Yuan Bing, Aitken Bruce G, Sen Sabyasachi
Department of Materials Science and Engineering, University of California at Davis, Davis, California 95616, USA.
Science and Technology Division, Corning, Inc., Corning, New York 14831, USA.
J Chem Phys. 2022 Jun 14;156(22):224502. doi: 10.1063/5.0089659.
The effect of the network-to-molecular structural transformation with increasing phosphorus content in PSe (30 ≤ x ≤ 67) supercooled liquids on their shear-mechanical response is investigated using oscillatory shear rheometry. While network liquids with 30 ≤ x ≤ 40 are characterized by shear relaxation via a network bond scission/renewal process, a Maxwell scaling of the storage (G') and loss (G″) shear moduli, and a frequency-independent viscosity at low frequencies, a new relaxation process emerges in liquids with intermediate compositions (45 ≤ x ≤ 50). This process is attributed to an interconversion between network and molecular structural moieties. Predominantly molecular liquids with x ≥ 63, on the other hand, are characterized by a departure from Maxwell behavior as the storage modulus shows a linear frequency scaling G'(ω) ∼ ω over nearly the entire frequency range below the G'-G″ crossover and a nearly constant ratio of G″/G' in the terminal region. Moreover, the dynamic viscosity of these rather fragile molecular liquids shows significant enhancement over that of network liquids at frequencies below the dynamical onset and does not reach a frequency-independent regime even at frequencies that are four orders of magnitude lower than that of the onset. Such power-law relaxation behavior of the molecular liquids is ascribed to an extremely broad distribution of relaxation timescales with the coexistence of rapid rotational motion of individual molecules and cooperative dynamics of transient molecular clusters, with the latter being significantly slower than the shear relaxation timescale.
使用振荡剪切流变仪研究了PSe(30≤x≤67)过冷液体中随着磷含量增加,网络到分子结构转变对其剪切力学响应的影响。当30≤x≤40的网络液体通过网络键断裂/更新过程表现出剪切松弛、储能剪切模量(G')和损耗剪切模量(G″)的麦克斯韦标度以及低频下与频率无关的粘度时,在中间组成(45≤x≤50)的液体中出现了一种新的松弛过程。该过程归因于网络和分子结构部分之间的相互转化。另一方面,x≥63的主要为分子液体的特征是偏离麦克斯韦行为,因为储能模量在低于G'-G″交叉点的几乎整个频率范围内呈现线性频率标度G'(ω) ∼ ω,并且在终端区域G″/G'的比值几乎恒定。此外,这些相当脆弱的分子液体的动态粘度在低于动态起始频率时比网络液体有显著增强,甚至在比起始频率低四个数量级的频率下也未达到与频率无关的状态。分子液体的这种幂律松弛行为归因于极其宽泛的弛豫时间尺度分布,其中单个分子的快速旋转运动与瞬态分子簇的协同动力学共存,后者明显慢于剪切弛豫时间尺度。