Li Wanying, Lei Yu, Fan Xiaoxuan, Wei Gang, Guo Lei
Research Center for High-Value Utilization of Waste Biomass, Institute of Biomedical Engineering, College of Life Science, Qingdao University, Qingdao 266071, China.
College of Chemistry and Chemical Engineering, Qingdao University, Qingdao 266071, China.
Materials (Basel). 2025 May 19;18(10):2356. doi: 10.3390/ma18102356.
As an essential trace element in the human body, fluoride is beneficial in appropriate amounts, but excessive intake can cause serious harm. Therefore, addressing the global water pollution caused by fluoride is an urgent issue. In this study, a functional composite membrane is successfully prepared using (EP) as the raw material, cinnamaldehyde (CIN) as a functional modifier, and EP-bioinduced ZrO nanoparticles (NPs) as the loading material via biomimetic mineralization technology. The experimental results demonstrate that the composite membrane removes fluoride ions (F) with an efficiency of over 99.9% within the concentration range of 100-400 mg/L. This excellent F removal performance is attributed to the ability of the hydroxyl groups on the surface of ZrO to exchange and bind with F. The formed CIN/EP-ZrO composite membrane also reveals significant antibacterial activity against . In addition, the adsorption rate for methylene blue at the concentration of 5-300 mg/L reaches 99.99%, which is due to the synergistic interaction of functional groups such as hydroxyl (-OH), carboxyl (-COOH), and amino groups (-NH) in EP. The overall sustainability footprint (OSF) assessment exhibits that the CIN/EP-ZrO composite membrane has comprehensive advantages, including a simple preparation process, low cost, high performance, and environmental friendliness. This study provides an innovative solution for the sustainable treatment of F, bacteria, and dye pollution in water, showcasing significant potential for applications in environmental science.
作为人体必需的微量元素,氟适量有益,但过量摄入会造成严重危害。因此,解决全球范围内由氟导致的水污染问题是当务之急。在本研究中,通过仿生矿化技术,成功制备了一种以环氧树脂(EP)为原料、肉桂醛(CIN)为功能改性剂、EP生物诱导ZrO纳米颗粒(NPs)为负载材料的功能复合膜。实验结果表明,该复合膜在100 - 400 mg/L的浓度范围内去除氟离子(F)的效率超过99.9%。这种优异的F去除性能归因于ZrO表面的羟基与F进行交换和结合的能力。所形成的CIN/EP-ZrO复合膜对……也表现出显著的抗菌活性。此外,在5 - 300 mg/L浓度下对亚甲基蓝的吸附率达到99.99%,这是由于EP中羟基(-OH)、羧基(-COOH)和氨基(-NH)等官能团的协同作用。总体可持续性足迹(OSF)评估表明,CIN/EP-ZrO复合膜具有制备工艺简单、成本低、性能高和环境友好等综合优势。本研究为水中F、细菌和染料污染的可持续处理提供了一种创新解决方案,在环境科学领域展现出巨大的应用潜力。