Kwon Cheong Hoon, Chun Kyoung-Yong, Kim Shi Hyeong, Lee Jae-Hyeok, Kim Jae-Ho, Lima Márcio D, Baughman Ray H, Kim Seon Jeong
Center for Bio-Artificial Muscle and Department of Biomedical Engineering, Hanyang University, Seoul, 133-791, Korea.
Nanoscale. 2015 Feb 14;7(6):2489-96. doi: 10.1039/c4nr05184j.
Torsional behaviors of polymer-infiltrated carbon nanotube (CNT) yarn muscles have been investigated in relation to molecular architecture by using atomic force microscopy (AFM). Two polymers with different stiffnesses, polystyrene (PS) and poly(styrene-b-isoprene-b-styrene) (SIS), were uniformly infiltrated into CNT yarns for electrothermal torsional actuation. The torsional behaviors of hybrid yarn muscles are completely explained by the volume change of each polymer, based on the height and full width at half maximum profiles from the AFM morphological images. The volume expansion of the PS yarn muscle (1.7 nm of vertical change and 22 nm of horizontal change) is much larger than that of the SIS yarn muscle (0.3 nm and 11 nm change in vertical and horizontal directions) at 80 °C, normalized by their values at 25 °C. We demonstrate that their maximum rotations are consequently 29.7 deg mm(-1) for the PS-infiltrated CNT yarn muscle (relatively larger rotation) and 14.4 deg mm(-1) for the SIS-infiltrated CNT yarn muscle (smaller rotation) at 0.75 V m(-1). These hybrid yarn muscles could be applied in resonant controllers or damping magnetoelectric sensors.
通过使用原子力显微镜(AFM),研究了聚合物浸润碳纳米管(CNT)纱线肌肉的扭转行为与分子结构的关系。将两种具有不同刚度的聚合物,聚苯乙烯(PS)和聚(苯乙烯-嵌段-异戊二烯-嵌段-苯乙烯)(SIS),均匀地浸润到CNT纱线中以实现电热扭转驱动。基于AFM形态图像的高度和半高宽轮廓,每种聚合物的体积变化完全解释了混合纱线肌肉的扭转行为。在80°C时,以25°C时的值进行归一化,PS纱线肌肉的体积膨胀(垂直变化1.7nm,水平变化22nm)远大于SIS纱线肌肉(垂直和水平方向变化0.3nm和11nm)。我们证明,在0.75V m(-1)的条件下,PS浸润的CNT纱线肌肉的最大旋转角度为29.7度毫米(-1)(相对较大的旋转),SIS浸润的CNT纱线肌肉的最大旋转角度为14.4度毫米(-1)(较小的旋转)。这些混合纱线肌肉可应用于共振控制器或阻尼磁电传感器。