Suppr超能文献

高硅沸石中水吸附的热力学研究

Thermodynamic study of water adsorption in high-silica zeolites.

作者信息

Bolis Vera, Busco Claudia, Ugliengo Piero

机构信息

NIS (Nanostructured Interfaces and Surfaces) Centre of Excellence, INSTM (Materials Science and Technology) National Consortium, UdR Piemonte Orientale, DiSCAFF Università del Piemonte Orientale A. Avogadro, Novara, Italy.

出版信息

J Phys Chem B. 2006 Aug 3;110(30):14849-59. doi: 10.1021/jp061078q.

Abstract

The joint use of microcalorimetric and computational approaches has been adopted to describe H2O interaction with cus Al(III) Lewis and Si(OH)+ Al- Brønsted acidic sites within H-BEA and H-MFI zeolites (both with approximately 6 Al/unit cell). Adsorption data obtained at 303 K were compared to experimental model systems, such as all-silica zeolites, amorphous silica, and silico-alumina, transition alumina. In parallel, ab initio molecular modeling was carried out to mimic, in a cluster approach, Lewis and Brønsted acidic sites, as well as a variety of Si-OH species either with H-bonding interacting (nests and pairs) or isolated. H-BEA and H-MFI water affinity values were found to be almost equivalent, in both quantitative and energetic terms, in that dominated by Al-containing sites population, more than by nanocavity topology or by acidic site nature. Both H-zeolites, saturated with approximately 5 Torr of H2O vapor, bind approximately 4 H2O per Al site, almost one of which is tightly bound and not eliminated by RT pumping-off. A 160 < q(diff) < 80 kJ/mol interval was measured for the adsorption up to 1H2O/Al. The zero-coverage heat of adsorption (q0 approximately 160 kJ/mol, for both H-zeolites) was assigned to H2O/Lewis complex formation, which dominates the early stage of the process, in agreement with the ab initio computed H2O/Lewis sites binding energy. The rather broad q(diff) interval was interpreted as due to the simultaneous adsorption of H2O on both structural Brønsted sites and strongly polarized H2O already adsorbed on Lewis sites. For this latter species, BE = 74 kJ/mol was computed, slightly higher than BE = 65 kJ/mol for H2O/Brønsted sites interaction, showing that H2O coordinated on cus Al(III) Lewis sites behaves as a structural Brønsted site. The investigated all-silica zeolites have been categorized as hydrophilic in that the measured heat of adsorption (100 < q(diff) < 44 kJ/mol) was larger than the heat of liquefaction of water (44 kJ/mol) in the whole coverage examined. Indeed, polar defects present in the hydrophobic Si-O-Si framework do form relatively stable H2O adducts. Crystalline versus amorphous aluminosilicate q(diff) versus n(ads) plots showed that the measured adsorption heat is lower than expected, due to the extraction work of Al atoms from the amorphous matrix to bring them in interaction with H2O. On the contrary, such an energy cost is not required for the crystalline material, in which acidic sites are already in place, as imposed by the rigidity of the framework. Modeling results supported the experimental data interpretation.

摘要

已采用微量量热法和计算方法相结合的方式来描述H₂O与H - BEA和H - MFI沸石(二者均约含6个铝原子/晶胞)中cus Al(III)路易斯酸位点以及Si(OH)⁺ Al - 布朗斯台德酸位点的相互作用。将在303 K下获得的吸附数据与实验模型体系进行比较,这些模型体系包括全硅沸石、无定形二氧化硅、硅铝酸盐、过渡氧化铝。同时,采用从头算分子模型,以团簇方法模拟路易斯酸和布朗斯台德酸位点,以及各种通过氢键相互作用(巢状和成对)或孤立存在的Si - OH物种。发现H - BEA和H - MFI的水亲和值在定量和能量方面几乎相当,这主要由含铝位点的数量决定,而非由纳米腔拓扑结构或酸位点性质决定。两种H型沸石在约5托H₂O蒸汽中饱和时,每个铝位点结合约4个H₂O分子,其中几乎有一个紧密结合,在室温下抽气无法去除。对于每铝位点吸附1个H₂O分子的情况,测量得到的吸附热区间为160 < q(diff) < 80 kJ/mol。零覆盖度吸附热(两种H型沸石的q₀约为160 kJ/mol)归因于H₂O/路易斯酸络合物的形成,这在过程早期占主导,与从头算计算得到的H₂O/路易斯酸位点结合能一致。q(diff)区间较宽被解释为是由于H₂O同时吸附在结构布朗斯台德酸位点和已经吸附在路易斯酸位点上的强极化H₂O分子上。对于后一种物种,计算得到的BE = 74 kJ/mol,略高于H₂O/布朗斯台德酸位点相互作用的BE = 65 kJ/mol,这表明配位在cus Al(III)路易斯酸位点上的H₂O表现为一个结构布朗斯台德酸位点。所研究的全硅沸石被归类为亲水性,因为在所研究的整个覆盖范围内,测量得到的吸附热(100 < q(diff) < 44 kJ/mol)大于水的液化热(44 kJ/mol)。实际上,疏水性Si - O - Si骨架中存在的极性缺陷确实会形成相对稳定的H₂O加合物。结晶态与无定形态硅铝酸盐的q(diff)与n(ads)关系图表明,由于从无定形基质中提取铝原子使其与H₂O相互作用的功,测量得到的吸附热低于预期。相反,对于结晶材料则不需要这种能量消耗,因为其骨架刚性决定了酸性位点已经就位。建模结果支持了实验数据的解释。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验