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Role of Thickness towards the Optical and Electrical Properties of Photoactive Layer MEH-PPV: TiO_2 Nanocomposite Thin Films

机译:厚度朝向光活性层MeH-PPV的光学和电性能的作用:TiO_2纳米复合薄膜

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In recent years, the research on organic solar cells systems based on nanocomposite containing conjugated polymers has lead to great attention with the aim or replacing conventional inorganic solar cells. This nanocomposite can be processed at lower cost, low weight and ease of synthesis with greater versatility than today's solar cell. In this study, we investigated the dependence of physical, optical and electrical properties on the thickness of MEH-PPV: TiO_2 nanocomposite thin films for organic solar cell application. It was found the optical properties of photo-active layer MEH-PPV: TiO_2 nanocomposite thin films improved with increasing its thickness however the electrical properties decreased. The absorption coefficients of photoactive layer are high in the visible region (400-600 nm) with optimum absorption region at 500 nm. The shift of absorption edge toward longer wavelength with increased of nanocomposite photoactive layer thickness due to narrowing band gap caused by the effects of electron-electron and electron-impurity scattering. In addition the study of illuminated current-voltage (I-V) characteristics revealed the increment of recombination process with increased of photoactive layer thicknesses. It was found such increased in resistivity from 136×10~3 to 1600×10~3 Ω.cm is closely related to the electric field and exciton dissociation which is decreased with increased photoactive thickness.
机译:近年来,基于含纳米复合材料的含轭聚合物的有机太阳能电池系统的研究导致瞄准或更换常规无机太阳能电池的重视。该纳米复合材料可以以较低的成本,低重量和易于合成,而易于比今天的太阳能电池更大的通用加工。在这项研究中,我们研究了物理,光学和电性能对有机太阳能电池应用的MeH-PPV:TiO_2纳米复合薄膜厚度的依赖性。发现光活性层MeH-PPV的光学性质:TiO_2纳米复合薄膜随着其厚度的增加而改善,但电性能降低。光活性层的吸收系数在可见区域(400-600nm)中高,具有500nm的最佳吸收区域。由于电子 - 电子和电子 - 杂质散射的效果导致的窄带隙,吸收边缘朝向较长波长的变化升高。此外,对照明电流 - 电压(I-V)特性的研究显示重组过程的增量随着光活性层厚度的增加。在从136×10〜3至1600×10×10×10×10×10×10×10×10℃的电阻率下发现这种增加与电场和激子解离的电阻率密切相关,这随着光活性厚度的增加而降低。

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