Qiu Shuang, Sun Jun, Gu Xiaoyu, Li Hongfei, Wang Haiqiao, Zhang Sheng
State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing, 100029, China.
Small. 2024 Sep;20(36):e2402488. doi: 10.1002/smll.202402488. Epub 2024 May 8.
Solar power generation, as a clean energy source, has significant potential for development. This work reports the recent efforts to address the challenge of low power conversion efficiency in photovoltaic devices by proposing the fabrication of a luminescence downshifting layer using polyvinyl chloride (PVC) with added fluorescent dots to enhance light utilization. A photoluminescent microsphere (HCPAM) is synthesized by cross-linking hexachlorocyclotriphosphazene, 2-iminobenzimidazoline, and polyethyleneimine. Low addition of HCPAM can improve the fire safety of PVC films, raising the limiting oxygen index of PVC to 32.4% and reducing the total heat release and smoke production rate values by 14.5% and 42.9%, respectively. Additionally, modified PVC film remains a transparency of 88% and shows down-conversion light properties. When the PVC+1%HCPAM film is applied to the solar cell, the short-circuit current density increases from 42.3 to 43.8 mA cm, resulting in a 7.0% enhancement in power conversion efficiency. HCPAM also effectively delays the photooxidative aging of PVC, particularly at a 3% content, maintaining the surface morphology and optical properties of PVC samples during ultraviolet aging. This study offers an innovative strategy to enhance the fire and UV-resistant performance of PVC films and expand their applications in protecting and efficiently utilizing photovoltaic devices.
太阳能发电作为一种清洁能源,具有巨大的发展潜力。这项工作报告了近期通过提出使用添加了荧光点的聚氯乙烯(PVC)制备发光降频层来应对光伏器件中低功率转换效率挑战的努力,以提高光利用率。通过六氯环三磷腈、2-亚氨基苯并咪唑啉和聚乙烯亚胺交联合成了一种光致发光微球(HCPAM)。低添加量的HCPAM可以提高PVC薄膜的防火安全性,将PVC的极限氧指数提高到32.4%,并分别将总热释放和烟雾产生率值降低14.5%和42.9%。此外,改性PVC薄膜仍保持88%的透明度,并表现出下转换光性能。当将PVC + 1%HCPAM薄膜应用于太阳能电池时,短路电流密度从42.3增加到43.8 mA/cm,功率转换效率提高了7.0%。HCPAM还有效地延缓了PVC的光氧化老化,特别是在含量为3%时,在紫外线老化过程中保持了PVC样品的表面形态和光学性能。本研究提供了一种创新策略,以提高PVC薄膜的防火和抗紫外线性能,并扩大其在保护和有效利用光伏器件方面的应用。