Faculty of Science, Engineering, and Technology (FSET), Swinburne University of Technology, Melbourne VIC 3122, Australia.
Department of Chemical Engineering, The University of Melbourne, Parkville VIC 3010, Australia.
Sensors (Basel). 2020 Aug 11;20(16):4484. doi: 10.3390/s20164484.
Advancements in materials science and fabrication techniques have contributed to the significant growing attention to a wide variety of sensors for digital healthcare. While the progress in this area is tremendously impressive, few wearable sensors with the capability of real-time blood pressure monitoring are approved for clinical use. One of the key obstacles in the further development of wearable sensors for medical applications is the lack of comprehensive technical evaluation of sensor materials against the expected clinical performance. Here, we present an extensive review and critical analysis of various materials applied in the design and fabrication of wearable sensors. In our unique transdisciplinary approach, we studied the fundamentals of blood pressure and examined its measuring modalities while focusing on their clinical use and sensing principles to identify material functionalities. Then, we carefully reviewed various categories of functional materials utilized in sensor building blocks allowing for comparative analysis of the performance of a wide range of materials throughout the sensor operational-life cycle. Not only this provides essential data to enhance the materials' properties and optimize their performance, but also, it highlights new perspectives and provides suggestions to develop the next generation pressure sensors for clinical use.
材料科学和制造技术的进步促使人们对各种用于数字医疗的传感器产生了浓厚的兴趣。尽管这一领域的进展令人印象深刻,但能够实时监测血压的可穿戴传感器中,只有少数几种获得了临床应用的批准。在可穿戴传感器在医疗应用中的进一步发展方面,关键障碍之一是缺乏对传感器材料与预期临床性能相对应的全面技术评估。在这里,我们对可用于设计和制造可穿戴传感器的各种材料进行了广泛的回顾和批判性分析。在我们独特的跨学科方法中,我们研究了血压的基本原理,并检查了其测量方式,同时专注于它们的临床用途和传感原理,以确定材料的功能。然后,我们仔细审查了用于传感器构建块的各种功能材料类别,从而能够对整个传感器工作生命周期内的广泛材料的性能进行比较分析。这不仅提供了增强材料性能和优化其性能的必要数据,还突出了新的视角,并为开发用于临床应用的下一代压力传感器提供了建议。