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首页> 外文期刊>Journal of Materials Chemistry, B. materials for biology and medicine >Thermomechanical liquid crystalline elastomer capillaries with biomimetic peristaltic crawling function
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Thermomechanical liquid crystalline elastomer capillaries with biomimetic peristaltic crawling function

机译:具有仿生蠕动蠕变功能的热机械液晶弹性体毛细管

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It is highly desirable to fabricate liquid crystalline elastomer (LCE) devices with novel functions for applications in different areas. In this study, LCE capillaries with biomimetic peristaltic function are fabricated for the first time to mimic the peristaltic crawling locomotion of earthworms. A specifically designed LC cell was prepared for this purpose, which consisted of two coaxial glass capillaries coated with polyimide alignment layers on the inner cell surfaces. The side-on LCE capillaries were fabricated by photoinitiated polymerization/crosslinking of a monomer and a crosslinker in the LC cells. The results show that owing to the effect of the alignment layers on the LC cell walls, the mesogenic units in the network structures are predominantly oriented along the capillary axis. Reversible thermomechanical contraction and expansion are observed for the LCE capillaries, which show a relative contraction of 16% in the length and a relative expansion of 12% in the diameter upon the nematic to isotropic phase transition. When placed in a glass tube with an appropriate inner diameter, reversible peristaltic crawling locomotion of the LCE capillaries is realized by moving a heating source outside the tube along its axis. Under typical conditions, the peristaltic crawling motion shows a moving speed of 0.31 mm s(-1). The mechanism of the peristaltic crawling of the LCE capillary is elucidated with the assistance of the finite elemental analysis (FEA) simulation. A five-stage motion model is established to rationalize these observations and correlate the observations with the crawling locomotion of earthworms. The LCE capillary with the peristaltic crawling locomotion function promises its potential applications in biomimetic miniature robots and actuators.
机译:迫切需要制造具有新颖功能的液晶弹性体(LCE)器件,以用于不同领域。在这项研究中,首次制造了具有仿生蠕动功能的LCE毛细管,以模仿worm的蠕动爬行运动。为此目的,准备了一个专门设计的LC电池,它由两个同轴的玻璃毛细管组成,在毛细管的内表面上涂有聚酰亚胺排列层。通过LC单元中单体和交联剂的光引发聚合/交联来制造侧面LCE毛细管。结果表明,由于取向层对LC细胞壁的影响,网络结构中的介晶单元主要沿毛细管轴取向。对于LCE毛细管,观察到可逆的热机械收缩和膨胀,当向列相向各向同性相变时,它们的长度相对收缩为16%,直径相对膨胀为12%。当将LCE毛细管放置在具有适当内径的玻璃管中时,可通过沿管的轴外移动加热源来实现LCE毛细管的可逆蠕动蠕动运动。在典型条件下,蠕动蠕动的运动速度为0.31 mm s(-1)。借助有限元分析(FEA)模拟,阐明了LCE毛细管的蠕动蠕变机理。建立了一个五阶段运动模型以合理化这些观察结果,并将这些观察结果与worm的爬行运动相关联。具有蠕动爬行功能的LCE毛细管有望在仿生微型机器人和执行器中得到潜在应用。

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