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Morphological and Optical properties of ZnO thin films prepared by spray pyrolysis on glass substrates at various temperatures for integration in solar cell

机译:ZnO薄膜的形态学和光学性质在太阳能电池整合中的各种温度下玻璃基板制备的ZnO薄膜

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ZnO thin films are widely used as antireflection layer in solar cells and can be grown by various techniques implemented at various temperatures. In this contribution, we present the morphological and optical properties of ZnO thin films prepared by spray pyrolysis on glass substrates at various growth temperatures from 350 to 550 °C. The surface morphology of the films, analysed by scanning electron microscopy SEM, is modified with substrate temperature. Optical characterizations of ZnO films as a function of temperature were carried out by transmittance and photoluminescence (PL) measurements. Main optical properties are as follow: All the films are highly transparent in the visible region of the electromagnetic spectrum. The average transmission in the visible range (400-800 nm) was greater than 80%. The band gap of ZnO films increases with increasing substrate temperatures attributed to the increase of the grain size of thesample.PL spectrum of ZnO films can be divided into the UV emission and the visible broadband emission attributed to the near band edge emission (NBE) and to the deep level emissions (DLE), respectively. The biggest ratio of UV emission on visible emission of the PL intensity is observed for the ZnO thin film deposited at 550 °C by the spray pyrolysis technique. Therefore, we suggest that this original result indicate the most suitable growing conditions for obtaining high quality sprayed ZnO thin films with higher luminescence performances.
机译:ZnO薄膜广泛用作太阳能电池中的抗反射层,并且可以通过在各种温度下实施的各种技术生长。在这一贡献中,我们介绍了通过在350至550℃的各种生长温度下喷雾热解制备的ZnO薄膜的形态学和光学性质。通过扫描电子显微镜SEM进行分析的薄膜的表面形态,用衬底温度进行改性。 ZnO膜作为温度函数的光学表征通过透射率和光致发光(PL)测量来进行。主要光学性质如下:所有薄膜在电磁谱的可见区域中是高度透明的。可见范围(400-800nm)的平均传输大于80%。 ZnO膜的带隙随着基板温度的增加而增加,归因于ZnO薄膜的晶粒尺寸的增加,ZnO膜的光谱可以分为UV排放和归因于近带边缘发射(NBE)的可见宽带发射分别对深度排放(DLE)。通过喷雾热解技术在550℃下沉积的ZnO薄膜观察到P1强度可见光发射的最大比率。因此,我们建议这种原始结果表明,获得具有更高发光性能的高质量喷涂的ZnO薄膜的最适当的日益增长的条件。

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