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具有用于太阳能电池潜力的分级介观结构掺杂二氧化铈。

Hierarchically mesostructured doped CeO2 with potential for solar-cell use.

作者信息

Corma Avelino, Atienzar Pedro, García Hermenegildo, Chane-Ching Jean-Yves

机构信息

Instituto de Tecnología Química, UPV-CSIC, Universidad Politécnica de Valencia, Avda. de los Naranjos s/n, 46022 Valencia, Spain.

出版信息

Nat Mater. 2004 Jun;3(6):394-7. doi: 10.1038/nmat1129. Epub 2004 May 16.

Abstract

Many properties provided by supramolecular chemistry, nanotechnology and catalysis only appear in solids exhibiting large surface areas and regular porosity at the nanometre scale. In nanometre-sized particles, the ratio of the number of atoms in the surface to the number in the bulk is much larger than for micrometre-sized materials, and this can lead to novel properties. Here we report the preparation of a hierarchically structured mesoporous material from nanoparticles of CeO(2) of strictly uniform size. The synthesis involves self-assembly of these 5-nm CeO(2) pre-treated nanoparticles in the presence of a structure directing agent (poly(alkylene oxide) block polymer). The walls of this hexagonal structured CeO(2) material are formed from the primary nanoparticles. The material possesses large pore volumes, high surface areas, and marked thermal stability, allowing it to be easily doped after synthesis whilst maintaining textural and mechanical integrity. It also exhibits a photovoltaic response, which is directly derived from the nanometric particle size-normal CeO(2) does not show this response. We have constructed operational organic-dye-free solar cells using nanometric ceria particles (in both mesostructured or amorphous forms) as the active component, and find efficiencies that depend on the illuminating power.

摘要

超分子化学、纳米技术和催化作用所赋予的许多特性,仅在纳米尺度上具有大表面积和规则孔隙率的固体中才会出现。在纳米尺寸的颗粒中,表面原子数与体相原子数之比远大于微米尺寸的材料,这可能导致新特性的出现。在此,我们报告了由尺寸严格均匀的CeO₂纳米颗粒制备的具有分级结构的介孔材料。合成过程涉及这些5纳米CeO₂预处理纳米颗粒在结构导向剂(聚环氧烷嵌段聚合物)存在下的自组装。这种六边形结构的CeO₂材料的壁由初级纳米颗粒形成。该材料具有大孔体积、高表面积和显著的热稳定性,使其在合成后易于掺杂,同时保持结构和机械完整性。它还表现出光伏响应,而尺寸正常的CeO₂纳米颗粒则不显示这种响应。我们使用纳米氧化铈颗粒(介孔结构或非晶态形式)作为活性成分构建了无有机染料的实用太阳能电池,并发现效率取决于光照功率。

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