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首页> 外文期刊>Microporous and mesoporous materials: The offical journal of the International Zeolite Association >Hydrophobicity of amorphous silica-based inorganic-organic hybrid materials derived from perhydropolysilazane chemically modified with alcohols
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Hydrophobicity of amorphous silica-based inorganic-organic hybrid materials derived from perhydropolysilazane chemically modified with alcohols

机译:醇化学改性过氢聚硅氮烷衍生的无定形二氧化硅基无机-有机杂化材料的疏水性

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摘要

Perhydropolysilazane (PHPS) was chemically modified with various alcohols (ROH, R=CH3, n-C3H7, n-C10H21, CH3OC2H4 or C2H5OC2H4) at a PHPS (Si basis) to ROH molar ratio of 3:1. The resulting alkoxy group-functionalized PHPS materials were successfully converted to amorphous silica-based inorganic-organic hybrids by exposure to vapour from aqueous ammonia at room temperature. Nitrogen sorption analyses demonstrated that these hybrids contained a small quantity of micropores less than 0.9 nm in size along with mesopores having a relatively wide pore size distribution (PSD). The PSD plots of the CH3O, CH3OC2H4O and C2H5OC2H4O functionalized samples had especially wide distributions extending to more than 50 nm. Water sorption tests showed that the hybrid synthesized from PHPS modified with n-C10H21OH was stable and did not exhibit significant capillary condensation even at higher levels of humidity above P/P-o = 0.6. As a result, the number of water molecules adsorbed per square nanometre of the sample surface area at P/P-o = 0.95 was as low as 4 mol nm(-2). The relatively low density of hydrophilic silanol groups (0.21), smaller average mesopore size (3.3 nm) and longer hydrophobic alkyl chain of the n-C10H21O moiety were all thought to contribute to improving the hydrophobicity of this hybrid. These results indicate that n-C10H21OH is a useful alcohol modifier for synthesizing amorphous silica-based inorganic-organic hybrid materials with improved hydrophobic properties through a polymer precursor route. (C) 2015 Elsevier Inc. All rights reserved.
机译:用各种醇(ROH,R = CH3,n-C3H7,n-C10H21,CH3OC2H4或C2H5OC2H4)对全氢聚硅氮烷(PHPS)进行化学修饰,使PHPS与Si的摩尔比为3:1。通过在室温下将其暴露于氨水的蒸气中,将所得烷氧基官能化的PHPS材料成功转化为无定形二氧化硅基无机-有机杂化物。氮吸附分析表明,这些杂化体包含少量小于0.9 nm的微孔以及具有相对较宽的孔径分布(PSD)的中孔。 CH3O,CH3OC2H4O和C2H5OC2H4O功能化样品的PSD图具有特别宽的分布范围,延伸到50 nm以上。吸水率测试表明,用n-C10H21OH改性的PHPS合成的杂化物是稳定的,即使在高于P / P-o = 0.6的较高湿度下也不会表现出明显的毛细管凝结。结果,在P / P-o = 0.95时,每平方纳米样品表面积吸附的水分子数量低至4 mol nm(-2)。相对低密度的亲水硅烷醇基团(0.21),较小的平均中孔尺寸(3.3 nm)和较长的n-C10H21O部分疏水烷基链均有助于改善该杂化物的疏水性。这些结果表明,n-C 10 H 21 OH是有用的醇改性剂,用于通过聚合物前体途径合成具有改善的疏水性的无定形二氧化硅基无机-有机杂化材料。 (C)2015 Elsevier Inc.保留所有权利。

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