化学沉积Cd1-xMnxs薄膜的物理和光谱表征

B. S. Munde, S. RavangaveL.SRavangaveL.
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引用次数: 1

摘要

采用化学浴沉积技术(CBD)制备了Cd1-xMnxs薄膜。通过持续沉积CdS薄膜的物理观察,初步优化了镀液参数。用x射线衍射仪、扫描电镜、电子能谱仪和分光光度计对沉积膜进行了表征。采用重量差法估计膜厚。薄膜厚度随锰浓度的增加而增加。所有薄膜均呈现多晶结构。观察到的衍射图与标准JCPDS卡数据吻合良好:cd为772306,MnS为76-2049。Cd1-xMnxS薄膜具有六方晶体结构和立方晶体结构。显微照片显示,沉积的薄膜覆盖了整个衬底,表面形貌均匀。从CdxMn1-xS薄膜的SEM显微照片中可以观察到Mn掺杂对CdxMn1-xS薄膜的显著影响。极少量的Mn掺杂会使SEM的微观结构发生显著变化。纳米线形态转变为颗粒形态。x=0.8的吸收光谱显示出明显的蓝移,吸收很低。在可见光区(350 900 nm)的透光率较高,从5%增加到68%。Mn掺杂后光学带隙增大。x=0.8的带隙为3.58eV。最大的透过率和较高的带隙表明Cd0.2Mn0.8S化合物可用于太阳能电池。
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Physical and Spectroscopic Characterization of Chemically Deposited Cd1-xMnxs Thin Films
Chemical bath deposition technique (CBD) was used for deposition of Cd1-xMnxs Thin Films. Initially bath parameters were optimized by physical observation of sustainable Deposition of CdS thin films. The deposited films have been characterized by using X-ray diferactometer, Scanning electron microscopy, EDAX and spectrophotometer. The film thickness was estimated using weight and difference method. Film thickness was found increased with increase in Mn concentration in CdS material. All the films show polycrystalline crystal structure. The observed diffraction patterns were well fitted with the standard JCPDS card data: 772306 of CdS and 76-2049 for MnS. Cd1-xMnxS thin films exhibit the hexagonal as well as cubic crystal structure. The micrograph shows that the films deposited cover the whole substrate with uniform surface morphology. The significant effect of Mn doping has been observed from SEM micrographs of the CdxMn1-xS thin film. Very small amount of Mn doping can show significant change in the microstructure of the SEM. The nanowire morphology was found changed into granular morphology. The absorption spectra show significant blue shifting for the composition x=0.8, having very low absorption. The optical transmittance was higher in the visible region (350 900 nm) and was found increased from 5 to 68 %. The optical band gap was found increased on Mn doping. The x=0.8 exhibit 3.58eV band gap. The maximum transmittance and higher band gap shows that Cd0.2Mn0.8S Composition can be used for solar cell applications.
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