首页> 外文期刊>Coatings >Sonophotocatalytic Degradation of Malachite Green by Nanocrystalline Chitosan-Ascorbic Acid@NiFe2O4 Spinel Ferrite
【24h】

Sonophotocatalytic Degradation of Malachite Green by Nanocrystalline Chitosan-Ascorbic Acid@NiFe2O4 Spinel Ferrite

机译:纳米晶壳聚糖 - 抗坏血酸@ NiFe2O4尖晶石铁氧体的Sonophotocatalytic降解孔雀石绿色

获取原文
           

摘要

Statistics show that more than 700 thousand tons of dye are produced annually across the globe. Around 10–20% of this is used in industrial processes such as printing and dyeing, while about 50% of the dye produced is discharged into the environment without proper physicochemical treatment. Even trace amounts of dye in water can reduce oxygen solubility and have carcinogenic, mutagenic, and toxic effects on aquatic organisms. Therefore, before dye-containing wastewater is discharged into the environment, it must be properly treated. The present study investigates the green synthesis of nickel ferrite NiFe2O4 (NIFE) spinel magnetic nanoparticles (MNPs) via chemical coprecipitation of a solution of Ni2 /Fe3 in the presence of a biopolymer blend of chitosan (CT) and ascorbic acid (AS). The magnetic nanomaterial was characterized by Fourier transform infrared spectroscopy (FTIR), X-ray diffraction (XRD), scanning electron microscopy–energy dispersive X-ray analysis (SEM-EDX), transmission electron microscopy (TEM), ultraviolet-visible spectroscopy (UV-Vis), differential scanning calorimetry (DSC), and vibrating-sample magnetometry (VSM). The material was further explored as a catalyst for the photocatalytic degradation of malachite green (MG) under visible light irradiation coupled with ultrasonic waves. The combination of 90 min of visible solar light irradiation with 6.35 W·mL?1 ultrasonic power at pH 8 resulted in 99% of the photocatalytic efficiency of chitosan-ascorbic acid@NIFE (CTAS@NIFE) catalyst for 70 mg·L?1 MG. The quenching of the photocatalytic efficiency from 98% to 64% in the presence of isopropyl alcohol (IPA) suggested the involvement of hydroxy (?OH) radicals in the mineralization process of MG. The high regression coefficients (R2) of 0.99 for 35, 55, and 70 mg·L?1 MG indicated the sonophotocatalysis of MG by CTAS@NIFE was best defined by a pseudo first-order kinetic model. The mechanism involves the adsorption of MG on the catalyst surface in the first step and thereby mineralization of the MG by the generated hydroxyl radicals (?OH) under the influence of visible radiation coupled with 6.34 W·mL?1 ultrasonic power. In the present study the application of photodegradation process with sonochemistry results in 99% of MG mineralization without effecting the material structure unlike happens in the case adsorption process. So, the secondary pollution (generally happens in case of adsorption) can be avoided by reusing the spent material for another application instead of disposing it. Thus, the ecofriendly synthesis protocol, ease in design of experimentation like use of solar irradiation instead of electric power lamps, reusability and high efficiency of the material suggested the study to be potentially economical for industrial development at pilot scale towards wastewater remediation.
机译:统计数据显示,全球每年生产超过700千吨染料。其中约10-20%用于印刷和染色等工业过程中,而制备的约50%的染料在没有适当的物理化学治疗的情况下排入环境中。甚至少量染料在水中可以降低氧溶解度并具有致癌,诱变和对水生生物的毒性作用。因此,在含染染料废水中排出到环境中,必须适当处理。本研究通过在壳聚糖(CT)和抗坏血酸(AS)的生物聚合物混合物存在下,通过化学共沉淀来研究镍铁氧体NiFe2O4(NiFe2O4(NiFe)尖晶石磁性纳米粒子(MNP)的绿色合成。磁性纳米材料的特征在于傅里叶变换红外光谱(FTIR),X射线衍射(XRD),扫描电子显微镜 - 能量分散X射线分析(SEM-EDX),透射电子显微镜(TEM),紫外线可见光谱( UV-VIS),差示扫描量热法(DSC)和振动样品磁体(VSM)。在可见光照射下,进一步探索该材料作为光催化催化剂的光催化剂,用于与超声波耦合的可见光照射下的孔雀石绿色(Mg)。在pH8的6.35W·mlΔ1超声波的可见太阳光照射的组合导致壳聚糖抗坏血酸@ NiFe(CTAS @ NiFe)催化剂的99%的光催化效率为70mg·l?1镁。在异丙醇(IPA)存在下,光催化效率从98%淬火到64%的情况下表明羟基(ΔH)基团在Mg的矿化过程中的参与。 35,55和70mg·l≤1mg的高回归系数(R2)为0.99,55和70mg·1mg表示CTAS @ NiFe的Sonophotocat分解由伪一阶动力学模型最佳地定义。该机制涉及在第一步中吸附Mg在第一步中的催化剂表面,从而在可见辐射的影响下,由所产生的羟基自由基(oh)与6.34W·mLα1超声波的影响,Mg的矿化。在本研究中,光降解过程与儿童化学的应用导致99%的Mg矿化,而不会影响案例吸附过程中发生的材料结构。因此,通过重用用于另一个应用的废料而不是将其进行处理,可以避免二次污染(通常发生在吸附的情况下)。因此,Ecofriendly合成方案,易于设计的实验,如使用太阳能照射而不是电力灯,可重用性和高效率的材料表明,该研究在飞行员朝向废水修复方面的工业开发潜在经济。

著录项

获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号