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首页> 外文期刊>Journal of Electronic Materials >Construction of the Core-Shell Tourmaline@ZnO Micro-nano Structure Towards the Highly Efficient Degradation of Organic Pollutants
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Construction of the Core-Shell Tourmaline@ZnO Micro-nano Structure Towards the Highly Efficient Degradation of Organic Pollutants

机译:核心外壳灌注型@ ZnO微纳米结构朝向有机污染物的高效降解

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摘要

In this research, unique Tourmaline@ZnO micro-nano structure were constructed by surface-coating using uniform precipitation, with tourmaline particles as the inner core and nano-zinc oxide as the outer layer. In order to explore the optimized preparation conditions towards the highly efficient degradation of organic pollutant, the preparative experiments were implemented based on the two most crucial processing parameters: growth temperature and dosage of tourmaline. The structure, morphology and surface analysis of as-prepared core-shell composites were systemically characterized by x-ray diffraction, scanning electron microscopy, transmission electron microscopy, Brunauer-Emmett-Teller and x-ray photoelectron spectroscopy measurements, then the optical and optoelectrical properties were tested by ultraviolet-visible spectroscopy, photoluminescence spectroscopy and electrochemical performance. The photocatalysis performances were evaluated by selecting methyl orange as the model dye under the irradiation of a xenon lamp. In the case of a growth temperature of 100 degrees C and tourmaline introduction amount of 3 wt.%, the correlated investigations confirmed that the hybrid tourmaline@nano-ZnO product achieved the most efficient degradation efficiency of 90% and the fastest reaction velocity of 0.8889 h(-1) respectively within 2 h, with an enhancement of 9% and 36% compared to pure ZnO (the degradation rate was 81% and reaction rate was 0.6521 h(-1)). The tourmaline core was confirmed to make important contributions to the growth morphology and degradation performance of ZnO-based photocatalytic materials. The introduction of tourmaline will play a key role in the properties modification of metal oxide.
机译:在这项研究中,独特的Tourmaline@ZnO以电气石颗粒为内芯,纳米氧化锌为外层,采用均匀沉淀法进行表面包覆,形成微纳米结构。为了探索高效降解有机污染物的最佳制备条件,基于两个最关键的工艺参数:电气石的生长温度和用量进行了制备实验。通过x射线衍射、扫描电子显微镜、透射电子显微镜、Brunauer-Emmett-Teller和x射线光电子能谱测量对制备的核壳复合材料的结构、形貌和表面分析进行了系统表征,然后通过紫外可见光谱测试了其光学和光电性能,光致发光光谱和电化学性能。以甲基橙为模型染料,在氙灯照射下对其光催化性能进行了评价。在生长温度为100摄氏度,电气石引入量为3 wt.%的情况下,相关研究证实,混合tourmaline@nano-氧化锌产品在2h内的降解效率最高,为90%,反应速度最快,分别为0.8889 h(-1),与纯氧化锌相比,降解率提高了9%,反应速度提高了36%(降解率为81%,反应速度为0.6521 h(-1))。电气石核被证实对ZnO基光催化材料的生长形态和降解性能有重要贡献。电气石的引入将在金属氧化物的改性中发挥关键作用。

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