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分子玻璃形成体中的正常态到过冷液体转变:由构象互变驱动的隐藏结构转变。

Normal-to-Supercooled Liquid Transition in Molecular Glass-Formers: A Hidden Structural Transformation Fuelled by Conformational Interconversion.

作者信息

Nowok Andrzej, Grelska Joanna, Dulski Mateusz, Szeremeta Anna Z, Łucak Kinga, Jurkiewicz Karolina, Hellwig Hubert, Pawlus Sebastian

机构信息

Department of Experimental Physics, Wrocław University of Science and Technology, Wybrzeże Stanisława Wyspiańskiego 27, 50-370 Wrocław, Poland.

Laboratoire National des Champs Magnétiques Intenses, EMFL, CNRS UPR 3228, Université Toulouse, Université Toulouse 3, INSA-T, 31400 Toulouse,France.

出版信息

J Phys Chem B. 2024 May 23;128(20):5055-5063. doi: 10.1021/acs.jpcb.4c01025. Epub 2024 May 10.

Abstract

Molecular dynamics and transport coefficients change significantly around the so-called Arrhenius crossover in glass-forming systems. In this article, we revisit the dynamic processes occurring in a glass-forming macrocyclic crown thiaether above its glass transition, revealing two crossover temperatures: at 309 and at 333 K. We identify the second one as the Arrhenius crossover that is closely related to the normal-to-supercooled liquid transition in this compound. We show that the transformation occurring at this point goes far beyond molecular dynamics (where the temperature dependence of structural relaxation times changes its character from activation-like to super-Arrhenius), being reflected also in the internal structure and diffraction pattern. In this respect, we found a twofold local organization of the nearest-neighbor molecules via weak van der Waals forces, without the formation of any medium-range order or mesophases. The nearest surrounding of each molecule evolves structurally in time due to the ongoing fast conformational changes. We identify several conformers of , demonstrating that its lowest-energy conformation is preferred mainly at lower temperatures, i.e., in the supercooled liquid state. Its increased prevalence modifies locally the short-range intermolecular order and promotes vitrification. Consequently, we indicate that the Arrhenius transition is fuelled rather by conformational changes in this glass-forming macrocyclic crown thiaether, which is a different scenario from the so-far existing concepts. Our studies combine broadband dielectric spectroscopy (BDS), X-ray diffraction, Fourier transform infrared (FTIR) spectroscopy, molecular dynamics (MD) simulations, and density functional theory (DFT) calculations.

摘要

在玻璃形成系统中,分子动力学和输运系数在所谓的阿累尼乌斯转变点附近会发生显著变化。在本文中,我们重新审视了一种玻璃形成大环冠硫醚在其玻璃化转变温度以上发生的动态过程,揭示了两个转变温度:309 K和333 K。我们将第二个温度确定为与该化合物从正常液体到过冷液体转变密切相关的阿累尼乌斯转变点。我们表明,在这一点上发生的转变远远超出了分子动力学的范畴(在分子动力学中,结构弛豫时间的温度依赖性从类似活化转变为超阿累尼乌斯型),在内部结构和衍射图谱中也有所体现。在这方面,我们发现通过弱范德华力,最近邻分子存在双重局部组织,没有形成任何中程有序或中间相。由于持续的快速构象变化,每个分子的最近邻环境在结构上随时间演化。我们确定了几种该化合物的构象异构体,表明其最低能量构象主要在较低温度下,即在过冷液体状态下更受青睐。其出现频率的增加局部改变了短程分子间有序性并促进了玻璃化。因此,我们指出,这种玻璃形成大环冠硫醚中的阿累尼乌斯转变主要是由构象变化驱动的,这与迄今已有的概念不同。我们的研究结合了宽带介电谱(BDS)、X射线衍射、傅里叶变换红外(FTIR)光谱、分子动力学(MD)模拟和密度泛函理论(DFT)计算。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/619d/11129183/32155bed3808/jp4c01025_0001.jpg

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