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首页> 外文期刊>e-Polymers >Bio-based chitosan/PVdF-HFP polymer-blend for quasi-solid state electrolyte dye-sensitized solar cells
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Bio-based chitosan/PVdF-HFP polymer-blend for quasi-solid state electrolyte dye-sensitized solar cells

机译:用于准固态电解质染料敏化太阳能电池的生物基壳聚糖/ PVdF-HFP聚合物共混物

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摘要

Dye-sensitized solar cells (DSSCs) have emerged to become one of the most promising alternatives to conventional solar cells. However, long-term stability and light-to-energy conversion efficiency of the electrolyte in DSSCs are the main challenges in the commercial use of DSSCs. Current liquid electrolytes in DSSCs allow achieving high power conversion efficiency, but they still suffer from many disadvantages such as solvent leakage, corrosion and high volatility. Quasi-solid state electrolytes have therefore been developed in order to curb these problems. A novel polymer electrolyte composed of biobased polymer chitosan, poly(vinylidene fluoride-hexafluoropropylene) (PVdF-HFP), 1-methyl-3-propylimidazolium iodide ionic liquid and iodide/tri-iodide redox salts in various compositions is proposed in this study as a quasi-solid state electrolyte. Fourier transform infrared microscopy (FTIR) studies on the polymer electrolyte have shown interactions between the redox salt and the polymer blend. The quasi-solid state electrolyte tested in DSSCs with an optimised weight ratio of PVdF-HFP:chitosan (6:1) with ionic liquid electrolyte PMII/KI/I2 has shown the highest power conversion efficiencies of 1.23% with ionic conductivity of 5.367×10?4 S·cm?1 demonstrating the potential of using sustainable bio-based chitosan polymers in DSSCs applications.
机译:染料敏化太阳能电池(DSSC)已成为常规太阳能电池最有希望的替代品之一。但是,DSSC中电解质的长期稳定性和光能转换效率是DSSC商业应用中的主要挑战。 DSSC中的当前液体电解质允许实现高功率转换效率,但是它们仍然遭受诸如溶剂泄漏,腐蚀和高挥发性的许多缺点。因此已经开发出准固态电解质以抑制这些问题。本研究提出了一种新型的聚合物电解质,该聚合物电解质由生物基聚合物壳聚糖,聚偏二氟乙烯-六氟丙烯(PVdF-HFP),1-甲基-3-丙基咪唑鎓碘化物离子液体和各种组成的碘化物/三碘化物氧化还原盐组成,准固态电解质。聚合物电解质的傅里叶变换红外显微镜(FTIR)研究表明,氧化还原盐与聚合物共混物之间存在相互作用。在DSSC中测试的准固态电解质具有最优的PVdF-HFP:壳聚糖(6:1)重量比与离子液体电解质PMII / KI / I2,显示出最高的功率转换效率为1.23%,离子电导率为5.367× 10?4 S·cm?1证明了在DSSC应用中使用可持续的生物基壳聚糖聚合物的潜力。

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