苯酚
响应面法
六方晶系
复合数
动能
化学工程
材料科学
化学
核化学
色谱法
复合材料
结晶学
有机化学
工程类
物理
量子力学
作者
Mehrazin Nikseresht,Davood Iranshahi,Alireza Badiei
摘要
Abstract The application of a novel composite MIL88A(Fe)/TiO 2 for phenol removal in a new hexagonal photoreactor design was investigated. The unique hexagonal shape of the reactor increases the surface area available for irradiation, leading to more efficient removal of contaminants. The composite was characterized using X ray diffraction (XRD), Fourier transform‐infrared spectroscopy (FTIR), and scanning electron microscopy (SEM) images to determine its properties. Photocatalyst dosage, reaction time, phenol concentration, pH, and mL H 2 O 2 /L PW (phenol wastewater) were chosen as effective parameters on the process. To plan an experiment and maximize phenol removal, the response surface methodology (RSM) was applied. Ideal conditions for optimum efficiency (95.96%) include initial phenol concentration of 58 mg/L, pH of 7.51, reaction time of 68.61 min, mL H 2 O 2 /L PW of 0.18, and catalyst dosage of 0.4 g/L PW. Trapping experiments prove that ˙O 2 and ˙OH produced in Fenton and photocatalytic processes are the predominant active radicals in this process. The kinetics was fitted with the first‐order, second‐order, n ‐order, and Langmuir–Hinshelwood models using nonlinear least squares techniques. The n ‐order model with n = 0.54 was found to be the most suitable model ( R 2 0.998), with a model constant of k = 0.11 (mol 0.46 /L 0.46 .s).
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