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首页> 外文期刊>The Korean journal of chemical engineering >Controlling the recombination of electron-hole pairs by changing the shape of ZnO nanorods via sol-gel method using water and their enhanced photocatalytic properties
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Controlling the recombination of electron-hole pairs by changing the shape of ZnO nanorods via sol-gel method using water and their enhanced photocatalytic properties

机译:通过用水溶胶-凝胶法改变ZnO纳米棒的形状并增强其光催化性能来控制电子-空穴对的重组

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ZnO nanorods were prepared through a sol-gel process by adding various amounts of water at low temperature and atmospheric pressure conditions for application as a photocatalyst. The 1-D ZnO nanostructures can overcome fast recombination of photogenerated electrons and holes that inhibits photocatalytic efficiency. X-ray diffractometer and transmission electron microscopy measurements confirmed that the (002)/(100) intensity ratio increased from 0.83 to 1.34 and the morphology of the ZnO nanoparticles was changed from a spherical shape to nanorods with the addition of water. UV-vis spectroscopy showed a red shift from 360 nm to 371 nm, which indicates a decrease of the band gap energy. PL measurements of the ZnO nanorods showed a 103 times improvement of the NBE/DLE intensity ratio compared to the ZnO nanospheres. When the photocatalytic efficiency of the ZnO nanoparticles was estimated for the degradation of methylene blue dye under irradiation of UV light, the photocatalytic kinetic constant increased from 0.067 min(-1) to 0.481 min(-1). As a result, longer ZnO nanorods showed better photocatalytic performance.
机译:通过在低温和大气压条件下添加各种量的水作为光催化剂,通过溶胶-凝胶法制备ZnO纳米棒。一维ZnO纳米结构可以克服光生电子和空穴的快速复合,从而抑制光催化效率。 X射线衍射仪和透射电子显微镜测量证实(002)/(100)强度比从0.83增加到1.34,并且添加水后ZnO纳米颗粒的形态从球形变为纳米棒。紫外可见光谱显示从360 nm到371 nm的红移,表明带隙能量降低。与ZnO纳米球相比,ZnO纳米棒的PL测量显示NBE / DLE强度比提高了103倍。当估计ZnO纳米粒子对亚甲基蓝染料在紫外线照射下的降解的光催化效率时,光催化动力学常数从0.067 min(-1)增加到0.481 min(-1)。结果,更长的ZnO纳米棒表现出更好的光催化性能。

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