Department of Chemical Engineering and Materials Science, Michigan State University, East Lansing, Michigan 48824, USA.
Institute of Physics, University of Silesia in Katowice, SMCEBI, 75 Pulku Piechoty 1A, 41-500 Chorzow, Poland.
Phys Rev Lett. 2023 Mar 3;130(9):098201. doi: 10.1103/PhysRevLett.130.098201.
Rheo-dielectric spectroscopy is employed to investigate the effect of external shear on Debye-like relaxation of a model monohydroxy alcohol, i.e., the 2-ethyl-1-hexanol (2E1H). Shear deformation leads to strong acceleration in the structural relaxation, the Debye relaxation, and the terminal relaxation of 2E1H. Moreover, the shear-induced reduction in structural relaxation time, τ_{α}, scales quadratically with that of Debye time, τ_{D}, and the terminal flow time, τ_{f}, suggesting a relationship of τ_{D}^{2}∼τ_{α}. Further analyses reveal τ_{D}^{2}/τ_{α} of 2E1H follows Arrhenius temperature dependence that applies remarkably well to many other monohydroxy alcohols with different molecular sizes, architectures, and alcohol types. These results cannot be understood by the prevailing transient chain model, and suggest a H-bonding breakage facilitated sub-supramolecular reorientation as the origin of Debye relaxation of monohydroxy alcohols, akin to the molecular mechanism for the terminal relaxation of unentangled "living" polymers.
流变-介电谱研究了外加剪切对模型单羟醇(即 2-乙基-1-己醇)的类德拜松弛的影响。剪切变形导致 2E1H 的结构松弛、德拜松弛和末端松弛的强烈加速。此外,剪切引起的结构弛豫时间τ_{α}与德拜时间τ_{D}和末端流动时间τ_{f}的二次方成比例,表明τ_{D}^{2}∼τ_{α}的关系。进一步的分析表明,2E1H 的τ_{D}^{2}/τ_{α}遵循阿累尼乌斯温度依赖性,这在许多具有不同分子大小、结构和醇类型的其他单羟醇中表现得非常好。这些结果不能用现有的瞬态链模型来理解,表明氢键断裂促进亚超分子重排是单羟醇德拜松弛的起源,类似于无缠结“活性”聚合物末端松弛的分子机制。