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From nanocorals to nanorods to nanoflowers nanoarchitecture for efficient dye-sensitized solar cells at relatively low film thickness: All Hydrothermal Process

机译:从纳米珊瑚到纳米棒再到纳米花纳米结构以相对较低的膜厚度实现高效的染料敏化太阳能电池:全水热工艺

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摘要

Simple and low temperature hydrothermal process is employed to synthesize exotic nanostructures of TiO2. The nanostructures are obtained merely by changing the nature of the precursors and processing parameters. The chloride and isopropoxide salts of titanium are used to grow high quality thin films comprising anatase nanocorals, rutile nanorods and rutile nanoflowers respectively. A novel route of addition of room temperature ionic liquid (RTIL) is used to synthesize hitherto unexplored nano-morphologies. The Bronsted Acidic Ionic Liquid [BAIL] 0.01 M, 1: 3-ethoxycarbonylethyl-1-methyl-imidazolium chloride [CMIM][HSO4] RTIL directed growth of TiO2 flowers with bunch of aligned nanorods are obtained. The structural, optical and morphological properties of hydrothermally grown TiO2 samples are studied with the different characterization techniques. The influence of these exotic nano-morphologies on the performance of dye sensitized solar cells (DSSCs) is investigated in detail. It is found that [CMIM][HSO4] can facilitate the formation of novel nanoflower morphology with uniform, dense, and collectively aligned in regular petal like oriented TiO2 nanorods and hence improves the dye adsorption and the photovoltaic performance of DSSCs, typically in short-circuit photocurrent and power conversion efficiency. A best power conversion efficiency of 6.63% has been achieved on a DSSC based on nanoflowers (TNF) film obtained from a [CMIM][HSO4] solution.
机译:采用简单的低温水热法合成了TiO2的奇异纳米结构。仅通过改变前体的性质和加工参数即可获得纳米结构。钛的氯化物和异丙氧化物盐用于生长分别包含锐钛矿型纳米珊瑚,金红石型纳米棒和金红石型纳米花的高质量薄膜。室温离子液体(RTIL)的添加新途径用于合成迄今未探索的纳米形态。得到了布朗斯台德酸性离子液体[BAIL] 0.01 M,1:3-乙氧基羰基乙基-1-甲基咪唑鎓氯化物[CMIM] [HSO4] RTIL定向生长的TiO2花,并有一束排列的纳米棒。用不同的表征技术研究了水热生长的TiO2样品的结构,光学和形态学特性。详细研究了这些奇异的纳米形态对染料敏化太阳能电池(DSSC)性能的影响。结果发现,[CMIM] [HSO4]可以促进规则花瓣状取向的TiO2纳米棒中均匀,致密且共同排列的新型纳米花形态的形成,因此通常在短时间内改善了DSSC的染料吸附和光伏性能。电路的光电流和功率转换效率。在基于从[CMIM] [HSO4]溶液获得的纳米花(TNF)膜的DSSC上,已经实现了6.63%的最佳功率转换效率。

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