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首页> 外文期刊>Journal of industrial and engineering chemistry >Facile graft copolymer template synthesis of mesoporous polymeric metal-organic frameworks to produce mesoporous TiO2: Promising platforms for photovoltaic and photocatalytic applications
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Facile graft copolymer template synthesis of mesoporous polymeric metal-organic frameworks to produce mesoporous TiO2: Promising platforms for photovoltaic and photocatalytic applications

机译:体育聚合物 - 有机骨架的容易接枝共聚物模板合成生产中孔TiO2:光伏和光催化应用的有前途平台

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摘要

Mesoporous polymeric metal-organic frameworks (mesoporous polymeric MOFs) are prepared on fluorine-doped tin oxide (FTO) substrate using hydrophilic terephthalic acid as the ligands, titanium isopropoxide as polymeric MOF precursors, and amphiphilic graft copolymers (i.e., poly(vinyl chloride)graft-poly(oxyethylene methacrylate) (PVC-g-POEM) as structure-directing agents. The hydrophilic POEM chains in amphiphilic graft copolymers interact with the hydrophilic ligands and polymeric MOF precursors. Following thermal treatment at 500 degrees C, mesoporous polymeric MOFs are transformed to mesoporous TiO2 with high specific surface area and crystallinity, suitable for photovoltaic and photocatalytic applications. Solid-state dye-sensitized solar cells (ssDSSCs) and dye-sensitized solar cells (ssDSSCs) fabricated with mesoporous TiO2 photoanodes have efficiencies of 7.45 and 8.43 % at 100 mW/cm(2), which is much higher than that of ssDSSCs and DSSCs with photoanodes of conventional TiO2 (536 and 7.14 %), respectively. The enhanced efficiency is attributed to good interconnectivity, larger surface area, and high porosity of the mesoporous TiO2, which results in suppressed interfacial charge recombination loss, enhanced electron transport, increased dye loading, and facilitated penetration of the electrolytes. Mesoporous TiO2 shows excellent activity as a photocatalyst for the degradation of humic acid under UV light irradiation. (C) 2020 Published by Elsevier B.V. on behalf of The Korean Society of Industrial and Engineering Chemistry.
机译:使用亲水性对苯二甲酸作为配体,作为配体的氟掺杂锡氧化物(FTO)底物,作为聚合物MOF前体的钛等丙二酸钛制备介孔聚合物金属 - 有机骨架(中孔聚合物MOF),以及两亲属接枝共聚物(即,聚(氯乙烯)接枝聚(氧乙烯甲基丙烯酸酯)(PVC-G-POEM)作为结构引导剂。两亲接枝共聚物中的亲水性诗链与亲水配体和聚合物MOF前体相互作用。在500℃下的热处理后,中孔聚合物MOF用高比表面积和结晶度转化为介孔TiO2,适用于光伏和光催化应用。固态染料敏化的太阳能电池(SSDSSCS)和染料敏化的太阳能电池(SSDSSCS)制备的中孔TiO2光电池具有7.45和8.43的效率。 100 MW / cm(2)的百分比高于SSDSSCS和DSSCS的常规TiO2的光电(5)(5 36和7.14%)分别。增强的效率归因于中孔TiO2的良好互连,较大的表面积和高孔隙率,这导致抑制界面电荷重组损失,增强的电子传输,增加的染料负荷,并促进电解质的渗透。中孔TiO2显示出优异的活性作为紫外线光照射下腐殖酸降解的光催化剂。 (c)2020年由elsevier b.v发表的。代表朝鲜工程和工程化学学会。

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