Tan Rong, Yang Xiong, Shen Yajing
City University of Hong Kong, Tat Chee Avenue, Kowloon, Hong Kong, SAR.
Centre for Robotics and Automation, CityU Shen Zhen Research Institute, Shen Zhen, China.
Robotics Biomim. 2017;4(1):17. doi: 10.1186/s40638-017-0075-1. Epub 2017 Nov 10.
The rapid development of robotics offers new opportunities for the traditional biofabrication in higher accuracy and controllability, which provides great potentials for the intelligent biomedical engineering. This paper reviews the state of the art of robotics in a widely used biomaterial fabrication process, i.e., electrospinning, including its working principle, main applications, challenges, and prospects. First, the principle and technique of electrospinning are introduced by categorizing it to melt electrospinning, solution electrospinning, and near-field electrospinning. Then, the applications of electrospinning in biomedical engineering are introduced briefly from the aspects of drug delivery, tissue engineering, and wound dressing. After that, we conclude the existing problems in traditional electrospinning such as low production, rough nanofibers, and uncontrolled morphology, and then discuss how those problems are addressed by robotics via four case studies. Lastly, the challenges and outlooks of robotics in electrospinning are discussed and prospected.
机器人技术的快速发展为传统生物制造带来了新机遇,使其具有更高的精度和可控性,这为智能生物医学工程提供了巨大潜力。本文综述了机器人技术在一种广泛应用的生物材料制造工艺——静电纺丝中的发展现状,包括其工作原理、主要应用、挑战和前景。首先,通过将静电纺丝分类为熔体静电纺丝、溶液静电纺丝和近场静电纺丝,介绍了其原理和技术。然后,从药物递送、组织工程和伤口敷料等方面简要介绍了静电纺丝在生物医学工程中的应用。之后,我们总结了传统静电纺丝中存在的问题,如产量低、纳米纤维粗糙和形态不可控等,然后通过四个案例研究讨论了机器人技术如何解决这些问题。最后,讨论并展望了机器人技术在静电纺丝中的挑战和前景。