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How to Make a Fast, Efficient Bubble-Driven Micromotor: A Mechanical View

Micromotors, which can be moved at a micron scale, have special functions and can perform microscopic tasks. They have a wide range of applications in various fields with the advantages of small size and high efficiency. Both high speed and efficiency for micromotors are required in various conditio...

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Autores principales: Liu, Lisheng, Bai, Tao, Chi, Qingjia, Wang, Zhen, Xu, Shuang, Liu, Qiwen, Wang, Qiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6189961/
https://www.ncbi.nlm.nih.gov/pubmed/30400455
http://dx.doi.org/10.3390/mi8090267
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author Liu, Lisheng
Bai, Tao
Chi, Qingjia
Wang, Zhen
Xu, Shuang
Liu, Qiwen
Wang, Qiang
author_facet Liu, Lisheng
Bai, Tao
Chi, Qingjia
Wang, Zhen
Xu, Shuang
Liu, Qiwen
Wang, Qiang
author_sort Liu, Lisheng
collection PubMed
description Micromotors, which can be moved at a micron scale, have special functions and can perform microscopic tasks. They have a wide range of applications in various fields with the advantages of small size and high efficiency. Both high speed and efficiency for micromotors are required in various conditions. However, the dynamical mechanism of bubble-driven micromotors movement is not clear, owing to various factors affecting the movement of micromotors. This paper reviews various factors acting on micromotor movement, and summarizes appropriate methods to improve the velocity and efficiency of bubble-driven micromotors, from a mechanical view. The dynamical factors that have significant influence on the hydrodynamic performance of micromotors could be divided into two categories: environment and geometry. Improving environment temperature and decreasing viscosity of fluid accelerate the velocity of motors. Under certain conditions, raising the concentration of hydrogen peroxide is applied. However, a high concentration of hydrogen peroxide is not applicable. In the environment of low concentration, changing the geometry of micromotors is an effective mean to improve the velocity of micromotors. Increasing semi-cone angle and reducing the ratio of length to radius for tubular and rod micromotors are propitious to increase the speed of micromotors. For Janus micromotors, reducing the mass by changing the shape into capsule and shell, and increasing the surface roughness, is applied. This review could provide references for improving the velocity and efficiency of micromotors.
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spelling pubmed-61899612018-11-01 How to Make a Fast, Efficient Bubble-Driven Micromotor: A Mechanical View Liu, Lisheng Bai, Tao Chi, Qingjia Wang, Zhen Xu, Shuang Liu, Qiwen Wang, Qiang Micromachines (Basel) Review Micromotors, which can be moved at a micron scale, have special functions and can perform microscopic tasks. They have a wide range of applications in various fields with the advantages of small size and high efficiency. Both high speed and efficiency for micromotors are required in various conditions. However, the dynamical mechanism of bubble-driven micromotors movement is not clear, owing to various factors affecting the movement of micromotors. This paper reviews various factors acting on micromotor movement, and summarizes appropriate methods to improve the velocity and efficiency of bubble-driven micromotors, from a mechanical view. The dynamical factors that have significant influence on the hydrodynamic performance of micromotors could be divided into two categories: environment and geometry. Improving environment temperature and decreasing viscosity of fluid accelerate the velocity of motors. Under certain conditions, raising the concentration of hydrogen peroxide is applied. However, a high concentration of hydrogen peroxide is not applicable. In the environment of low concentration, changing the geometry of micromotors is an effective mean to improve the velocity of micromotors. Increasing semi-cone angle and reducing the ratio of length to radius for tubular and rod micromotors are propitious to increase the speed of micromotors. For Janus micromotors, reducing the mass by changing the shape into capsule and shell, and increasing the surface roughness, is applied. This review could provide references for improving the velocity and efficiency of micromotors. MDPI 2017-08-30 /pmc/articles/PMC6189961/ /pubmed/30400455 http://dx.doi.org/10.3390/mi8090267 Text en © 2017 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Liu, Lisheng
Bai, Tao
Chi, Qingjia
Wang, Zhen
Xu, Shuang
Liu, Qiwen
Wang, Qiang
How to Make a Fast, Efficient Bubble-Driven Micromotor: A Mechanical View
title How to Make a Fast, Efficient Bubble-Driven Micromotor: A Mechanical View
title_full How to Make a Fast, Efficient Bubble-Driven Micromotor: A Mechanical View
title_fullStr How to Make a Fast, Efficient Bubble-Driven Micromotor: A Mechanical View
title_full_unstemmed How to Make a Fast, Efficient Bubble-Driven Micromotor: A Mechanical View
title_short How to Make a Fast, Efficient Bubble-Driven Micromotor: A Mechanical View
title_sort how to make a fast, efficient bubble-driven micromotor: a mechanical view
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6189961/
https://www.ncbi.nlm.nih.gov/pubmed/30400455
http://dx.doi.org/10.3390/mi8090267
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