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Ionic conductivity enhancement of 'soggy sand' electrolytes with AlOOH nanofibers for dye-sensitized solar cells

机译:染料敏化太阳能电池的ALOOH纳米纤维“湿砂”电解质的离子电导率提高

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As one of the main components, inorganic nanofillers have important effect on the performance of "soggy sand" electrolytes. In this study, we first incorporate AIOOH nanofibers into ionic liquid electrolytes to enhance the mechanical property and ionic conductivity of the electrolytes. The AIOOH nanofiber has high aspect ratio coupled with favorable surface properties such as rich hydroxyl groups, which facilitate to interact with cations of ionic liquids, promote salt dissociation, and form stable gels by self-assembly. In addition, the nanofiber fillers with high aspect ratio can form ion-conducting network channels and longer-range continuous ion transport pathways. The enhancing ionic conductivity of "soggy sand" electrolytes and performance of DSSCs due to addition of AIOOH nanofibers are systematically investigated by various techniques. The highest ionic conductivity of "soggy sand" electrolyte reaches 3.69 mS cm(-1) at room temperature, which is 4 times than that of the pristine ionic liquid electrolyte. The effective solidification by AIOOH nanofibers provides substantial improvements in stability. The "soggy sand" electrolytes with AIOOH nanofibers can significantly improve the performance of devices by accelerating charge transport, reducing electron recombination and increasing charge collection efficiency. The DSSC with AIOOH nanofibers in electrolyte yields a high efficiency up to 7.89%, which is 29% higher than that of the reference device. (C) 2020 Elsevier Ltd. All rights reserved.
机译:作为主要成分之一,无机纳米填料对“湿砂砂”电解质的性能具有重要影响。在该研究中,首先将AiOOH纳米纤维掺入离子液体电解质中,以增强电解质的机械性能和离子电导率。 AiOOH纳米纤维具有高纵横比与富羟基的良好表面性质(如富羟基)偶联,这有助于与离子液体的阳离子相互作用,促进盐解离,并通过自组装形成稳定的凝胶。另外,具有高纵横比的纳米纤维填料可以形成离子导电网络通道和更长的连续离子传输途径。通过各种技术系统地研究了由于加入AiOOH纳米纤维而增强“湿砂”电解质和DSSCs的性能的离子电导率。 “湿砂”电解质的最高离子电导率在室温下达到3.69ms(-1),这是初始离子液体电解质的4倍。 AiOOH纳米纤维的有效凝固可提供稳定性的显着改善。使用AiOOH纳米纤维的“湿砂”电解质通过加速电荷传输,降低电子重组和增加电荷收集效率,可以显着提高器件的性能。电解质中的AiOOH纳米纤维的DSSC产生高达7.89%的高效率,比参考装置的高度高29%。 (c)2020 elestvier有限公司保留所有权利。

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