首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Conversion of porous anodic Al2O3 into freestanding, uniformly aligned, multi-wall TiO2 nanotube arrays for electrode applications
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Conversion of porous anodic Al2O3 into freestanding, uniformly aligned, multi-wall TiO2 nanotube arrays for electrode applications

机译:将多孔阳极Al2O3转换成独立的,均匀排列的多壁TiO2纳米管阵列,用于电极应用

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摘要

A combined conformal coating and gas/solid reaction process has been used for the first time to convert porous anodic alumina templates into robust, freestanding, multi-wall titania nanotube (MWTNT) arrays that resist appreciable nanotube bundling upon drying. A sol-gel infiltration process was first used to apply a thin conformal titania coating to the alumina templates. After selective etching to generate a gap between the template and the titania coating, exposed alumina was converted into nanocrystalline titania via reaction with titanium tetrafluoride gas and then with humid oxygen. After selective dissolution of residual aluminum-bearing phases and drying, freestanding, non-agglomerated, well-aligned MWTNT arrays were generated {i.e., with coating-derived inner titania tubes resting inside reaction-derived outer titania tubes). When incorporated as aligned electrodes in dye-sensitized solar cells, the dye loading and power conversion efficiencies were higher by factors of 2.2 and 1.8, respectively, than for solar cells with single-wall titania nanotube array electrodes. By controlling the conditions used for alumina template formation, sol-gel coating, and gas/solid reaction, this hybrid process may be used to generate robust, uniformly aligned MWTNT arrays with dimensions and functional chemistries tailored for a variety of electrical, optical, chemical, or biochemical applications.
机译:保形涂层和气体/固体反应工艺相结合,首次将多孔阳极氧化铝模板转换为坚固,独立的多壁二氧化钛纳米管(MWTNT)阵列,该阵列可抵抗干燥时明显的纳米管束缚。首先使用溶胶-凝胶渗透工艺将薄的保形二氧化钛涂层施加到氧化铝模板上。在选择性蚀刻以在模板和二氧化钛涂层之间产生间隙之后,通过与四氟化钛气体然后与潮湿的氧气反应,将暴露的氧化铝转化为纳米晶的二氧化钛。在选择性溶解残余的含铝相并干燥后,生成了独立的,无团聚的,排列良好的MWTNT阵列(即,将涂层衍生的内二氧化钛管放置在反应衍生的外二氧化钛管内)。当将其作为对齐电极并入染料敏化太阳能电池中时,与具有单壁二氧化钛纳米管阵列电极的太阳能电池相比,染料负载和功率转换效率分别提高了2.2倍和1.8倍。通过控制用于氧化铝模板形成,溶胶-凝胶涂层和气/固反应的条件,该混合工艺可用于生成坚固,均匀排列的MWTNT阵列,其尺寸和功能化学物质可针对各种电,光,化学性质进行定制或生化应用。

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