Institute of Physics, University of Silesia, 75 Pulku Piechoty 1, 41-500 Chorzow, Poland.
Institute of Chemistry, University of Silesia, Szkolna 9, 40-006 Katowice, Poland.
J Chem Phys. 2019 Jan 28;150(4):044504. doi: 10.1063/1.5055204.
The aim of this work is to analyze in detail the effect of the alkyl chain length on the dynamics of glass-forming propylene carbonate (PC) derivatives. Examined samples are low-molecular weight derivatives of the PC structure, i.e., the 4-alkyl-1,3-dioxolan-2-one series, modified by changing the alkyl substituent from methyl to hexyl. The molecular dynamics (MD) has been analyzed based on experimental data collected from differential scanning calorimetry, broadband dielectric spectroscopy (BDS), X-ray diffraction (XRD), and nuclear magnetic resonance relaxometry measurements as well as MD simulations. The dielectric results show in samples with the propyl- or longer carbon chain the presence of slow Debye-like relaxation with features similar to those found in associative materials. Both XRD and MD reveal differences in the intermolecular structure between PC and 4-butyl-1,3-dioxolan-2-one liquids. Moreover, MD shows that the probability of finding one terminal carbon atom of the side chain of BPC in the vicinity of another carbon atom of the same type is much higher than in the case of PC. It suggests that there is a preference for longer hydrocarbon chains to set themselves close to each other. Consequently, the observed slow-mode peak may be caused by movement of aggregates maintained by van der Waals interactions. Reported herein, findings provide a new insight into the molecular origin of Debye-like relaxation.
这项工作的目的是详细分析烷基链长对玻璃形成性碳酸丙烯酯(PC)衍生物动力学的影响。研究的样品是 PC 结构的低分子量衍生物,即 4-烷基-1,3-二恶烷-2-酮系列,通过将烷基取代基从甲基改变为己基来进行修饰。分子动力学(MD)是基于从差示扫描量热法、宽带介电光谱(BDS)、X 射线衍射(XRD)和核磁共振弛豫测量以及 MD 模拟中收集的实验数据进行分析的。介电结果表明,在具有丙基或更长碳链的样品中,存在与缔合材料相似的缓慢德拜型弛豫。XRD 和 MD 都揭示了 PC 和 4-丁基-1,3-二恶烷-2-酮液体之间的分子间结构差异。此外,MD 表明,BPC 侧链的一个末端碳原子在另一个相同类型的碳原子附近被发现的概率远高于 PC 的情况。这表明较长的碳氢链倾向于彼此靠近排列。因此,观察到的慢模峰值可能是由范德华相互作用维持的聚集体的运动引起的。本文的研究结果为德拜型弛豫的分子起源提供了新的见解。