Li Jiacheng, Tian Tian, Jia Yannan, Xu Nannan, Yang Shujun, Zhang Chenyue, Gao Shiwei, Shen Wei, Wang Zheng
School of Civil Engineering, Nanjing Forestry University, Longpan Road 159#, Nanjing, 210037, China.
State Key Laboratory of Simulation and Regulation of Water Cycle in River Basin, China Institute of Water Resources and Hydropower Research, Beijing, 100038, China.
Environ Sci Pollut Res Int. 2023 Jan;30(2):4123-4136. doi: 10.1007/s11356-022-22524-9. Epub 2022 Aug 13.
Herein, an iron-doped ZIF-8-loaded multi-walled carbon nanotube (FZM) was synthesized and its adsorption performance on tetracycline (TC) was investigated. The experimental conditions (solution pH, temperature, adsorbent dose) were optimized by Box-Behnken design (BBD) in response surface methodology (RSM). The results show that the adsorption effect of TC by FZM is optimal under the conditions of temperature = 298 K, pH = 6, and contact time = 360 min. The adsorption processes of TC by FZM follow the pseudo-second-order (PSO) kinetic and Freundlich isotherm models, indicating that chemisorption is the dominant factor and the adsorption reaction is multi-layer, with a theoretical maximum saturation capacity of 1111.11 mg/g at 298 K. The adsorption thermodynamic results indicate that the adsorption of TC by FZM is a spontaneous and endothermic process. The mechanism of TC adsorption by FZM possibly occurs through hydrogen bonding, surface complexation, π-π interaction, and electrostatic interaction. From the statistical results, the optimal adsorption capacity of TC by FZM is 599.78 mg/g at a pH of 7.1, a temperature of 312.5 K, and an adsorbent dose of 64.43 mg/L, with a deviation of 1.73% from the actual value. Furthermore, regeneration experiments demonstrate that FZM has excellent reusability with a 15% loss of adsorption capacity after four cycles. This study provides some insights to study the adsorption behavior of TC by MOFs and the optimization of the adsorption experimental conditions, and also shows the potential of FZM for TC removal.
在此,合成了一种负载铁掺杂ZIF-8的多壁碳纳米管(FZM),并研究了其对四环素(TC)的吸附性能。采用响应面法(RSM)中的Box-Behnken设计(BBD)对实验条件(溶液pH值、温度、吸附剂剂量)进行了优化。结果表明,在温度=298 K、pH=6、接触时间=360 min的条件下,FZM对TC的吸附效果最佳。FZM对TC的吸附过程遵循准二级(PSO)动力学和Freundlich等温线模型,表明化学吸附是主导因素,吸附反应为多层吸附,在298 K时理论最大饱和吸附量为1111.11 mg/g。吸附热力学结果表明,FZM对TC的吸附是一个自发的吸热过程。FZM对TC的吸附机理可能通过氢键、表面络合、π-π相互作用和静电相互作用发生。从统计结果来看,在pH值为7.1、温度为312.5 K、吸附剂剂量为64.43 mg/L的条件下,FZM对TC的最佳吸附量为599.78 mg/g,与实际值的偏差为1.73%。此外,再生实验表明,FZM具有优异的可重复使用性,经过四个循环后吸附容量损失15%。本研究为研究MOFs对TC的吸附行为及吸附实验条件的优化提供了一些见解,也展示了FZM去除TC的潜力。