School of Industrial Engineering, Purdue University, West Lafayette, IN, 47907, USA.
Flex Laboratory, Purdue University, West Lafayette, IN, 47907, USA.
Adv Mater. 2020 Aug;32(32):e2002878. doi: 10.1002/adma.202002878. Epub 2020 Jun 28.
The capability of sensor systems to efficiently scavenge their operational power from stray, weak environmental energies through sustainable pathways could enable viable schemes for self-powered health diagnostics and therapeutics. Triboelectric nanogenerators (TENG) can effectively transform the otherwise wasted environmental, mechanical energy into electrical power. Recent advances in TENGs have resulted in a significant boost in output performance. However, obstacles hindering the development of efficient triboelectric devices based on biocompatible materials continue to prevail. Being one of the most widely used polymers for biomedical applications, polyvinyl alcohol (PVA) presents exciting opportunities for biocompatible, wearable TENGs. Here, the holistic engineering and systematic characterization of the impact of molecular and ionic fillers on PVA blends' triboelectric performance is presented for the first time. Triboelectric devices built with optimized PVA-gelatin composite films exhibit stable and robust triboelectricity outputs. Such wearable devices can detect the imperceptible skin deformation induced by the human pulse and capture the cardiovascular information encoded in the pulse signals with high fidelity. The gained fundamental understanding and demonstrated capabilities enable the rational design and holistic engineering of novel materials for more capable biocompatible triboelectric devices that can continuously monitor vital physiological signals for self-powered health diagnostics and therapeutics.
传感器系统能够通过可持续的途径从漫散的、微弱的环境能量中高效地获取运行所需的能量,这为自供电健康诊断和治疗提供了可行的方案。摩擦纳米发电机(TENG)可以有效地将原本浪费的环境和机械能转化为电能。最近,TENG 的发展取得了显著的输出性能提升。然而,基于生物相容性材料的高效摩擦电器件的发展仍然存在障碍。聚乙烯醇(PVA)作为最广泛应用于生物医学领域的聚合物之一,为生物相容性、可穿戴 TENG 提供了令人兴奋的机会。本文首次全面介绍和系统表征了分子和离子填充剂对 PVA 共混物摩擦电性能的影响。用优化的 PVA-明胶复合薄膜制成的摩擦电器件具有稳定且强大的摩擦电输出。这种可穿戴设备可以检测到由人体脉搏引起的难以察觉的皮肤变形,并以高保真度捕捉脉搏信号中编码的心血管信息。获得的基本认识和演示的能力使人们能够合理设计和全面工程化新型材料,以制造更强大的生物相容性摩擦电器件,从而持续监测重要的生理信号,实现自供电健康诊断和治疗。