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How Far Are We from Achieving Self-Powered Flexible Health Monitoring Systems: An Energy Perspective

机译:我们从实现自我驱动的灵活健康监测系统方面有多远:能源观点

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摘要

The rapid development of flexible electronics and sensing technologies have made it possible for the detection of various human vital signs and biomarkers through an extremely light-weight and soft device attached to the skin. To support such sensing devices for multi-parameter tracking and continuous operation, a powerful energy supply unit, which is compact, mobile, and with high energy density and self-charging capability, is desired. The recently emerged energy harvesting devices have demonstrated the potential of utilizing ambient and human-based energy sources to power sensor systems. In this context, this review aims to investigate the question of whether the capacity of current flexible energy devices can meet the energy demand of wireless flexible sensor systems in long-term health monitoring applications. First, the total energy demand of typical sensor systems is estimated by analyzing the energy consumption of each building block of the relevant systems. The design of the energy supply architecture is discussed by considering batteries/supercapacitors as the energy storage unit and photovoltaic, thermoelectric, piezoelectric, and triboelectric devices as the energy-harvesting unit. Based on the analysis, health monitoring protocols that could be readily realized with self-powered system designs are suggested and the core challenges for further development of the technologies for practical applications are identified.
机译:灵活的电子和传感技术的快速发展使得通过极其轻型和柔软的装置来检测各种人体生命体征和生物标志物。为了支持用于多参数跟踪和连续操作的这种传感装置,需要强大的能量供应单元,其紧凑,移动和具有高能量密度和自充电能力。最近出现的能量收集装置已经证明了利用环境和以人为基础的能源到电力传感器系统的可能性。在这种情况下,本综述旨在调查当前灵活能量设备是否能够满足无线柔性传感器系统在长期健康监测应用中的能量需求的问题。首先,通过分析相关系统的每个构件块的能量消耗来估计典型传感器系统的总能量需求。通过将电池/超级电容器视为能量存储单元和光伏,热电,压电和摩擦电器作为能量收集单元来讨论能量供应架构的设计。基于分析,建议,可以随时了解自动系统设计的健康监测协议,并确定了用于进一步开发实际应用技术的核心挑战。

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