Qiu Zhen, Piyawattanametha Wibool
Department of Biomedical Engineering, Institute for Quantitative Health Science and Engineering, Michigan State University, East Lansing, MI 48824, USA.
Departments of Biomedical Engineering, Faculty of Engineering King Mongkut's Institute of Technology Ladkrabang (KMITL), Bangkok 10520, Thailand.
Micromachines (Basel). 2019 Jan 24;10(2):85. doi: 10.3390/mi10020085.
Growing demands for affordable, portable, and reliable optical microendoscopic imaging devices are attracting research institutes and industries to find new manufacturing methods. However, the integration of microscopic components into these subsystems is one of today's challenges in manufacturing and packaging. Together with this kind of miniaturization more and more functional parts have to be accommodated in ever smaller spaces. Therefore, solving this challenge with the use of microelectromechanical systems (MEMS) fabrication technology has opened the promising opportunities in enabling a wide variety of novel optical microendoscopy to be miniaturized. MEMS fabrication technology enables abilities to apply batch fabrication methods with high-precision and to include a wide variety of optical functionalities to the optical components. As a result, MEMS technology has enabled greater accessibility to advance optical microendoscopy technology to provide high-resolution and high-performance imaging matching with traditional table-top microscopy. In this review the latest advancements of MEMS actuators for optical microendoscopy will be discussed in detail.
对经济实惠、便于携带且可靠的光学微型内窥镜成像设备的需求不断增长,正吸引着研究机构和企业去寻找新的制造方法。然而,将微观部件集成到这些子系统中是当今制造和封装领域的挑战之一。随着这种小型化,越来越多的功能部件必须被安置在越来越小的空间内。因此,利用微机电系统(MEMS)制造技术来解决这一挑战,为实现各种新型光学微型内窥镜的小型化带来了广阔的机遇。MEMS制造技术能够应用高精度的批量制造方法,并为光学部件赋予多种光学功能。结果,MEMS技术使先进的光学微型内窥镜技术更容易获得,以提供与传统台式显微镜相匹配的高分辨率和高性能成像。在这篇综述中,将详细讨论用于光学微型内窥镜的MEMS致动器的最新进展。