Chang Bo, Jin Jialong, Zhou Quan
College of Mechanical and Electrical Engineering, Shaanxi University of Science and Technology, Xi'an 710021, China.
School of Electrical Engineering, Aalto University, FI-00076 Aalto, Finland.
Micromachines (Basel). 2020 Oct 29;11(11):973. doi: 10.3390/mi11110973.
Alignment and orderly distribution of microfibers have a major effect on the mechanical, electrical, and thermal properties of the fiber reinforced materials, biomimetic materials, and soft microsensors. However, it is still a challenging task to precisely align and distribute microfibers and construct complex patterns. This paper proposes a surface tension-based method to align and orderly distribute microfibers. A model was developed to simulate the surface tension driven alignment of the microfiber. We designed and fabricated hydrophilic-superhydrophobic grooved surfaces. We demonstrated that the microfibers can self-align to the hydrophilic-superhydrophobic grooves with different geometries. We studied the influence of the volume of the droplet and bias on the alignment success rate. The results indicate that the process can tolerate large variations of the bias and the volume, unless the volume is not enough to cover the groove. We further investigated the influence of the width of the groove on the alignment accuracy. The results show that the alignment accuracy is largely depending on the size difference between the groove and the microfiber; the better the size of the groove matches the size of the fiber, the higher the alignment accuracy will be achieved. The proposed method has great potential in construction of complex microstructures using microfibers.
微纤维的排列和有序分布对纤维增强材料、仿生材料和柔性微传感器的机械、电学和热学性能有重大影响。然而,精确排列和分布微纤维并构建复杂图案仍然是一项具有挑战性的任务。本文提出了一种基于表面张力的方法来排列和有序分布微纤维。建立了一个模型来模拟微纤维在表面张力驱动下的排列。我们设计并制造了亲水性-超疏水性沟槽表面。我们证明了微纤维可以自排列到具有不同几何形状的亲水性-超疏水性沟槽中。我们研究了液滴体积和偏差对排列成功率的影响。结果表明,除非体积不足以覆盖沟槽,否则该过程能够容忍偏差和体积的较大变化。我们进一步研究了沟槽宽度对排列精度的影响。结果表明,排列精度在很大程度上取决于沟槽与微纤维之间的尺寸差异;沟槽尺寸与纤维尺寸匹配得越好,排列精度就越高。所提出的方法在使用微纤维构建复杂微结构方面具有巨大潜力。