Bornas Behzad, Faraji Ali Reza, Ashouri Fatemeh
Department of Nano Chemistry, Faculty of Pharmaceutical Chemistry, Tehran Medical Sciences, Islamic Azad University Tehran Iran.
Department of Organic Chemistry, Faculty of Pharmaceutical Chemistry, Tehran Medical Sciences, Islamic Azad University Tehran Iran
RSC Adv. 2023 Mar 28;13(15):9846-9863. doi: 10.1039/d2ra07102a. eCollection 2023 Mar 27.
Owing to the great demand for using sustainable, renewable, and widely available materials in catalytic systems for the conversion of waste/toxic material to high value-added and harmless products, biopolymers derived from natural sources have demonstrated great promise as an alternative to state-of-the-art materials that suffer from high costs and limitations. These have encouraged us to design and fabricate a new super magnetization of Mn-FeO-SiO/amine-glutaraldehyde/chitosan bio-composite (MIOSC--NH@CS-Mn) for advanced/aerobic oxidation process. The morphological and chemical characterization of the as-prepared magnetic bio-composite was assessed using ICP-OES, DR UV-vis, BET, FT-IR, XRD, FE-SEM, HR-TEM, EDS, and XPS techniques. The PMS + MIOSC--NH@CS-Mn system was capable of degrading methylene orange (98.9% of removal efficiency) and selectively oxidizing ethylbenzene to acetophenone (conversion 93.70%, selectivity 95.10% and TOF 214.1 (10 h) within 8.0 min and 5.0 h, respectively. Moreover, MO was efficiently mineralized (TOC removal of ∼56.61) by MIOSC--NH@CS-Mn with 60.4%, 5.20, 0.03 and 86.02% of the synergistic index, reaction stoichiometric efficiency, specific oxidant efficiency, and oxidant utilization ratio in wide pH ranges, respectively. An understanding of its vital parameters and relationship of catalytic activity with structural, environmental factors, leaching/heterogenicity test, long-term stability, inhibitory effect of anions in water matrix, economic study and response surface method (RSM) were evaluated in detail. Overall, the prepared catalyst could be employed as an environmentally friendly and low-cost candidate for the enhanced activation of PMS/O as an oxidant. Additionally, MIOSC--NH@CS-Mn exhibited great stability, high recovery efficiency, and low metal leaching, which eliminated the harsh condition reaction and supplied practical application performance for water purification and selective aerobic oxidation of organic compounds.
由于在催化系统中使用可持续、可再生且广泛可用的材料将废物/有毒物质转化为高附加值和无害产品的需求巨大,源自天然来源的生物聚合物已显示出作为现有材料替代品的巨大潜力,现有材料存在成本高和局限性。这些促使我们设计并制造一种用于高级/好氧氧化过程的新型Mn-FeO-SiO/胺-戊二醛/壳聚糖生物复合材料(MIOSC--NH@CS-Mn)的超级磁化材料。使用ICP-OES、DR紫外-可见光谱、BET、傅里叶变换红外光谱、X射线衍射、场发射扫描电子显微镜、高分辨率透射电子显微镜、能谱和X射线光电子能谱技术对制备的磁性生物复合材料进行了形态和化学表征。PMS + MIOSC--NH@CS-Mn系统能够分别在8.0分钟和5.0小时内降解亚甲基橙(去除效率98.9%)并将乙苯选择性氧化为苯乙酮(转化率93.70%,选择性95.10%,TOF 214.1(10小时))。此外,MIOSC--NH@CS-Mn在较宽的pH范围内分别以60.4%、5.20、0.03和86.02%的协同指数、反应化学计量效率、特定氧化剂效率和氧化剂利用率有效地将MO矿化(TOC去除率约为56.61)。详细评估了其关键参数以及催化活性与结构、环境因素的关系、浸出/非均质性测试、长期稳定性、水基质中阴离子的抑制作用、经济研究和响应面法(RSM)。总体而言,制备的催化剂可作为一种环保且低成本的候选材料,用于增强PMS/O作为氧化剂的活化。此外,MIOSC--NH@CS-Mn表现出极大的稳定性、高回收效率和低金属浸出,消除了苛刻的条件反应,并为水净化和有机化合物的选择性好氧氧化提供了实际应用性能。