC)制成的,它含有许多活性位点,并与纳米形式的氧化铈结合,形成一种坚固、生物相容、高多孔和可重复使用的 LC-Ce 吸附剂。这种合成的生物吸附剂提供了 LC-Ce 和氟化物之间更好的活性位点相互作用,从而具有更高的吸附容量。通过统计分析的中心复合设计(CCD)模型研究了影响吸附过程的几个因素。Langmuir 和 Freundlich 模型很好地描述了由拟二级模型控制的吸附和动力学。通过 Langmuir 模型,发现 LC-Ce 的最大单层吸附容量为 212 和 52.63 mg/g,分别为 LC-Ce 和 LC。详细的 XPS 和 FTIR 分析揭示了通过离子交换、静电相互作用、氢键和离子对形成进行氟吸附的潜在机制。所有结果表明,LC-Ce 可以作为一种有效的去除氟化物的吸附剂(80-85%)。