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负共沸物和正共沸物的微观结构。

Microstructures of negative and positive azeotropes.

作者信息

Shephard J J, Callear S K, Imberti S, Evans J S O, Salzmann C G

机构信息

Department of Chemistry, University College London, 20 Gordon Street, WC1H 0AJ London, UK.

出版信息

Phys Chem Chem Phys. 2016 Jul 28;18(28):19227-35. doi: 10.1039/c6cp02450e. Epub 2016 Jul 1.

DOI:10.1039/c6cp02450e
PMID:27367534
Abstract

Azeotropes famously impose fundamental restrictions on distillation processes, yet their special thermodynamic properties make them highly desirable for a diverse range of industrial and technological applications. Using neutron diffraction, we investigate the structures of two prototypical azeotropes, the negative acetone-chloroform and the positive benzene-methanol azeotrope. C-HO hydrogen bonding is the dominating interaction in the negative azeotrope but C-ClO halogen bonding contributes as well. Hydrogen-bonded chains of methanol molecules, which are on average longer than in pure methanol, are the defining structural feature of the positive azeotrope illustrating the fundamentally different local mixing in the two kinds of azeotropes. The emerging trend for both azeotropes is that the more volatile components experience the more pronounced structural changes in their local environments as the azeotropes form. The mixing of the acetone-chloroform azeotrope is essentially random above 20 Å, where the running Kirkwood-Buff integrals of our structural model converge closely to the ones expected from thermodynamic data. The benzene-methanol azeotrope on the other hand displays extended methanol-rich regions and consequently the running Kirkwood-Buff integrals oscillate up to at least 60 Å. Our study provides the first experimental insights into the microstructures of azeotropes and a direct link with their thermodynamic properties. Ultimately, this will provide a route for creating tailored molecular environments in azeotropes to improve and fine-tune their performances.

摘要

共沸物对蒸馏过程有着众所周知的基本限制,但其特殊的热力学性质使其在各种工业和技术应用中备受青睐。通过中子衍射,我们研究了两种典型共沸物的结构,即负偏差的丙酮 - 氯仿共沸物和正偏差的苯 - 甲醇共沸物。在负偏差共沸物中,C-HO氢键是主要相互作用,但C-ClO卤键也有贡献。甲醇分子的氢键链平均比纯甲醇中的长,这是正偏差共沸物的决定性结构特征,说明了两种共沸物中局部混合的根本差异。两种共沸物的一个新趋势是,随着共沸物形成,挥发性更强的组分在其局部环境中经历的结构变化更显著。丙酮 - 氯仿共沸物在20 Å以上的混合基本上是随机的,我们结构模型的累积柯克伍德 - 布夫积分与热力学数据预期的积分紧密收敛。另一方面,苯 - 甲醇共沸物显示出扩展的富甲醇区域,因此累积柯克伍德 - 布夫积分至少在60 Å内振荡。我们的研究首次提供了对共沸物微观结构的实验见解,并建立了与它们热力学性质的直接联系。最终,这将为在共沸物中创造定制的分子环境以改善和微调其性能提供一条途径。

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