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首页> 外文期刊>Journal of Chemical Technology & Biotechnology >Synthesis and characterization of ZnZr composites for the photocatalytic degradation of phenolic molecules: addition effect of ZrO2 over hydrozincite Zn-5(OH)(6)(CO3)(2)
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Synthesis and characterization of ZnZr composites for the photocatalytic degradation of phenolic molecules: addition effect of ZrO2 over hydrozincite Zn-5(OH)(6)(CO3)(2)

机译:酚类分子光催化降解ZnZR复合材料的合成与表征:ZrO2在羟基齐嗪Zn-5(OH)(6)(CO 3)(2)中的添加效应

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摘要

BACKGROUND The composite materials ZrO2/Zn-5(OH)(6)(CO3)(2) were prepared in only one step by chemical co-precipitation and thermal hydrolysis of urea. ZrO2 was added at 5, 8 and 10 mol%. The samples were dried at 80 degrees C and characterized by adsorption-desorption of N-2 isotherms, X-ray diffraction (XRD) and scanning electron microscopy (SEM) techniques, and diffuse reflectance (DRS), UV-visible, Fourier-transform infrared (FTIR) and X-ray photoelectron (XPS) spectroscopies. The materials were assessed in the photodegradation of phenol and polychlorinated phenolic molecules under UV-light irradiation. The possible mechanism was discussed from studies that corroborated or discarded the formation of the species center dot OH, center dot O-2(-) and h(+). RESULTS The addition of ZrO2 to Zn-5(OH)(6)(CO3)(2) resulted in a composite material with high photoactivity. The material containing 8 mol% of ZrO2 (ZnZr-8.0%) was the sample with the best percentages of photodegradation and mineralization. The photodegradation enhancement was achieved partly by an increment in the specific surface area and principally due to localized states originating in the composite interphase which improved charge transfer. XPS study revealed that the ZrO2 addition increases the oxygen vacancies which enhanced the organic molecule photodegradation via direct hole attack. CONCLUSION The ZnZr composite system constitutes an excellent alternative for the photodegradation of persistent organic pollutants due to the low cost, high stability and null toxicity of the support Zn-5(OH)(6)(CO3)(2). (c) 2019 Society of Chemical Industry
机译:背景技术通过化学共沉淀和尿素的热水解仅逐步制备复合材料ZrO2 / Zn-5(OH)(6)(2)。在5,8和10mol%中加入ZrO 2。将样品在80℃下干燥,其特征在于N-2等温线的吸附 - 解吸,X射线衍射(XRD)和扫描电子显微镜(SEM)技术,并漫射反射​​率(DRS),UV可见,傅立叶变换红外(FTIR)和X射线光电子和X射线光电子(XPS)光谱。在紫外光照射下评估了在苯酚和多氯酚类分子的光降解中的材料。从证实或丢弃物种中心点OH,中心点O-2( - )和H(+)的形成的研究讨论了可能的机制。结果加入ZrO2至Zn-5(OH)(OH)(6)(CO 3)(2),得到具有高光活性的复合材料。含有8摩尔%的ZrO2(ZnZR-8.0%)的材料是具有最佳光降解和矿化百分比的样品。通过在比表面积中的增量部分地实现光降解增强,并且主要是由于源自源自改善电荷转移的复合间界面的局部状态。 XPS研究表明,ZrO2添加增加了通过直接孔攻击增强了有机分子光降解的氧空位。结论ZnZR复合体系是由于支撑Zn-5(OH)(6)(CO 3)(2)的低成本,高稳定性和零毒性,持续有机污染物光降解的优异替代方案。 (c)2019年化学工业协会

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