Univ. Grenoble Alpes, Univ. Savoie Mont Blanc, CNRS, Grenoble INP, LEPMI , 38000 Grenoble , France.
Univ. Grenoble Alpes, CEA, LITEN, INES , F-73375 Le Bourget du lac , France.
ACS Appl Mater Interfaces. 2018 Sep 5;10(35):29805-29813. doi: 10.1021/acsami.8b06684. Epub 2018 Aug 23.
The encapsulation of organic photovoltaic (OPV) devices can help mitigate the degradation induced by environmental factors like water and oxygen and thus potential to increase OPV lifetime. Because flexibility is an important parameter for targeted OPV applications, this paper proposes a fundamental study on the impact of the roll-to-roll flexible encapsulation process. Both performance and mechanical reliability of encapsulated devices have been scouted. Furthermore, it has been demonstrated that a relatively simple peeling technique allows understanding the role of the interfaces inside a multilayered OPV device supported by a flexible poly(ethylene terephthalate) substrate. For this purpose, the peeling strengths between each layer were measured using a series of partial devices. This provided a quantitative analysis of the mechanical strength or quality of each interface. Two interfaces revealed pronounced weaknesses: active layer with hole transporting layer and transparent conducting electrode with electron transporting layer. Among various surface treatments applied to improve these interfaces, an optimized UV-ozone (UVO) treatment proved to modify substantially the surface properties of used zinc oxide (ZnO) and thus improved its adhesion to the neighboring layers. The physicochemical and structural changes of ZnO have been confirmed by IR spectroscopy and contact angle measurements. It has also been shown that better interfaces within the device improve the overall performance of the devices and their resilience to roll-to-roll encapsulation.
有机光伏 (OPV) 器件的封装有助于缓解水和氧气等环境因素引起的降解,从而有可能延长 OPV 的使用寿命。由于灵活性是目标 OPV 应用的一个重要参数,本文提出了一项关于卷对卷柔性封装工艺影响的基础研究。对封装器件的性能和机械可靠性进行了研究。此外,已经证明,相对简单的剥离技术可以了解在柔性聚对苯二甲酸乙二醇酯 (PET) 基板支撑的多层 OPV 器件内部各层之间的界面的作用。为此,使用一系列部分器件测量了各层之间的剥离强度。这提供了对每个界面的机械强度或质量的定量分析。两个界面显示出明显的弱点:活性层与空穴传输层以及透明导电电极与电子传输层。在应用于改善这些界面的各种表面处理中,优化的 UV-臭氧 (UVO) 处理被证明可以实质性地改变所用氧化锌 (ZnO) 的表面特性,从而改善其与相邻层的附着力。已经通过红外光谱和接触角测量证实了 ZnO 的物理化学和结构变化。还表明,器件内部更好的界面可以提高器件的整体性能及其对卷对卷封装的弹性。