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A hybrid strain and thermal energy harvester based on an infra-red sensitive Er3+ modified poly(vinylidene fluoride) ferroelectret structure

机译:基于红外敏感的Er3 +改性聚偏二氟乙烯铁电驻极体结构的混合应变和热能采集器

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摘要

In this paper, a novel infra-red (IR) sensitive Er3+ modified poly(vinylidene fluoride) (PVDF) (Er-PVDF) film is developed for converting both mechanical and thermal energies into useful electrical power. The addition of Er3+ to PVDF is shown to improve piezoelectric properties due to the formation of a self-polarized ferroelectric β-phase and the creation of an electret-like porous structure. In addition, we demonstrate that Er3+ acts to enhance heat transfer into the Er-PVDF film due to its excellent infrared absorbance, which, leads to rapid and large temperature fluctuations and improved pyroelectric energy transformation. We demonstrate the potential of this novel material for mechanical energy harvesting by creating a durable ferroelectret energy harvester/nanogenerator (FTNG). The high thermal stability of the β-phase enables the FTNG to harvest large temperature fluctuations (ΔT ~ 24 K). Moreover, the superior mechanosensitivity, SM ~ 3.4 VPa−1 of the FTNG enables the design of a wearable self-powered health-care monitoring system by human-machine integration. The combination of rare-earth ion, Er3+ with the ferroelectricity of PVDF provides a new and robust approach for delivering smart materials and structures for self-powered wireless technologies, sensors and Internet of Things (IoT) devices.
机译:在本文中,开发了一种新型的红外(IR)敏感Er3 +改性聚偏二氟乙烯(PVDF)(Er-PVDF)膜,用于将机械能和热能均转换为有用的电能。由于自极化铁电β相的形成和驻极体状多孔结构的产生,向PVDF中添加Er3 +可改善压电性能。此外,我们证明,Er3 +具有出色的红外吸收性,可增强热传递到Er-PVDF膜中,从而导致快速且较大的温度波动并改善热电能量转换。我们通过创建耐用的铁电驻极体能量收集器/纳米发电机(FTNG),展示了这种新型材料在机械能收集方面的潜力。 β相的高热稳定性使FTNG能够收获较大的温度波动(ΔT〜24 K)。此外,FTNG具有出色的机械灵敏度,SM〜3.4 VPa-1,可通过人机集成来设计可穿戴式自供电健康监护系统。稀土离子Er3 +与PVDF的铁电性的结合提供了一种新的强大方法,可以为自供电的无线技术,传感器和物联网(IoT)设备提供智能材料和结构。

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