Division of Smart Textile Convergence Research, DGIST, Daegu, 42988, South Korea.
Department SKKU Advanced Institute of Nanotechnology (SAINT), Sungkyunkwan University, Suwon, Gyeonggi-do, 16419, South Korea.
Nat Commun. 2019 Jan 25;10(1):426. doi: 10.1038/s41467-018-08016-w.
Highly deformable and electrically conductive fibres with multiple functionalities may be useful for diverse applications. Here we report on a supercoil structure (i.e. coiling of a coil) of fibres fabricated by inserting a giant twist into spandex-core fibres wrapped in a carbon nanotube sheath. The resulting supercoiled fibres show a highly ordered and compact structure along the fibre direction, which can sustain up to 1,500% elastic deformation. The supercoiled fibre exhibits an increase in resistance of 4.2% for stretching of 1,000% when overcoated by a passivation layer. Moreover, by incorporating pseudocapacitive-active materials, we demonstrate the existence of superelastic supercapacitors with high linear and areal capacitance values of 21.7 mF cm and 92.1 mF cm, respectively, that can be reversibly stretched by 1,000% without significant capacitance loss. The supercoiled fibre can also function as an electrothermal artificial muscle, contracting 4.2% (percentage of loaded fibre length) when 0.45 V mm is applied.
具有多种功能的高可变形和导电纤维可能对各种应用有用。在这里,我们报告了一种通过在由碳纳米管鞘包裹的弹性芯纤维中插入大扭转来制造的超螺旋纤维结构(即线圈的缠绕)。由此产生的超螺旋纤维在纤维方向上呈现出高度有序和紧凑的结构,可承受高达 1500%的弹性变形。当用钝化层覆盖时,超螺旋纤维在拉伸 1000%时的电阻增加了 4.2%。此外,通过掺入赝电容活性材料,我们证明了存在超弹性超级电容器,其线性和面积电容值分别高达 21.7 mF cm 和 92.1 mF cm,可以在不损失明显电容的情况下可逆地拉伸 1000%。超螺旋纤维还可以用作电热人工肌肉,当施加 0.45 V mm 时,收缩 4.2%(加载纤维长度的百分比)。