Center for Integrated Research, Unit of Measurements and Biomedical Instrumentation, Università Campus Bio-Medico di Roma, Via Álvaro del Portillo, Rome 21-00128, Italy; E-Mails:
The BioRobotics Institute, Scuola Superiore Sant'Anna, Polo Sant'Anna Valdera, Viale Rinaldo Piaggio 34, Pontedera (PI) 56025, Italy; E-Mail:
Biosensors (Basel). 2014 Nov 3;4(4):422-48. doi: 10.3390/bios4040422. eCollection 2014 Dec.
During the last decades, tactile sensors based on different sensing principles have been developed due to the growing interest in robotics and, mainly, in medical applications. Several technological solutions have been employed to design tactile sensors; in particular, solutions based on microfabrication present several attractive features. Microfabrication technologies allow for developing miniaturized sensors with good performance in terms of metrological properties (e.g., accuracy, sensitivity, low power consumption, and frequency response). Small size and good metrological properties heighten the potential role of tactile sensors in medicine, making them especially attractive to be integrated in smart interfaces and microsurgical tools. This paper provides an overview of microfabricated tactile sensors, focusing on the mean principles of sensing, i.e., piezoresistive, piezoelectric and capacitive sensors. These sensors are employed for measuring contact properties, in particular force and pressure, in three main medical fields, i.e., prosthetics and artificial skin, minimal access surgery and smart interfaces for biomechanical analysis. The working principles and the metrological properties of the most promising tactile, microfabricated sensors are analyzed, together with their application in medicine. Finally, the new emerging technologies in these fields are briefly described.
在过去的几十年中,由于对机器人技术的日益关注,特别是对医疗应用的关注,基于不同传感原理的触觉传感器已经得到了发展。已经采用了几种技术解决方案来设计触觉传感器;特别是基于微制造的解决方案具有许多吸引人的特点。微制造技术允许开发具有良好计量性能(例如,准确性、灵敏度、低功耗和频率响应)的小型化传感器。小尺寸和良好的计量性能提高了触觉传感器在医学中的潜在作用,使它们特别适合集成到智能接口和微创手术工具中。本文综述了微制造的触觉传感器,重点介绍了传感的平均原理,即压阻式、压电式和电容式传感器。这些传感器用于测量三个主要医学领域中的接触特性,即假肢和人造皮肤、微创手术和用于生物力学分析的智能接口中的力和压力。分析了最有前途的微制造触觉传感器的工作原理和计量性能,以及它们在医学中的应用。最后,简要描述了这些领域的新兴技术。