Negarestani Mehrdad, Farimaniraad Hamidreza, Mollahosseini Afsaneh, Kheradmand Asiyeh, Shayesteh Hadi
Department of Civil and Environmental Engineering, Iran University of Science and Technology (IUST), Tehran, Iran.
School of Environment, College of Engineering, University of Tehran, Tehran, Iran.
Int J Phytoremediation. 2023;25(5):586-597. doi: 10.1080/15226514.2022.2093834. Epub 2022 Jul 3.
In the present study, sisal-Fe/Zn LDH bio-nanocomposite for efficiently removing rifampin was synthesized using a simple co-precipitation method. SEM, XRD, and FTIR analyses were applied to characterize the prepared composite. In the following, different factors that are affecting the adsorption of rifampin, including contact time, initial rifampin concentration, adsorbent dosage, and temperature were evaluated. Also, the kinetic, isotherm, and thermodynamic studies were investigated. The results indicated that Freundlich ( = 0.9976) was a suitable model for describing the adsorption equilibrium and adsorption kinetic showed that the data are in maximum agreement with the pseudo-second-order kinetic model ( = 0.9931). According to the Langmuir isotherm model, the maximum adsorption capacity of rifampin was found to be 40.00 mg/g. The main mechanisms for rifampin elimination were introduced as electrostatic attraction and physical adsorption. Moreover, the spontaneity and nature of the reaction were analyzed by elucidating thermodynamic factors that indicated the adsorption process was exothermic and spontaneous. Also, the batch process design indicated that for treating 10 L wastewater containing 100 mg/L rifampin with a removal efficiency of 96%, the needed amount of sisal-Fe/Zn LDH is 51.6 g. This study revealed that the sisal-Fe/Zn LDH bio-nanocomposites as a low-cost adsorbent have promising adsorption potential.
在本研究中,采用简单的共沉淀法合成了用于高效去除利福平的剑麻-Fe/Zn层状双氢氧化物生物纳米复合材料。应用扫描电子显微镜(SEM)、X射线衍射(XRD)和傅里叶变换红外光谱(FTIR)分析对制备的复合材料进行表征。接下来,评估了影响利福平吸附的不同因素,包括接触时间、初始利福平浓度、吸附剂用量和温度。此外,还进行了动力学、等温线和热力学研究。结果表明,弗伦德里希(Freundlich)模型(R² = 0.9976)适合描述吸附平衡,吸附动力学表明数据与伪二级动力学模型(R² = 0.9931)高度吻合。根据朗缪尔等温线模型,利福平的最大吸附容量为40.00 mg/g。利福平去除的主要机制为静电吸引和物理吸附。此外,通过阐明热力学因素分析了反应的自发性和性质,结果表明吸附过程是放热且自发的。同时,间歇过程设计表明,对于处理10 L含100 mg/L利福平且去除效率为96%的废水,所需剑麻-Fe/Zn层状双氢氧化物的量为51.6 g。本研究表明,剑麻-Fe/Zn层状双氢氧化物生物纳米复合材料作为一种低成本吸附剂具有良好的吸附潜力。