Abdel-Salam M O, Yoon Taeho
School of Chemical Engineering, Yeungnam University, Gyeongsan, Gyeongbuk, 38541, Republic of Korea; Nanotechnology Research Center, Egyptian Petroleum Research Institute (EPRI), Nasr City, Cairo PO, 11727, Cairo, Egypt.
School of Chemical Engineering, Yeungnam University, Gyeongsan, Gyeongbuk, 38541, Republic of Korea.
Environ Res. 2022 Apr 1;205:112424. doi: 10.1016/j.envres.2021.112424. Epub 2021 Nov 26.
The activation of peroxymonosulfate (PMS) by nanocatalysts has shown promise as an effective wastewater treatment protocol. Magnetic CoFeO/Ag-nanoparticles (NPs) anchored on functionalized multiwalled carbon nanotubes (fMWCNTs), a support material, were synthesized using a one-pot solvothermal method. The surface morphologies and physicochemical properties of the CoFeO/Ag-fMWCNT hybrid nanocomposite catalyst were investigated by powder X-ray diffraction analysis, field-emission scanning electron microscopy, energy-dispersive X-ray spectroscopy, high-resolution transmission electron microscopy, Fourier transform infrared spectroscopy, X-ray photoelectron spectroscopy, and nitrogen adsorption-desorption isotherms. The activity of the nanocomposite combined with PMS (serving as an activator) toward the degradation of rhodamine B, methylene blue, methyl orange, and methyl red was investigated. The obtained optimal 0.02 g CoFeO/Ag-fMWCNTs exhibited the highest PMS activation performance, with a removal percentage of 100% for 20 ppm dye concentration at pH 6.5 within 14 min. In addition, the rhodamine B degradation product was investigated by analyzing the intermediate products by liquid chromatography/mass spectrometry (LC-MS). The homogeneous distribution of CoFeO/Ag NPs on fMWCNTs accelerated PMS activation and enhanced the catalytic degradation of dyes. The effects of the reaction parameters on the dye degradation efficiency were investigated by using different nanocatalysts (fMWCNTs, CoFeO/fMWCNTs, and CoFeO/Ag-fMWCNTs) as well as by varying the pH (3-11), dye concentration (10-50 mg/l), catalyst dose (0.002-0.3 g), and PMS dose (0.02-0.1 g). Quenching experiments revealed that sulfate radicals are primarily responsible for rhodamine B degradation. A plausible mechanism for catalytic PMS activation was also proposed. Complete decolorization occurred within the first few minutes of the reaction. Furthermore, the catalytic activity of the CoFeO/Ag-fMWCNT/PMS hybrid nanocomposite remained stable after five successive cycles. This study verifies the applicability of CoFeO/Ag-fMWCNTs as an ultrafast catalyst for the complete removal of persistent organic pollutants via PMS activation, revealing their promising application in wastewater treatment.
通过纳米催化剂激活过氧单硫酸盐(PMS)已显示出有望成为一种有效的废水处理方案。采用一锅溶剂热法合成了负载在功能化多壁碳纳米管(fMWCNTs)(一种载体材料)上的磁性CoFeO/Ag纳米颗粒(NPs)。通过粉末X射线衍射分析、场发射扫描电子显微镜、能量色散X射线光谱、高分辨率透射电子显微镜、傅里叶变换红外光谱、X射线光电子能谱和氮吸附-脱附等温线对CoFeO/Ag-fMWCNT杂化纳米复合催化剂的表面形貌和理化性质进行了研究。研究了该纳米复合材料与PMS(作为活化剂)对罗丹明B、亚甲基蓝、甲基橙和甲基红的降解活性。所制备的最佳0.02 g CoFeO/Ag-fMWCNTs表现出最高的PMS活化性能,在pH 6.5、14分钟内对20 ppm的染料浓度去除率达100%。此外,通过液相色谱/质谱(LC-MS)分析中间产物对罗丹明B降解产物进行了研究。CoFeO/Ag NPs在fMWCNTs上的均匀分布加速了PMS活化并增强了染料的催化降解。通过使用不同的纳米催化剂(fMWCNTs、CoFeO/fMWCNTs和CoFeO/Ag-fMWCNTs)以及改变pH(3-11)、染料浓度(10-50 mg/l)、催化剂剂量(0.002-0.3 g)和PMS剂量(0.02-0.1 g)研究了反应参数对染料降解效率的影响。猝灭实验表明硫酸根自由基是罗丹明B降解的主要原因。还提出了催化PMS活化的合理机制。反应最初几分钟内实现了完全脱色。此外,CoFeO/Ag-fMWCNT/PMS杂化纳米复合材料在连续五个循环后催化活性保持稳定。本研究验证了CoFeO/Ag-fMWCNTs作为一种超快催化剂通过PMS活化完全去除持久性有机污染物的适用性,揭示了其在废水处理中的应用前景。