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Predicting the ageing and the long-term durability oforganic polymer solar cells

机译:预测有机聚合物太阳能电池的老化和长期耐久性

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Organic solar cells based on conductive polymers exhibit a unique combination of properties which include low cost, flexibility and large surface processability. Organic photovoltaic could then prevail for some applications alongside silicon, such as nomad or indoor. To achieve this objective, the sustainability of the initial properties in conditions of use of the cell is required, since it could be a lock to the emergence of these devices in the market. The polymers used in solar cells are indeed known to exhibit low resistance to environmental constraints, in particular to the combined action of sunlight, oxygen and water. We present recent results on both the accelerated artificial and the natural outdoors ageing of MDMO-PPV (Poly[2- methoxy-5-(3',7'-dimethyloctyloxy)-1,4-Phenylenevinylene) and P3HT/PCBM blends poly(3-hexylthiophene) (P3HT) (methano-fullerene[6,6]-phenyl C61-butyric acid methyl ester) ([60] PCBM). The influence of various parameters such as the temperature and the presence of oxygen were studied. The modifications of the chemical structure of both the components of the blend were monitored by spectroscopic analysis (infrared, UV-visible), the morphology of the blends was analysed by AFM and XRD and the photovoltaic performances all along the exposure were recorded. Two important results have been pointed out: on one hand, the Achilles heel of the chemical structure of MDMO-PPV and P3HT under the impact of light has been evidenced. On the other hand, it has been shown that P3HT:PCBM blends are much more stable than MDMO:PCBM blends whatever the conditions of ageing are. Results show that a convenient encapsulation can ensure a promising lifetime of P3HT/PCBM blends in real conditions of use. This work also focuses on this last point and proposes to study and try to understand the behavior of the materials used in the active layer when submitted to photoaging and thermal aging in the absence of oxygen. To fulfil very good encapsulation, glass substrates can be used. However, as a result, organic devices lose some of their attractive properties, such as flexibility. Organic PV cells finally need a complex layer stack as a permeation barrier to be protected from water and oxygen of the environment. Multilayer barrier coatings are required: on the one hand, there are inorganic materials applied as thin films. Those films show a preferential permeation at defects. For the most part, these inorganic materials are then used in combination with a polymeric substrate. Polymers can be considered as being homogeneous with regard to the usually utilized substrate or film thicknesses. Their barrier properties can be reinforced by nanoclays. The impermeable clay layers force a tortuous pathway for a permeant transversing the nanocomposite. It is reported that gas permeability through polymer films can be reduced by 50-500 times even with small loadings of nanoclays.
机译:基于导电聚合物的有机太阳能电池表现出独特的性能组合,包括低成本,柔韧性和大的表面可加工性。然后,有机光伏可以占据硅的一些应用,例如游牧料或室内。为了实现这一目标,需要在使用细胞使用条件下初始性质的可持续性,因为它可能是市场上这些设备的出现锁定。太阳能电池中使用的聚合物确实已知对环境约束具有低抗性,特别是阳光,氧气和水的组合作用。我们在MDMO-PPV的加速人工和天然户外老化中提出了最近的结果(聚[2-甲氧基-5-(3',7'-二甲基辛氧基)-1,4-苯基乙烯基乙烯)和P3HT / PCBM共混聚( 3-己基噻吩)(P3HT)(甲烷 - 富勒烯[6,6] - 苯基C61-丁酸甲酯)([60] PCBM)。研究了各种参数如温度和氧的存在的影响。通过光谱分析(红外,UV可见)监测混合物的两种组分的化学结构的修饰,通过AFM和XRD分析所述共混物的形态,并记录所有沿着暴露的光伏性能。两个重要成果,指出了:一方面,MDMO-PPV和P3HT的下光线的影响的化学结构的致命弱点已经证明。另一方面,已经表明P3HT:PCBM混合物比MDMO更稳定:PCBM无论衰老条件都是什么样的。结果表明,方便的封装可以确保在真正的使用条件下确保P3HT / PCBM混合的有希望的寿命。这项工作还侧重于最后一点,并建议学习并试图了解在没有氧气的光电和热老化时在活性层中使用的材料的行为。为了满足非常好的封装,可以使用玻璃基板。然而,结果,有机器件失去了一些有吸引力的特性,例如灵活性。有机PV电池最终需要复杂的层堆作为渗透屏障,以保护环境的水和氧气。需要多层屏障涂层:一方面,有无机材料作为薄膜施加。这些薄膜在缺陷中显示出优先渗透。对于大部分,然后将这些无机材料与聚合物基材组合使用。聚合物可以被认为是关于通常使用的基材或膜厚度的均匀性。它们的阻隔性能可以通过纳米粘土增强。不透水的粘土层强制旋转纳米复合材料的渗透性途径。据报道,即使纳米阵列的小载荷,也可以通过聚合物膜通过聚合物膜的透气性降低50-500倍。

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