静电纺丝实现能量自主可穿戴传感系统的潜力
The Potential of Electrospinning to Enable the Realization of Energy-Autonomous Wearable Sensing Systems.
作者信息
Dinuwan Gunawardhana K R Sanjaya, Simorangkir Roy B V B, McGuinness Garrett Brian, Rasel M Salauddin, Magre Colorado Luz A, Baberwal Sonal S, Ward Tomás E, O'Flynn Brendan, Coyle Shirley M
机构信息
School of Electronic Engineering, Dublin City University, Glasnevin D09Y074, Dublin, Ireland.
Insight SFI Centre for Data Analytics, Dublin City University, Glasnevin D09Y074, Dublin, Ireland.
出版信息
ACS Nano. 2024 Jan 30;18(4):2649-2684. doi: 10.1021/acsnano.3c09077. Epub 2024 Jan 17.
The market for wearable electronic devices is experiencing significant growth and increasing potential for the future. Researchers worldwide are actively working to improve these devices, particularly in developing wearable electronics with balanced functionality and wearability for commercialization. Electrospinning, a technology that creates nano/microfiber-based membranes with high surface area, porosity, and favorable mechanical properties for human and applications using a broad range of materials, is proving to be a promising approach. Wearable electronic devices can use mechanical, thermal, evaporative and solar energy harvesting technologies to generate power for future energy needs, providing more options than traditional sources. This review offers a comprehensive analysis of how electrospinning technology can be used in energy-autonomous wearable wireless sensing systems. It provides an overview of the electrospinning technology, fundamental mechanisms, and applications in energy scavenging, human physiological signal sensing, energy storage, and antenna for data transmission. The review discusses combining wearable electronic technology and textile engineering to create superior wearable devices and increase future collaboration opportunities. Additionally, the challenges related to conducting appropriate testing for market-ready products using these devices are also discussed.
可穿戴电子设备市场正在经历显著增长,且未来潜力不断增大。全球的研究人员都在积极致力于改进这些设备,特别是开发具有平衡功能和可穿戴性以实现商业化的可穿戴电子产品。静电纺丝是一种利用多种材料制造具有高表面积、孔隙率以及对人体和应用而言良好机械性能的基于纳米/微纤维的膜的技术,事实证明它是一种很有前景的方法。可穿戴电子设备可以利用机械、热、蒸发和太阳能收集技术来为未来的能源需求发电,比传统能源提供更多选择。本综述全面分析了静电纺丝技术如何应用于能量自主的可穿戴无线传感系统。它概述了静电纺丝技术、基本机制以及在能量收集、人体生理信号传感、能量存储和用于数据传输的天线方面的应用。该综述讨论了将可穿戴电子技术与纺织工程相结合,以制造出更优质的可穿戴设备并增加未来的合作机会。此外,还讨论了使用这些设备对准备投放市场的产品进行适当测试所涉及的挑战。