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A New Design Paradigm for Smart Windows: Photocurable Polymers for Quasi-Solid Photoelectrochromic Devices with Excellent Long-Term Stability under Real Outdoor Operating Conditions

机译:智能窗户的新设计范例:用于在实际室外操作条件下具有出色长期稳定性的准固态光电致变色器件的光固化聚合物

摘要

A new photoelectrochromic device (PECD) is presented in this work proposing the combination of a WO3-based electrochromic device (ECD) and a polymer-based dye-sensitized solar cell (DSSC). In the newly designed architecture, a photocurable polymeric membrane is employed as quasi-solid electrolyte for both the ECD and the DSSC. In addition, a photocurable fluoropolymeric system is incorporated as solution-processable external protective thin coating film with easy-cleaning and UV-shielding functionalities. Such new polymer-based device assembly is characterized by excellent device operation with improved photocoloration efficiency and switching ability compared with analogous PECDs based on standard liquid electrolyte systems. In addition, long-term (>2100 h) stability tests under continuous exposure to real outdoor conditions reveal the remarkable performance stability of this new quasi-solid PECD system, attributed to the protective action of the photocurable fluorinated coating that effectively prevents photochemical and physical degradation of the PECD components during operation. This first example of quasi-solid PECD systems paves the way for a new generation of thermally, electrochemically, and photochemically stable polymer-based PECDs, and provides for the first time a clear demonstration of their true potential as readily upscalable smart window components for energy-saving buildings. Light-designed polymers are proposed as quasi-solid electrolytes and ultraviolet-cutting/easy-cleaning coatings for photoelectrochromic devices (PECDs). Excellent coloration/bleaching performance as well as long-term stability under real outdoor operating conditions is demonstrated. Thermally, electrochemically, and photochemically stable polymer-based PECDs demonstrate for the first time their true potential as readily upscalable smart windows for modern energy-saving buildings.
机译:在这项工作中提出了一种新的光电致变色器件(PECD),提出了基于WO3的电致变色器件(ECD)和基于聚合物的染料敏化太阳能电池(DSSC)的组合。在新设计的体系结构中,ECD和DSSC均采用可光固化的聚合物膜作为准固体电解质。此外,可光固化的含氟聚合物体系作为溶液可加工的外部保护性薄膜被纳入其中,具有易于清洁和屏蔽紫外线的功能。与基于标准液体电解质系统的类似PECD相比,这种新型的基于聚合物的设备组件的特点是具有出色的设备操作性,并具有改进的光致变色效率和转换能力。此外,在连续暴露于真实室外条件下的长期(> 2100 h)稳定性测试表明,这种新的准固体PECD系统具有卓越的性能稳定性,这归因于可光固化氟化涂层的保护作用,可有效防止光化学和物理腐蚀。操作期间PECD组件的性能下降。准固态PECD系统的第一个示例为新一代热,电化学和光化学稳定的基于聚合物的PECD铺平了道路,并首次清楚地展示了它们的真正潜力,即易于升级的智能能源窗组件。建筑物。轻型聚合物被建议用作准固态电解质和用于光电致变色器件(PECD)的防紫外线/易清洁涂层。在真实的户外操作条件下,具有出色的着色/漂白性能以及长期稳定性。热,电化学和光化学稳定的基于聚合物的PECD首次证明了其作为现代节能建筑易于升级的智能窗户的真正潜力。

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