Adrjanowicz Karolina, Kaminski Kamil, Tarnacka Magdalena, Szklarz Grzegorz, Paluch Marian
Institute of Physics, University of Silesia , Ulica Uniwersytecka 4, 40-007 Katowice, Poland.
SMCEBI , Ulica 75 Pulku Piechoty 1a, 41-500 Chorzow, Poland.
J Phys Chem Lett. 2017 Feb 2;8(3):696-702. doi: 10.1021/acs.jpclett.6b02974. Epub 2017 Jan 25.
The properties of a molecular liquid confined at the nanometer length scale can be very distinct from the bulk. For that reason, the macro- and the nanoscopic behaviors of glass-forming liquids are regarded as two nonconnected realms, governed by their own rules. Here, we show that the glassy dynamics in molecular liquids confined to nanometer pores might obey the density scaling relation, ρ/T, just like in bulk fluids. Even more surprisingly, the same value of the scaling exponent γ superposes the α-relaxation time measured at different state points in nanoscale confinement and upon increased pressure. We report this remarkable finding for van der Waals liquids tetramethyl-tetraphenyl-trisiloxane (DC704) and polyphenyl ether (5PPE), considered as simple, single-parameter liquids. Demonstrating that the density scaling idea can be fulfilled in both environments opens an exciting possibility to predict the dynamic features of the nanoconfined system close to its glass-transition temperature from the high-pressure studies of the bulk liquid. Likewise, we can describe the viscous liquid dynamics at any given combination of temperature and pressure based on analysis of its behavior in nanopores.
限制在纳米长度尺度下的分子液体的性质可能与本体液体有很大不同。因此,玻璃形成液体的宏观和纳米行为被视为两个不相关的领域,受各自的规则支配。在此,我们表明,限制在纳米孔中的分子液体中的玻璃态动力学可能遵循密度标度关系ρ/T,就像在本体流体中一样。更令人惊讶的是,相同的标度指数γ值叠加在纳米尺度限制下和压力增加时在不同状态点测量的α弛豫时间上。我们报道了对于被视为简单单参数液体的范德华液体四甲基-四苯基-三硅氧烷(DC704)和聚苯醚(5PPE)的这一显著发现。证明密度标度概念在两种环境中都能实现,为从本体液体的高压研究预测接近其玻璃化转变温度的纳米受限系统的动态特征开辟了一个令人兴奋的可能性。同样,基于对其在纳米孔中行为的分析,我们可以描述在任何给定温度和压力组合下的粘性液体动力学。