State Key Laboratory of Digital Manufacturing Equipment and Technology, Huazhong University of Science and Technology, Wuhan, 430074, China.
Portland Technology Development, Intel Corporation, Hillsboro, OR, 97124, USA.
Adv Mater. 2016 Dec;28(45):9881-9919. doi: 10.1002/adma.201602251. Epub 2016 Sep 28.
The rapid advancements of wearable electronics have caused a paradigm shift in consumer electronics, and the emerging development of stretchable electronics opens a new spectrum of applications for electronic systems. Playing a critical role as the power sources for independent electronic systems, energy harvesters with high flexibility or stretchability have been the focus of research efforts over the past decade. A large number of the flexible energy harvesters developed can only operate at very low strain level (≈0.1%), and their limited flexibility impedes their application in wearable or stretchable electronics. Here, the development of highly flexible and stretchable (stretchability >15% strain) energy harvesters is reviewed with emphasis on strategies of materials synthesis, device fabrication, and integration schemes for enhanced flexibility and stretchability. Due to their particular potential applications in wearable and stretchable electronics, energy-harvesting devices based on piezoelectricity, triboelectricity, thermoelectricity, and dielectric elastomers have been largely developed and the progress is summarized. The challenges and opportunities of assembly and integration of energy harvesters into stretchable systems are also discussed.
可穿戴电子设备的快速发展引发了消费电子产品的范式转变,而可拉伸电子产品的新兴发展为电子系统开辟了新的应用领域。作为独立电子系统的电源,具有高柔韧性或可拉伸性的能量收集器一直是过去十年研究工作的重点。在过去十年中开发的大量柔性能量收集器只能在非常低的应变水平(≈0.1%)下运行,它们的柔韧性有限,阻碍了它们在可穿戴或可拉伸电子产品中的应用。本文重点介绍了材料合成、器件制造和集成方案的策略,综述了具有高柔韧性和可拉伸性(可拉伸性>15%应变)的能量收集器的发展。由于它们在可穿戴和可拉伸电子产品中的特殊潜在应用,基于压电、摩擦电、热电和介电弹性体的能量收集器件已经得到了很大的发展,并对其进展进行了总结。还讨论了将能量收集器组装和集成到可拉伸系统中的挑战和机遇。