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结构稳定的有机硅烷模板热稳定介孔二氧化钛。

Structurally stabilized organosilane-templated thermostable mesoporous titania.

机构信息

Catalytic Conversion Process Division, Council of Scientific and Industrial Research (CSIR) Indian Institute of Petroleum, Mohkampur, Dehradun 248005 (India), Fax: (+91) 135-266-203; CSIR-Network Institute of Solar Energy (CSIR-NISE), Anusandhan Bhawan, New Delhi 110001 (India).

出版信息

Chemphyschem. 2014 Jan 13;15(1):187-94. doi: 10.1002/cphc.201300872. Epub 2013 Dec 4.

Abstract

Structurally thermostable mesoporous anatase TiO2 (m-TiO2) nanoparticles, uniquely decorated with atomically dispersed SiO2, is reported for the first time. The inorganic Si portion of the novel organosilane template, used as a mesopores-directing agent, is found to be incorporated in the pore walls of the titania aggregates, mainly as isolated sites. This is evident by transmission electron microscopy and high-angle annular dark field scanning transmission electron microscopy, combined with electron dispersive X-ray spectroscopy. This type of unique structure provides exceptional stability to this new material against thermal collapse of the mesoporous structure, which is reflected in its high surface area (the highest known for anatase titania), even after high-temperature (550 °C) calcination. Control of crystallite size, pore diameter, and surface area is achieved by varying the molar ratios of the titanium precursor and the template during synthesis. These mesoporous materials retain their porosity and high surface area after template removal and further NaOH/HCl treatment to remove silica. We investigate their performance for dye-sensitized solar cells (DSSCs) with bilayer TiO2 electrodes, which are prepared by applying a coating of m-TiO2 onto a commercial titania (P25) film. The high surface area of the upper mesoporous layer in the P25-m-TiO2 DSSC significantly increases the dye loading ability of the photoanode. The photocurrent and fill factor for the DSSC with the bilayer TiO2 electrode are greatly improved. The large increase in photocurrent current (ca. 56%) in the P25-m-TiO2 DSSC is believed to play a significant role in achieving a remarkable increase in the photovoltaic efficiency (60%) of the device, compared to DSSCs with a monolayer of P25 as the electrode.

摘要

首次报道了一种独特的原子分散二氧化硅修饰的结构热稳定介孔锐钛矿 TiO2(m-TiO2)纳米粒子。新型有机硅模板的无机 Si 部分被发现作为介孔导向剂被整合到 TiO2 聚集体的孔壁中,主要以孤立的位点存在。这可以通过透射电子显微镜和高角度环形暗场扫描透射电子显微镜以及电子分散 X 射线能谱得到证明。这种独特的结构使这种新材料具有异常的热稳定性,即使在高温(550°C)煅烧后,介孔结构也不会发生热坍塌。通过在合成过程中改变钛前驱体和模板的摩尔比,可以控制结晶粒径、孔径和表面积。这些介孔材料在去除模板后仍保持其多孔性和高比表面积,并且进一步用 NaOH/HCl 处理以去除二氧化硅。我们研究了它们在具有双层 TiO2 电极的染料敏化太阳能电池(DSSC)中的性能,该双层 TiO2 电极是通过在商业 TiO2(P25)薄膜上涂覆 m-TiO2 制备的。P25-m-TiO2 DSSC 中上层介孔层的高表面积显著提高了光阳极的染料负载能力。DSSC 中具有双层 TiO2 电极的光电流和填充因子得到了极大的提高。与具有单层 P25 作为电极的 DSSC 相比,P25-m-TiO2 DSSC 的光电流电流(约 56%)大幅增加,这被认为在实现器件光电效率(60%)的显著提高方面发挥了重要作用。

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