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A first report on the fabrication of vertically aligned anatase TiO_2 nanowires by electrospinning: Preferred architecture for nanostructured solar cells

机译:关于通过电纺制造垂直排列的锐钛矿型TiO_2纳米线的第一份报告:纳米结构太阳能电池的首选结构

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摘要

Higher performance is expected in electronic devices that utilize metal oxide semiconductors in vertical architecture owing to the direct and effective electron transport. Producing anatase phase vertical TiO_2 nanowires on conductive substrate has been challenging. Herein we demonstrate for the first time not only the facile fabrication of vertical arrays of anatase TiO_2 nanowires, but also fabricating the wires by using electrospinning method. Firstly aligned nanofiberous TiO_2 ribbons were produced by electrospinning and then erected to vertical nanowires after the post-treatment. As-produced vertical ceramic TiO_2 nanowires possessed the area of 0.2 cm2 with wire diameter of 90 ± 30 nm, and height up to 27 μm. This approach can be a better alternative to the currently available methods like hydrothermal synthesis and template assisted fabrication as the diameter, height of the wires, and spacing between the wires can be effectively controlled by this method. With vertical nanowires of anatase phase TiO_2 as photoelectrode in dye sensitized solar cells (DSSC), the solar-to-current conversion efficiency (η), short circuit current (Jsc), open circuit voltage (Voc), and fill factor (FF) were measured as 2.87% and 5.71 mA cm~2, 0.782 V, 64.2% respectively.
机译:由于直接和有效的电子传输,在垂直架构中利用金属氧化物半导体的电子设备中有望实现更高的性能。在导电基底上制备锐钛矿相垂直的TiO_2纳米线一直具有挑战性。在本文中,我们不仅首次证明了锐钛矿型TiO_2纳米线垂直阵列的简便制备,而且还通过静电纺丝法制备了这些线。首先通过静电纺丝制备了取向的纳米纤维TiO_2带,然后在后处理之后将其竖立成垂直的纳米线。所生产的垂直陶瓷TiO_2纳米线的面积为0.2 cm2,线径为90±30 nm,高度可达27μm。这种方法可以更好地替代当前可用的方法,例如水热合成和模板辅助制造,因为可以通过此方法有效控制导线的直径,高度和导线之间的间距。在染料敏化太阳能电池(DSSC)中使用锐钛矿相TiO_2的垂直纳米线作为光电极时,太阳电流转换效率(η),短路电流(Jsc),开路电压(Voc)和填充系数(FF)测量值分别为2.87%和5.71 mA cm〜2、0.782 V,64.2%。

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  • 来源
    《Energy & environmental science》 |2011年第8期|p.2807-2812|共6页
  • 作者单位

    NUS Nanoscience and Nanotechnology Initiative (NUSNNI)-NanoCore,National University of Singapore, Singapore 117576,School of Materials Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798;

    NUS Nanoscience and Nanotechnology Initiative (NUSNNI) -NanoCore,National University of Singapore, Singapore 117576;

    School of Materials Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798;

    National University of Singapore, Singapore 117576,King Suad University, Riyadh 11451, King Saudi Arabia;

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