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新型三元纳米复合材料(TiO@FeO-壳聚糖)体系用于水中硝酸盐的去除:吸附-光催化方法。

Novel ternary nanocomposite (TiO@FeO-chitosan) system for nitrate removal from water: an adsorption cum photocatalytic approach.

机构信息

Ecology and Environment Research Group, Centre for Water Resources Development and Management, Kunnamangalam P.O., Calicut, 673571, Kerala, India.

出版信息

Environ Sci Pollut Res Int. 2024 Aug;31(38):50670-50685. doi: 10.1007/s11356-024-34553-7. Epub 2024 Aug 5.

Abstract

Nitrate pollution of water emerging from various anthropogenic activities has become a major environmental concern because of its deleterious effects on natural water resources. The present work deals with the synthesis of the ternary nanocomposite based on chitosan, iron oxide (FeO), and titanium dioxide (TiO) and its application for the removal of nitrates from model-contaminated water. FeO derived through a coprecipitation method was incorporated into the chitosan matrix which was fabricated in the form of beads. The wet gel beads were then successfully coated with sol-gel-derived silver-doped titanium dioxide sol followed by drying under suitable conditions to get the functional nanocomposite beads. The synthesized functional materials were further characterized for their structural, morphological, and textural features using X-ray diffraction analysis, physical property measurement (PPMS), Fourier transform infrared (FTIR) analysis, UV visible spectroscopy analysis (UV-vis), BET surface area analysis (BET), field emission scanning electron microscopic (FESEM), and transmission electron microscopy (TEM) analysis. The ternary nanocomposites were further used for the removal of nitrates via adsorption cum photocatalytic reduction technique from the model contaminated water when subjected to an adsorption study under dark conditions and photocatalytic study under UV/visible/sunlight for a definite time. FeO in the nanocomposite provides enhanced adsorption features whereas the functional coating of titanium dioxide aids in the removal of nitrates through the photocatalytic reduction technique. The functional beads containing 3% FeO in the wet gel form (CTA-F3) have excellent nitrate removal efficiency of ~ 97% via adsorption cum solar photocatalysis towards the removal of nitrate ions from 50 ppm nitrate solution, whereas the dried nanocomposite beads have got a nitrate removal efficiency of ~ 68% in 1 h from 100 ppm nitrate solution. Continuous flow adsorption cum photocatalytic study was performed further using the oven-dried functional beads in which flow rate and bed height were varied while maintaining the concentration of feed solution as constant. A nitrate removal efficiency of 65% and an adsorption capacity of 4.1 mgg were obtained for the CTA-F3 beads in the continuous flow adsorption cum photocatalysis experiment for up to 5 h when using an inlet concentration of 100 ppm, bed height 12 cm, and flow rate 5.0 ml min. A representative fixed-bed column adsorption experiment conducted using CTA-F3 beads for the treatment of a real groundwater sample shows reasonable results for nitrate removal (71.7% efficiency) along with a significant removal rate for the other anions as well. Thus, the novel adsorbent/photocatalyst developed is suitable for the removal of nitrates from water due to the synergistic effect between FeO, chitosan, and titanium dioxide.

摘要

硝酸盐污染是由各种人为活动引起的,它对天然水资源造成了有害影响,因此成为主要的环境关注点。本工作涉及基于壳聚糖、氧化铁 (FeO) 和二氧化钛 (TiO) 的三元纳米复合材料的合成及其在模型污染水中去除硝酸盐的应用。通过共沉淀法制备的 FeO 被掺入壳聚糖基质中,壳聚糖基质被制成珠粒形式。然后,湿凝胶珠粒成功地涂覆了溶胶-凝胶衍生的掺银二氧化钛溶胶,随后在适当的条件下干燥以获得功能纳米复合材料珠粒。通过 X 射线衍射分析、物理性能测量 (PPMS)、傅里叶变换红外 (FTIR) 分析、紫外可见光谱分析 (UV-vis)、BET 比表面积分析 (BET)、场发射扫描电子显微镜 (FESEM) 和透射电子显微镜 (TEM) 分析进一步对合成的功能材料进行了结构、形态和结构特征的表征。在黑暗条件下进行吸附研究和在紫外/可见/太阳光下进行光催化研究一定时间后,三元纳米复合材料进一步用于通过吸附-光催化还原技术从模型污染水中去除硝酸盐。纳米复合材料中的 FeO 提供了增强的吸附特性,而功能二氧化钛涂层则通过光催化还原技术有助于去除硝酸盐。在湿凝胶形式中含有 3% FeO 的功能珠粒(CTA-F3)对 50 ppm 硝酸盐溶液中的硝酸盐离子具有极好的去除效率,通过吸附-太阳能光催化去除率约为 97%,而干燥的纳米复合材料珠粒在 1 小时内从 100 ppm 硝酸盐溶液中去除率约为 68%。进一步使用在烘箱中干燥的功能珠粒在连续流动吸附-光催化研究中进行了连续流动吸附-光催化研究,同时保持进料溶液的浓度不变,改变流速和床层高度。在使用 100 ppm 入口浓度、12 cm 床层高度和 5.0 ml min 的流速的情况下,CTA-F3 珠粒在连续流动吸附-光催化实验中可获得 65%的硝酸盐去除效率和 4.1 mgg 的吸附容量,长达 5 小时。使用 CTA-F3 珠粒进行的实际地下水样本的代表性固定床柱吸附实验表明,硝酸盐去除效率为 71.7%,同时对其他阴离子也具有显著的去除率。因此,由于 FeO、壳聚糖和二氧化钛之间的协同作用,新型吸附剂/光催化剂适合从水中去除硝酸盐。

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