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Crystalline Si photovoltaic modules functionalized by a thin polyethylene film against potential and damp-heat-induced degradation

机译:通过薄的聚乙烯膜官能化的结晶Si光伏模块,抵抗电位和潮湿热诱导的降解

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摘要

Potential-induced degradation (PID) in p-type-based multicrystalline Si photovoltaic (PV) modules was experimentally generated applying -1000 V from an Al plate, which is attached on the front cover glass of the module, to the Si cell at 85 degrees C for 2 h. The solar energy-to-electricity conversion efficiency (h) of the standard Si PV module significantly decreased after the PID test. In contrast, no degradation was observed in the modules, including a thin polyethylene (PE) film (30 mm thickness) with the copolymer of ethylene and vinyl acetate (EVA) as the encapsulant. It was suggested that the PE film whose volume resistivity is higher than that of EVA prevented the diffusion of Na+ from the front cover glass toward the Si cell, resulting in a suppression of PID because different degradation processes during PID were observed in the EL images for the two modules, including a half PE film. In addition, the Si PV module, including a PE film, demonstrated stable performance after a damp-heat test (85 degrees C/85% relative humidity) for 4000 h, although the h of the standard module significantly decreased from 16.0% to 7.6% after the test. Our results indicate an attractive and promising low-cost technique for improving the long-term stability of crystalline Si PV modules against potential and damp-heat-induced degradation.
机译:基于p型的潜在诱导的降解(PID)的Si多晶光伏(PV)模块以实验方式生成由Al板,其被安装在模块的前盖玻璃施加-1000伏,给Si电池在85度下搅拌2小时。标准的Si PV模块的太阳能到电能的转换效率(h)上的PID试验后显著降低。与此相反,在模块,包括一个薄的聚乙烯(PE)薄膜(30米毫米厚),用乙烯和乙酸乙烯酯(EVA)作为密封剂的共聚物中没有观察到降解。有人建议,在PE薄膜,其体积电阻率比EVA的更高从前盖玻璃朝向Si电池防止钠离子的扩散,产生了抑制PID的,因为PID期间不同的降解过程中的EL图像进行观察两个模块,包括一个半PE膜。另外,Si的PV模块,其包括一个PE膜,表现出稳定性能的湿热试验后(85℃/ 85%相对湿度)下4000小时,尽管标准模块的h,从16.0%显著降低至7.6 %测试后。我们的结果表明用于改善针对潜在和湿热诱导的降解晶体Si PV模块的长期稳定性有吸引力的和有前途的低成本技术。

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  • 来源
    《RSC Advances》 |2015年第20期|共7页
  • 作者单位

    Natl Inst Adv Ind Sci &

    Technol Res Ctr Photovolta Technol Tosu Saga 8410052 Japan;

    Natl Inst Adv Ind Sci &

    Technol Res Ctr Photovolta Technol Tosu Saga 8410052 Japan;

    Natl Inst Adv Ind Sci &

    Technol Res Ctr Photovolta Technol Tosu Saga 8410052 Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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