Tsikriteas Zois Michail, Roscow James I, Bowen Chris R, Khanbareh Hamideh
Materials and Structures Research Centre, Department of Mechanical Engineering, University of Bath, Claverton Down, Bath BA2 7AY, UK.
iScience. 2020 Dec 29;24(1):101987. doi: 10.1016/j.isci.2020.101987. eCollection 2021 Jan 22.
Wearable electronics are becoming increasingly important for medical applications as they have revolutionized the way physiological parameters are monitored. Ferroelectric materials show spontaneous polarization below the Curie temperature, which changes with electric field, temperature, and mechanical deformation. Therefore, they have been widely used in sensor and actuator applications. In addition, these materials can be used for conversion of human-body energy into electricity for powering wearable electronics. In this paper, we review the recent advances in flexible ferroelectric materials for wearable human energy harvesting and sensing. To meet the performance requirements for medical applications, the most suitable materials and manufacturing techniques are reviewed. The approaches used to enhance performance and achieve long-term sustainability and multi-functionality by integrating other active sensing mechanisms (e.g. triboelectric and piezoresistive effects) are discussed. Data processing and transmission as well as the contribution of wearable piezoelectric devices in early disease detection and monitoring vital signs are reviewed.
可穿戴电子产品在医疗应用中变得越来越重要,因为它们彻底改变了生理参数的监测方式。铁电材料在居里温度以下表现出自发极化,其会随电场、温度和机械变形而变化。因此,它们已被广泛应用于传感器和致动器领域。此外,这些材料可用于将人体能量转化为电能,为可穿戴电子产品供电。在本文中,我们综述了用于可穿戴人体能量收集和传感的柔性铁电材料的最新进展。为满足医疗应用的性能要求,我们对最合适的材料和制造技术进行了综述。讨论了通过整合其他有源传感机制(如摩擦电效应和压阻效应)来提高性能并实现长期可持续性和多功能性的方法。还综述了数据处理与传输以及可穿戴压电器件在早期疾病检测和生命体征监测中的作用。