Tang Fengqin, Bai Hui, Chen Yahui, Shi Chunhui, Wang Dong, Zhang Yaju, Liu Wenyuan, Yang Ling, Hu Libing
Engineering Laboratory of Chemical Resources Utilization in South Xinjiang of Xinjiang Production and Construction Corps, College of Chemistry and Chemical Engineering, Tarim University Alar 843300 Xinjiang P. R. China
Analysis and Testing Center, Tarim University Alar 843300 Xinjiang P. R. China.
RSC Adv. 2024 Mar 27;14(14):10056-10069. doi: 10.1039/d3ra08201f. eCollection 2024 Mar 20.
The requirement for the removal of phosphorus (P) from wastewater has become progressively stringent, therefore, it is essential to remove low-concentration phosphate from secondary effluents through a tertiary treatment. One of the biggest challenges in removing phosphate from wastewater is the development of low-cost, green, and pollution-free adsorbents. In this study, novel, eco-friendly and low-cost CeO nanosphere modifying CoAl-LDH nanosheets (CoAl-LDH/CeO) were successfully fabricated using a classical hydrothermal strategy. The microstructure and morphology of CoAl LDH/CeO were characterized using SEM, TEM, FTIR, XRD, TG, XPS, and BET techniques. The performance of the P adsorption from water for CoAl-LDH/CeO was investigated. The influences of adsorption parameters, such as adsorbent dosage, pH, phosphate concentration, adsorption time, and experimental temperature, were investigated through batch adsorption experiments. The batch adsorption experiments showed that the P removal by CoAl-LDH/CeO could reach 93.4% at room temperature within 60 minutes. CoAl-LDH/CeO showed ultrafast and high-efficiency adsorption for low concentration P contaminated wastewater. Pseudo-second order model exhibited better fitting with the kinetics of the phosphate adsorption, while the Freundlich model well-described the isotherm results ( > 0.999). Although Cl, NOand SO coexisted in the solution, CoAl-LDH/CeO still possessed favourable selectivity for phosphates. More importantly, the adsorption capacities of CoAl-LDH/CeO retained over 85% after five cycles. Therefore, the low cost and sustainable utilization of CoAl-LDH/CeO for the phosphate removal from secondary effluent with phosphate at a low concentration highlights its potential application to alleviate eutrophication.
从废水中去除磷(P)的要求日益严格,因此,通过三级处理从二级出水中去除低浓度磷酸盐至关重要。从废水中去除磷酸盐面临的最大挑战之一是开发低成本、绿色且无污染的吸附剂。在本研究中,采用经典水热法成功制备了新型、环保且低成本的CeO纳米球修饰CoAl-LDH纳米片(CoAl-LDH/CeO)。利用扫描电子显微镜(SEM)、透射电子显微镜(TEM)、傅里叶变换红外光谱(FTIR)、X射线衍射(XRD)、热重分析(TG)、X射线光电子能谱(XPS)和比表面积分析仪(BET)技术对CoAl-LDH/CeO的微观结构和形貌进行了表征。研究了CoAl-LDH/CeO对水中磷的吸附性能。通过批量吸附实验研究了吸附剂用量、pH值、磷酸盐浓度、吸附时间和实验温度等吸附参数的影响。批量吸附实验表明,CoAl-LDH/CeO在室温下60分钟内对磷的去除率可达93.4%。CoAl-LDH/CeO对低浓度含磷废水表现出超快且高效的吸附性能。准二级动力学模型能更好地拟合磷酸盐吸附动力学,而弗伦德里希模型能很好地描述等温吸附结果(R²>0.999)。尽管溶液中存在Cl⁻、NO₃⁻和SO₄²⁻,CoAl-LDH/CeO对磷酸盐仍具有良好的选择性。更重要的是,CoAl-LDH/CeO经过五次循环后吸附容量仍保持在85%以上。因此,CoAl-LDH/CeO以低成本可持续地用于从二级出水中去除低浓度磷酸盐,凸显了其在缓解富营养化方面的潜在应用价值。