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不同形变条件下向列型液晶弹性体中的中介相组织

Mesogen Organizations in Nematic Liquid Crystal Elastomers Under Different Deformation Conditions.

作者信息

Chung Christopher, Jiang Huan, Yu Kai

机构信息

Department of Mechanical Engineering, University of Colorado Denver, Denver, CO, 80217, USA.

出版信息

Small. 2024 Nov;20(47):e2402305. doi: 10.1002/smll.202402305. Epub 2024 Aug 18.

Abstract

Liquid crystal elastomers (LCEs) exhibit unique mechanical properties of soft elasticity and reversible shape-changing behaviors, and so serve as potentially transformative materials for various protective and actuation applications. This study contributes to filling a critical knowledge gap in the field by investigating the microscale mesogen organization of nematic LCEs with diverse macroscopic deformation. A polarized Fourier transform infrared light spectroscopy (FTIR) tester is utilized to examine the mesogen organizations, including both the nematic director and mesogen order parameter. Three types of material deformation are analyzed: uniaxial tension, simple shear, and bi-axial tension, which are all commonly encountered in practical designs of LCEs. By integrating customized loading fixtures into the FTIR tester, mesogen organizations are examined across varying magnitudes of strain levels for each deformation mode. Their relationships with macroscopic stress responses are revealed and compared with predictions from existing theories. Furthermore, this study reveals unique features of mesogen organizations that have not been previously reported, such as simultaneous evolutions of the mesogen order parameter and nematic director in simple shear and bi-axial loading conditions. Overall, the findings presented in this study offer significant new insights for future rational designs, modeling, and applications of LCE materials.

摘要

液晶弹性体(LCEs)具有软弹性和可逆形状变化行为等独特的机械性能,因此可作为各种防护和驱动应用中具有潜在变革性的材料。本研究通过研究具有不同宏观变形的向列型LCEs的微观尺度介晶组织,有助于填补该领域的一个关键知识空白。利用偏振傅里叶变换红外光谱(FTIR)测试仪来检查介晶组织,包括向列指向矢和介晶序参数。分析了三种类型的材料变形:单轴拉伸、简单剪切和双轴拉伸,这些在LCEs的实际设计中都很常见。通过将定制的加载夹具集成到FTIR测试仪中,针对每种变形模式,在不同应变水平下检查介晶组织。揭示了它们与宏观应力响应的关系,并与现有理论的预测结果进行了比较。此外,本研究还揭示了以前未报道过的介晶组织的独特特征,例如在简单剪切和双轴加载条件下介晶序参数和向列指向矢的同时演变。总体而言,本研究的结果为LCE材料未来的合理设计、建模和应用提供了重要的新见解。

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