Depth profiling of chemical and mechanical degradation of UV-exposed PV backsheets

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

Abstract

The properties of the multilayer PV backsheets, including their interfaces, during weathering are not well-known. In this study, a commercial PPE (polyethylene terephthalate (PET)/PET/ethylene vinyl acetate (EVA)) backsheet films was selected as a model system for a depth profiling study of chemical and mechanical properties of a backsheet film during UV exposure. Cryo-microtomy was used to obtain cross-sectional PPE samples. 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 % (wet). Chemical and mechanical depth profiling of the aged and unaged samples was conducted by Raman microscopic mapping, nanoindentation and atomic force microscopy in quantitative nanomechanical mapping mode. The results indicated that non-uniform degradation took place across the thickness of the PPE backsheet with severe chemical and mechanical degradation observed on the outer pigmented PET layer, two adhesive layers, and the pigmented-EVA layer. The regions with the increase in the modulus detected by nanoindetation were consistent with those showing clear chemical degradation in Raman and Attenuated Total Reflection Fourier Transform Infrared Spectroscopy (ATR-FTIR). This depth profiling study brings new understanding to the mechanisms of failures observed in the backsheets during weathering.
uv暴露的PV背板的化学和机械降解深度分析
多层PV背板在风化过程中的性能,包括其界面的性能,目前还不清楚。在这项研究中,选择了商用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化学和机械性能进行了深度分析研究。冷冻显微切开术获得PPE横断面标本。NIST SPHERE(模拟高能辐射光降解)用于材料在85°C和5%(干)和60%(湿)两种相对湿度(RH)下的紫外线加速实验室暴露。采用拉曼显微成像、纳米压痕和原子力显微镜对时效和未时效样品进行了化学和力学深度分析。结果表明,PPE背板在整个厚度上发生了不均匀的降解,在外层着色PET层、两层胶粘剂层和着色eva层上观察到严重的化学和机械降解。纳米压痕检测到的模量增加的区域与拉曼光谱和衰减全反射傅里叶变换红外光谱(ATR-FTIR)中显示明显化学降解的区域一致。这一深度剖面研究对风化过程中底板破坏机理有了新的认识。
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