Clara L. e Silva, B. Miranda, Maria L. Vilela, J. Rodrigues, T. Cunha, Jhonatan A. Dias, G. A. Soares, Vinicius Freitas, R. Vilaça, Luana Wouk, D. Bagnis
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引用次数: 0
Abstract
The lifetime and stability of organic photovoltaics (OPVs) are the key factors that influence the technology used to scale up and commercialize OPVs. High-performing and reliable devices are used to fabricate the devices of choice. Materials and methods that can be used to prevent the degradation of organic materials, enabling better OPV applications, are being increasingly researched in recent years. Herein, we present the surface modification process of a commercial, flexible barrier film based on polyethylene terephthalate (PET). A sol-gel deposition method was used to modify the surface. Two scalable coating techniques, spray- and bar-coating, were investigated as the processing methods. Treated films were optically, morphologically, and topologically characterized. The modification of the barrier film surface increased the surface hydrophobicity of the bar-coated and spray-coated treated films. This was validated by the contact angle measurements. OPV roll-to-roll (R2R) mini-modules with 4.2% power conversion efficiency were fabricated and encapsulated with the treated films. The lifetime and stability were assessed by conducting accelerated aging tests based on the ISOS-D-3 protocol. The spray-coating technique provided a more stable layer than the bar-coating technique, and the lifetime of the OPV modules encapsulated in spray-coated treated barrier films was increased. Surface modification has been demonstrated to be a promising approach for not only improving the barrier film properties (resulting in the improved lifetimes of the modules) but also reducing the extents of reflectance losses in the OPV modules post encapsulation.
有机光伏电池的寿命和稳定性是影响其规模化和商业化技术的关键因素。高性能和可靠的设备被用来制造所选择的设备。近年来,人们对防止有机材料降解的材料和方法进行了越来越多的研究,从而实现了更好的OPV应用。在此,我们提出了一种基于聚对苯二甲酸乙二醇酯(PET)的商用柔性阻隔膜的表面改性工艺。采用溶胶-凝胶沉积法对其表面进行修饰。研究了喷涂和棒涂两种可扩展涂层技术。处理后的薄膜具有光学、形态学和拓扑特征。阻挡膜表面的改性提高了棒涂和喷涂处理膜的表面疏水性。接触角测量验证了这一点。制备了功率转换效率为4.2%的OPV卷对卷(R2R)微型模块,并将其封装在处理后的薄膜中。根据iso - d -3协议进行加速老化试验,评估其寿命和稳定性。涂层技术提供了一个比棒材涂层技术更稳定的层,并且在涂层涂层处理过的阻挡膜中封装OPV模块的寿命增加。表面改性已被证明是一种很有前途的方法,不仅可以改善阻挡膜的性能(从而提高模块的使用寿命),还可以减少OPV模块封装后的反射损失程度。