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首页> 外文期刊>Nanotechnology >Preferentially oriented TiO2 nanotube arrays on non-native substrates and their improved performance as electron transporting layer in halide perovskite solar cells
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Preferentially oriented TiO2 nanotube arrays on non-native substrates and their improved performance as electron transporting layer in halide perovskite solar cells

机译:优先取向非天然基材的TiO2纳米管阵列及其作为卤化物钙钛矿太阳能电池中的电子传输层的改进性能

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Anodically formed TiO2 nanotube arrays (TNTAs) constitute an optoelectronic platform that is being studied for use as a photoanode in photoelectrocatalytic cells, as an electron transport layer (ETL) in solar cells and photodetectors, and as an active layer for chemiresistive and microwave sensors. For optimal transport of charge carriers in these one-dimensional polycrystalline ordered structures, it is desirable to introduce a preferential texture with the grains constituting the nanotube walls aligned along the transport direction. Through x-ray diffraction analysis, we demonstrate that choosing the right water content in the anodization electrolyte and the use of a post-anodization zinc ion treatment can introduce a preferential texture in sub-micron length transparent TNTAs formed on non-native substrates. The incorporation of 1.5 atom% of Zn in TiO2 nanotubes prior to annealing, was found to consistently result in the strongest preferential orientation along the [001] direction. [001] oriented TNTAs exhibited a responsivity of 523 AW(-1) at a bias of 2 V for 365 nm photons, which is among the highest reported performance values for ultraviolet photodetection using titania nanotubes. Furthermore, the textured nanotubes without a Zn2+ treatment showed a significantly enhanced performance in halide perovskite solar cells that used TNTAs as the ETL.
机译:阳极形成的TiO2纳米管阵列(TNTAS)构成正在研究用于光电催化细胞中的光电偶像电池的光电平台,作为太阳能电池和光电探测器中的电子传输层(ETL),以及用于切削和微波传感器的有源层。为了在这些一维多晶有序结构中的电荷载体的最佳运输,期望用构成沿着传送方向对齐的纳米管壁的颗粒引入优先纹理。通过X射线衍射分析,我们证明选择阳极氧化电解质中的右水含量和使用后阳极氧化锌离子处理可以引入在非天然基材上形成的亚微米长度透明TNTA中的优先纹理。在退火之前,发现在TiO2纳米管中掺入1.5原子%Zn,以始终如一地导致沿着[001]方向的最强的优先取向。取向TNTA在365nm光子的2V偏差下表现出523 AW(-1)的响应度,这是使用二氧化钛纳米管的紫外线光检测的最高报告的性能值。此外,没有Zn2 +治疗的纹理纳米管在使用TNTAS作为ETL的卤化物钙钛矿太阳能电池中显示出显着增强的性能。

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