柔性CIGS太阳能电池用Al2O3阻挡膜的计量研究

M. Elrawemi, L. Blunt, L. Fleming, F. Sweeney, D. Robbins, D. Bird
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引用次数: 5

摘要

柔性Cu (In, Ga) Se2 (CIGS)太阳能电池由于其高转换效率、低成本潜力和许多应用可能性而成为非常有吸引力的可再生能源。然而,由于水蒸气通过保护封装层进入吸收层(CIGS),它们目前极易受到长期环境退化的影响。防止水蒸气渗透的基本方法是将氧化层(例如AlOx)涂层与合适的聚合物基材结合。然而,微纳米级缺陷可能出现在涂层过程的任何阶段,从而影响组件的效率和寿命。本研究论文的主要目的是使用表面测量技术,包括:白光扫描干涉测量法(WLSI),原子力显微镜(AFM)和环境扫描电子显微镜(ESEM)来表征氧化铝(Al2O3)屏障膜缺陷,这似乎是直接导致水蒸气渗透性的原因。本文报告了基于“狼修剪”方法的缺陷检测表征方法的发展,然后使用标准MOCON®测试将其与测量的水蒸气透射率(WVTRs)相关联。本文的结果提供了Al2O3阻挡膜上的微纳米缺陷的性质的详细知识,这些缺陷负责水蒸气和氧气的进入。该结果可用于为开发用于柔性光伏组件制造质量控制的卷对卷过程测量设备提供基础。
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Metrology of Al2O3 Barrier Film for Flexible CIGS Solar Cells
Flexible Cu (In, Ga) Se2 (CIGS) solar cells are very attractive renewable energy sources because of their high conversion efficiencies, their low cost potential and their many application possibilities. However, they are at present highly susceptible to long term environmental degradation as a result of water vapor ingress through the protective encapsulation layer to the absorber (CIGS) layer. The basic methodology to prevent the water vapor permeation is to combine an oxide layer (e.g. AlOx) coating with suitable polymer substrates. Nevertheless, micro and nano-scale defects can appear at any stage of the coating process thus affecting the module efficiency and lifespan. The main aim of this research paper is to use surface metrology techniques including: White Light Scanning Interferometry (WLSI), Atomic Force Microscopy (AFM) and Environmental Scanning Electron Microscopy (ESEM) to characterise the aluminum oxide (Al2O3) barrier film defects, which appear to be directly responsible for the water vapor permeability. This paper reports on the development of a characterisation method for defect detection based on “Wolf Pruning” method and then correlates this with measured water vapor transmission rates (WVTRs) using standard MOCON® test. The results presented in this paper provided a detailed knowledge of the nature of micro and nano-scale defects on the Al2O3 barrier films which are responsible for water vapor and oxygen ingress. This result can then be used to provide the basis for developing roll-to-roll in process metrology devices for quality control of flexible PV module manufacture.
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