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Preparation of Monodomain Liquid Crystal Elastomers and Liquid Crystal Elastomer Nanocomposites

机译:单畴液晶弹性体和液晶弹性体纳米复合材料的制备

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摘要

LCEs are shape-responsive materials with fully reversible shape change and potential applications in medicine, tissue engineering, artificial muscles, and as soft robots. Here, we demonstrate the preparation of shape-responsive liquid crystal elastomers (LCEs) and LCE nanocomposites along with characterization of their shape-responsiveness, mechanical properties, and microstructure. Two types of LCEs — polysiloxane-based and epoxy-based — are synthesized, aligned, and characterized. Polysiloxane-based LCEs are prepared through two crosslinking steps, the second under an applied load, resulting in monodomain LCEs. Polysiloxane LCE nanocomposites are prepared through the addition of conductive carbon black nanoparticles, both throughout the bulk of the LCE and to the LCE surface. Epoxy-based LCEs are prepared through a reversible esterification reaction. Epoxy-based LCEs are aligned through the application of a uniaxial load at elevated (160 °C) temperatures. Aligned LCEs and LCE nanocomposites are characterized with respect to reversible strain, mechanical stiffness, and liquid crystal ordering using a combination of imaging, two-dimensional X-ray diffraction measurements, differential scanning calorimetry, and dynamic mechanical analysis. LCEs and LCE nanocomposites can be stimulated with heat and/or electrical potential to controllably generate strains in cell culture media, and we demonstrate the application of LCEs as shape-responsive substrates for cell culture using a custom-made apparatus.
机译:LCE是形状响应性材料,具有完全可逆的形状变化,并潜在地应用于医学,组织工程,人造肌肉以及作为软机器人。在这里,我们演示了形状响应液晶弹性体(LCE)和LCE纳米复合材料的制备以及它们的形状响应性,机械性能和微结构的表征。合成,对齐和表征了两种类型的LCE(基于聚硅氧烷和基于环氧的)。通过两个交联步骤制备基于聚硅氧烷的LCE,第二个步骤是在施加的载荷下产生单畴LCE。聚硅氧烷LCE纳米复合材料是通过在整个LCE的整个表面以及LCE表面添加导电性炭黑纳米颗粒而制备的。通过可逆的酯化反应制备基于环氧树脂的LCE。通过在升高的温度(160°C)下施加单轴载荷来对齐基于环氧树脂的LCE。对齐的LCE和LCE纳米复合材料的特征在于可逆应变,机械刚度和液晶排序,结合了成像,二维X射线衍射测量,差示扫描量热法和动态力学分析。 LCE和LCE纳米复合材料可以用热和/或电势刺激,以在细胞培养基中可控地产生菌株,并且我们证明了LCE作为定制设备用于细胞培养的形状响应性底物的应用。

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