Faculty of Environmental Science and Engineering, Kunming University of Science and Technology, Kunming 650500, China.
Faculty of Environmental Science and Engineering, Kunming University of Science and Technology, Kunming 650500, China.
Environ Res. 2024 Oct 1;258:119360. doi: 10.1016/j.envres.2024.119360. Epub 2024 Jun 7.
The aggregation and limited activity of nanoscale zero-valent iron (NZVI) in aqueous media hinder its practical application. In this study, a cost-effective, environmentally friendly, robust, and efficient synthesis method for NZVI-based composite was developed. NZVI@Chitin-modified ZSM-5 (NZVI@C-ZSM) composite was facilely and greenly synthesized by loading NZVI into alkali-modified ZSM-5 molecular sieves after modifying with chitin as a surfactant and binder. NZVI@C-ZSM exhibited remarkable efficacy in TC removal, achieving a removal efficiency of 97.72% within 60 min. Compared with pristine NZVI, NZVI@C-ZSM demonstrated twice the removal efficiency, indicating that NZVI@C-ZSM effectively improved the dispersion and stability of NZVI. This enhancement provided more reactive sites for generating reactive oxygen species (ROS), significantly boosting catalytic activity and durability while reducing the potential risk of secondary pollution. An improved two-parameter pseudo-first-order kinetic model was used to effectively characterize the reaction kinetics. The mechanism for TC removal primarily involved an adsorption process and chemical oxidation-reduction reactions induced by hydroxyl radicals (•OH) and superoxide radicals (•O). Three potential degradation pathways for TC were suggested. Furthermore, NZVI@C-ZSM exhibited good resistance to interference, suggesting its broad potential for practical applications in complex environmental conditions. This study offers a viable material and method for addressing the issue of antibiotic-contaminated water, with potential applications in water resource management.
纳米零价铁(NZVI)在水介质中的聚集和有限的活性阻碍了其实际应用。在本研究中,开发了一种具有成本效益、环保、稳健和高效的基于 NZVI 的复合材料的合成方法。通过将 NZVI 负载到用壳聚糖作为表面活性剂和粘合剂改性的碱改性 ZSM-5 分子筛中,简便且绿色地合成了 NZVI@壳聚糖修饰的 ZSM-5(NZVI@C-ZSM)复合材料。NZVI@C-ZSM 在 TC 去除方面表现出显著的效果,在 60 分钟内达到了 97.72%的去除效率。与原始 NZVI 相比,NZVI@C-ZSM 的去除效率提高了一倍,表明 NZVI@C-ZSM 有效地改善了 NZVI 的分散性和稳定性。这种增强为产生活性氧物质(ROS)提供了更多的反应位点,显著提高了催化活性和耐久性,同时降低了二次污染的潜在风险。采用改进的双参数拟一级动力学模型有效地描述了反应动力学。TC 去除的主要机制涉及吸附过程和由羟基自由基(•OH)和超氧自由基(•O)诱导的化学氧化还原反应。提出了 TC 的三种潜在降解途径。此外,NZVI@C-ZSM 表现出良好的抗干扰能力,表明其在复杂环境条件下具有广泛的实际应用潜力。本研究为解决抗生素污染水问题提供了一种可行的材料和方法,有望在水资源管理中得到应用。