Kocaman Kabil Fatmanur, Oral Ahmet Yavuz
Institute of Nanotechnology, Gebze Technical University, Gebze, Kocaeli 41400, Turkey.
Department of Material Science and Engineering, Gebze Technical University, Gebze, Kocaeli 41400, Turkey.
ACS Omega. 2025 Feb 14;10(7):6337-6350. doi: 10.1021/acsomega.4c10781. eCollection 2025 Feb 25.
Wearable thermoelectric generators are sustainable devices that generate electricity from body heat to provide a continuous power supply for electronic devices. In healthcare, they are particularly valuable for powering wireless devices that transmit vital health signals, where maintaining an uninterrupted power source is a significant challenge. However, these generators are prone to failure over time or due to mechanical damage caused by mechanical stress or environmental factors, which can lead to the loss of critical healthcare data. To address these issues, the integration of self-healing capabilities alongside flexibility and longevity is essential for their reliable operation. To our knowledge, this review is one of the first to look in depth at self-healing materials specifically designed for wearable thermoelectric generators. It explores the latest innovations and applications in this field highlighting how these materials can improve the reliability and lifetime of such systems.
可穿戴式热电发电机是可持续的设备,它们利用人体热量发电,为电子设备提供持续的电源。在医疗保健领域,它们对于为传输重要健康信号的无线设备供电尤为重要,因为维持不间断的电源是一项重大挑战。然而,随着时间的推移,或者由于机械应力或环境因素造成的机械损坏,这些发电机容易出现故障,这可能导致关键医疗数据的丢失。为了解决这些问题,将自愈能力与灵活性和耐用性相结合对于其可靠运行至关重要。据我们所知,本综述是首批深入研究专门为可穿戴式热电发电机设计的自愈材料的综述之一。它探讨了该领域的最新创新和应用,突出了这些材料如何提高此类系统的可靠性和使用寿命。