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Hydrogen treated TiO_2 nanoparticles onto FTO glass as photoanode for dye-sensitized solar cells with remarkably enhanced performance

机译:氢处理的TiO_2纳米颗粒在FTO玻璃上作为染料敏化太阳能电池的光电仪,具有显着增强的性能

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摘要

Hydrogen treatment is a facile and efficient approach for the enhancement in the functioning of TiO2 nanoparticles for dye-sensitized solar cells (DSSC). In this work, TiO2 nanoparticles have been synthesized in the hydrogen environment followed by the deposition onto FTO glass substrates with various film thickness as photoanodes for DSSC. The synthesized hydrogen treated TiO2 nanoparticles based photoanodes have showed significantly improved photocurrent in the resulting fabricated devices. SEM and TEM analyses have confirmed the particle size and morphology of TiO2 nanoparticles at various magnifications. The crystalline structure and phase identification were studied by XRD analysis and Raman spectroscopic measurements. The UV-Vis spectroscopy analysis was carried out to find the response of samples for ultraviolet and visible light. The current-voltage measurements have confirmed the improvement of photocurrent that is principally due to improved photo-activity of hydrogen treated TiO2 nanoparticles. Moreover, hydrogen treated TiO2 nanoparticles-based photoanode with the film thickness of 11.65 mu m has remarkably enhanced power conversion efficiency of 6.05% in DSSCs. The ability of highly photoactive hydrogen treated TiO2 nanoparticles will provide the new openings in different fields that include photo-electrochemical water splitting and in many other applications. (C) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:氢处理是一种容易和有效的方法,用于增强TiO2纳米粒子用于染料敏化太阳能电池(DSSC)的功能。在该作品中,在氢气环境中已经合成了TiO2纳米颗粒,然后在氢气环境中沉积,具有各种膜厚度作为DSSC的光阳极。合成的氢处理的TiO2纳米粒子的光胰阶显示出在所得制造装置中显着改善光电流。 SEM和TEM分析已经确认了各种放大倍数的TiO2纳米颗粒的粒度和形态。通过XRD分析和拉曼光谱测量研究了晶体结构和相位鉴定。进行UV-Vis光谱分析,以找到样品对紫外线和可见光的响应。电流 - 电压测量已经证实了由于改善了氢处理的TiO2纳米颗粒的改善的光活性而主要的光电流的改善。此外,氢处理的TiO2纳米颗粒的光磁极具有11.65μm的薄膜厚度,在DSSC中具有显着增强的功率转换效率为6.05%。高度光活性氢处理的TiO2纳米颗粒的能力将在不同领域中提供新的开口,包括光电化学水分解和许多其他应用。 (c)2021氢能出版物LLC。 elsevier有限公司出版。保留所有权利。

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