UV曝光后PV背板机械降解的深度分析

X. Gu, Peter J. Krommenhoek, Chiao-Chi Lin, Li-Chieh Yu, T. Nguyen, S. Watson
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引用次数: 4

摘要

聚合物多层背板保护光伏组件免受湿气和紫外线(UV)的损害,同时提供电绝缘。由于其多层结构,其内层及其界面在风化过程中的性能尚不清楚。在这项研究中,我们选择了一种商用PPE(聚对苯二甲酸乙二醇酯(PET)/PET/乙烯乙酸乙烯酯(EVA))背膜作为模型系统,对背膜在紫外线照射下的机械性能进行了深度分析研究。NIST SPHERE(通过高能辐射暴露模拟光降解)用于材料在85°C和5%(干燥)和60%(潮湿)两种相对湿度(RH)下的紫外线加速实验室暴露。采用冷冻切片法获得横断面PPE样本。采用纳米压痕法对时效和未时效样品的横截面进行了机械深度分析,并采用基于峰值力的定量纳米力学原子力显微镜(QNM-AFM)制图技术研究了粘接层的微观结构和粘附性能。纳米压痕结果表明,PET外层和色素EVA层的弹性模量有所增强。QNM-AFM揭示了PET外层与芯层之间、PET芯层与EVA内层之间的胶粘层的微观结构和粘接性能,发现在潮湿环境下老化后,PET芯层与EVA内层之间的胶粘层明显退化。PPE背板的机械深度分析结果与之前相同材料的化学深度分析结果进一步相关,为加速紫外线和湿度对多层背板降解的影响提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Depth profiling of mechanical degradation of PV backsheets after UV exposure
Polymeric multilayer backsheets protect the photovoltaic modules from damage of moisture and ultraviolet (UV) while providing electrical insulation. Due to the multilayer structures, the properties of the inner layers of the backsheets, including their interfaces, during weathering are not well known. In this study, a commercial type of PPE (polyethylene terephthalate (PET)/PET/ethylene vinyl acetate (EVA)) backsheet films was selected as a model system for a depth profiling study of mechanical properties of a backsheet film during UV exposure. The NIST SPHERE (Simulated Photodegradation via High Energy Radiant Exposure) was used for the accelerated laboratory exposure of the materials with UV at 85°C and two relative humidities (RH) of 5 % (dry) and 60 % (humid). Cryomicrotomy was used to obtain cross-sectional PPE samples. Mechanical depth profiling of the cross-sections of aged and unaged samples was conducted by nanoindentation, and a peak-force based quantitative nanomechanical atomic force microscopy (QNM-AFM) mapping techniquewas used to investigate the microstructure and adhesion properties of the adhesive tie layers. The nanoindentation results show the stiffening of the elastic modulus in the PET outer and pigmented EVA layers. From QNM-AFM, the microstructures and adhesion properties of the adhesive layers between PET outer and core layers and between PET core and EVA inner layers are revealed and found to degrade significantly after aging under humidity environment. The results from mechanical depth profiling of the PPE backsheet are further related to the previous chemical depth profiling of the same material, providing new insights into the effects of accelerated UV and humidity on the degradation of multilayer backsheet.
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