Surface Tension-Based Alignment of Microfibers on Hydrophilic–Superhydrophobic Grooved Surfaces
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 constr...
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doaj-f82ec0ba5660488c9ea74de43b58be582020-11-25T04:08:56ZengMDPI AGMicromachines2072-666X2020-10-011197397310.3390/mi11110973Surface Tension-Based Alignment of Microfibers on Hydrophilic–Superhydrophobic Grooved SurfacesBo Chang0Jialong Jin1Quan Zhou2College of Mechanical and Electrical Engineering, Shaanxi University of Science and Technology, Xi’an 710021, ChinaCollege of Mechanical and Electrical Engineering, Shaanxi University of Science and Technology, Xi’an 710021, ChinaSchool of Electrical Engineering, Aalto University, FI-00076 Aalto, FinlandAlignment 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.https://www.mdpi.com/2072-666X/11/11/973micro assemblyself-alignmentsurface tensionhydrophilic–superhydrophobicmicrofibersorderly distribution |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Bo Chang Jialong Jin Quan Zhou |
spellingShingle |
Bo Chang Jialong Jin Quan Zhou Surface Tension-Based Alignment of Microfibers on Hydrophilic–Superhydrophobic Grooved Surfaces Micromachines micro assembly self-alignment surface tension hydrophilic–superhydrophobic microfibers orderly distribution |
author_facet |
Bo Chang Jialong Jin Quan Zhou |
author_sort |
Bo Chang |
title |
Surface Tension-Based Alignment of Microfibers on Hydrophilic–Superhydrophobic Grooved Surfaces |
title_short |
Surface Tension-Based Alignment of Microfibers on Hydrophilic–Superhydrophobic Grooved Surfaces |
title_full |
Surface Tension-Based Alignment of Microfibers on Hydrophilic–Superhydrophobic Grooved Surfaces |
title_fullStr |
Surface Tension-Based Alignment of Microfibers on Hydrophilic–Superhydrophobic Grooved Surfaces |
title_full_unstemmed |
Surface Tension-Based Alignment of Microfibers on Hydrophilic–Superhydrophobic Grooved Surfaces |
title_sort |
surface tension-based alignment of microfibers on hydrophilic–superhydrophobic grooved surfaces |
publisher |
MDPI AG |
series |
Micromachines |
issn |
2072-666X |
publishDate |
2020-10-01 |
description |
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. |
topic |
micro assembly self-alignment surface tension hydrophilic–superhydrophobic microfibers orderly distribution |
url |
https://www.mdpi.com/2072-666X/11/11/973 |
work_keys_str_mv |
AT bochang surfacetensionbasedalignmentofmicrofibersonhydrophilicsuperhydrophobicgroovedsurfaces AT jialongjin surfacetensionbasedalignmentofmicrofibersonhydrophilicsuperhydrophobicgroovedsurfaces AT quanzhou surfacetensionbasedalignmentofmicrofibersonhydrophilicsuperhydrophobicgroovedsurfaces |
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1724424045135396864 |