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Synthesis of Nano-Zinc Oxide Loaded on Mesoporous Silica by Coordination Effect and Its Photocatalytic Degradation Property of Methyl Orange

机译:甲基橙色的协调效应合成介孔二氧化硅上的纳米氧化锌及其光催化降解特性

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摘要

Salicylaldimine-modified mesoporous silica (Sal-MCM-3 and Sal-MCM-9) was prepared through a co-condensation method with different amounts of added salicylaldimine. With the coordination from the salicylaldimine, zinc ions were impregnated on Sal-MCM-3 and Sal-MCM-9. Then, Zn-Sal-MCM-3 and Zn-Sal-MCM-9 were calcined to obtain nano-zinc oxide loaded on mesoporous silica (ZnO-MCM-3 and ZnO-MCM-9). The material structures were systematically studied by Fourier transform infrared spectroscopy (FTIR), N2 adsorption/desorption measurements, X-ray powder diffraction (XRD), zeta potential, scanning electron microscopy (SEM), transmission electron microscopy (TEM), X-ray photoelectron spectroscopy (XPS), ultraviolet diffused reflectance spectrum (UV-vis DRS), and thermogravimetry (TGA). Methyl orange (MO) was used to investigate the photocatalysis behavior of ZnO-MCM-3 and ZnO-MCM-9. The results confirmed that nano ZnO was loaded in the channels as well as the outside surface of mesoporous silica (MCM-41). The modification of salicylaldimine helped MCM-41 to load more nano ZnO on MCM-41. When the modification amount of salicylaldimine was one-ninth and one-third of the mass of the silicon source, respectively, the load of nano ZnO on ZnO-MCM-9 and ZnO-MCM-3 had atomic concentrations of 1.27 and 2.03, respectively. ZnO loaded on ZnO-MCM-9 had a wurtzite structure, while ZnO loaded on ZnO-MCM-3 was not in the same crystalline group. The blocking effect caused by nano ZnO in the channels reduced the orderliness of MCM-41. The photodegradation of MO can be divided in two processes, which are mainly controlled by the surface areas of ZnO-MCM and the loading amount of nano ZnO, respectively. The pseudo-first-order model was more suitable for the photodegradation process.
机译:通过具有不同量加入的水杨酰胺的共聚方法制备水杨酰基亚胺改性的介孔二氧化硅(SAL-MCM-3和SAL-MCM-9)。随着Salicylaldimine的配位,锌离子浸渍在Sal-MCM-3和Sal-MCM-9上。然后,锌-SAL-MCM-3和Zn-SAL-MCM-9中煅烧以获得纳米氧化锌装载在介孔二氧化硅(ZnO的MCM-3和ZnO-MCM-9)。通过傅里叶变换红外光谱(FTIR),N 2吸附/解吸测量,X射线粉末衍射(XRD),Zeta电位,扫描电子显微镜(SEM),透射电子显微镜(TEM),X射线,X射线,X射线光电子光谱(XPS),紫外线扩散反射谱(UV-VIS DRS)和热重率(TGA)。甲基橙(Mo)用于研究ZnO-MCM-3和ZnO-MCM-9的光催化行为。结果证实,纳米ZnO被装入通道以及中孔二氧化硅的外表面(MCM-41)。水杨醛胺的改性有助于MCM-41在MCM-41上加载更多纳米ZnO。当水杨酰亚胺的改性量分别为硅源的质量的一九和三分之一时,ZnO-MCM-9和ZnO-MCM-3上的纳米ZnO的负载分别具有1.27和2.03的原子浓度。 ZnO-MCM-9上装载的ZnO具有紫立岩型结构,而ZnO-MCM-3上的ZnO不在相同的结晶组中。由通道中的纳米ZnO引起的阻塞效果降低了MCM-41的令人吻。 Mo的光降解可以分为两种方法,其主要由ZnO-MCM的表面积和纳米ZnO的装载量控制。伪第一阶模型更适合光降解过程。

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