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Fabrication of ZnO@Ag3PO4 Core-Shell Nanocomposite Arrays as Photoanodes and Their Photoelectric Properties

机译:ZnO @ Ag3PO4核壳纳米复合材料阵列的制备及其光电性能

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摘要

In this study, we combine the methods of magnetron sputtering, hydrothermal growth, and stepwise deposition to prepare novel ZnO@Ag3PO4 core-shell nanocomposite arrays structure. Through scanning electron microscope (SEM) topography test, energy dispersive spectrometer (EDS) element test and X-ray diffractometry (XRD) component test, we characterize the morphology, element distribution and structural characteristics of ZnO@Ag3PO4 core-shell nanocomposite arrays structure. At the same time, we test the samples for light reflectance, hydrophilicity and photoelectric performance. We find that after deposition of Ag3PO4 on ZnO nanorods, light reflectance decreases. As the time of depositions increases, light reflectance gradually decreases. After the deposition of Ag3PO4, the surface of the sample shows super hydrophilicity, which is beneficial for the photoelectric performance test. Through the optical transient response test, we find that the photo-generated current reaches a maximum when a small amount of Ag3PO4 is deposited. As the time of depositions of Ag3PO4 increases, the photogenerated current gradually decreases. Finally, we conducted an alternating current (AC) impedance test and also verified the correctness of the photocurrent test. Therefore, the structure is expected to be prepared into a photoanode for use in fields such as solar cells.
机译:在这项研究中,我们结合磁控溅射,水热生长和逐步沉积的方法来制备新颖的ZnO @ Ag3PO4核-壳纳米复合阵列结构。通过扫描电子显微镜(SEM)形貌测试,能量色散谱仪(EDS)元素测试和X射线衍射(XRD)成分测试,我们表征了ZnO @ Ag3PO4核壳纳米复合材料阵列结构的形貌,元素分布和结构特征。同时,我们测试样品的光反射率,亲水性和光电性能。我们发现,Ag3PO4在ZnO纳米棒上沉积后,光反射率降低。随着沉积时间的增加,光反射率逐渐降低。 Ag3PO4沉积后,样品表面显示出超强的亲水性,这对光电性能测试非常有利。通过光学瞬态响应测试,我们发现当沉积少量Ag3PO4时,光生电流达到最大值。随着Ag3PO4沉积时间的增加,光生电流逐渐减少。最后,我们进行了交流(AC)阻抗测试,并验证了光电流测试的正确性。因此,期望将该结构制备成用于诸如太阳能电池的领域的光电阳极。

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