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关于液晶弹性体在吉赫兹频率下的弹性和热传导各向异性的起源

On the origin of elasticity and heat conduction anisotropy of liquid crystal elastomers at gigahertz frequencies.

作者信息

Cang Yu, Liu Jiaqi, Ryu Meguya, Graczykowski Bartlomiej, Morikawa Junko, Yang Shu, Fytas George

机构信息

School of Aerospace Engineering and Applied Mechanics, Tongji University, Zhangwu Road 100, Shanghai, 200092, China.

Max Planck Institute for Polymer Research, Ackermannweg 10, Mainz, 55128, Germany.

出版信息

Nat Commun. 2022 Sep 6;13(1):5248. doi: 10.1038/s41467-022-32865-1.

Abstract

Liquid crystal elastomers that offer exceptional load-deformation response at low frequencies often require consideration of the mechanical anisotropy only along the two symmetry directions. However, emerging applications operating at high frequencies require all five true elastic constants. Here, we utilize Brillouin light spectroscopy to obtain the engineering moduli and probe the strain dependence of the elasticity anisotropy at gigahertz frequencies. The Young's modulus anisotropy, E/E2.6, is unexpectedly lower than that measured by tensile testing, suggesting disparity between the local mesogenic orientation and the larger scale orientation of the network strands. Unprecedented is the robustness of E/E to uniaxial load that it does not comply with continuously transformable director orientation observed in the tensile testing. Likewise, the heat conductivity is directional, κ/κ3.0 with κ = 0.16 WmK. Conceptually, this work reveals the different length scales involved in the thermoelastic anisotropy and provides insights for programming liquid crystal elastomers on-demand for high-frequency applications.

摘要

在低频下具有出色负载变形响应的液晶弹性体通常仅需考虑沿两个对称方向的机械各向异性。然而,新兴的高频应用需要考虑所有五个真实弹性常数。在此,我们利用布里渊光谱法来获取工程模量,并在吉赫兹频率下探究弹性各向异性的应变依赖性。杨氏模量各向异性E/E2.6,出乎意料地低于拉伸试验测得的值,这表明局部介晶取向与网络链的更大尺度取向之间存在差异。前所未有的是,E/E对单轴负载具有稳健性,它不符合拉伸试验中观察到的可连续变换的指向矢取向。同样,热导率也是有方向性的,κ/κ3.0,其中κ = 0.16 WmK。从概念上讲,这项工作揭示了热弹性各向异性中涉及的不同长度尺度,并为按需设计用于高频应用的液晶弹性体提供了见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ef1/9448779/643a7340994f/41467_2022_32865_Fig1_HTML.jpg

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