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Synergetic enhancement of the energy harvesting performance in flexible hybrid generator driven by human body using thermoelectric and piezoelectric combine effects

机译:使用热电和压电结合效应来协调利用人体驱动的柔性混合发电机能量收集性能的增强

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摘要

Flexible thermoelectric-piezoelectric generator (f-TPEG) has emerged as the leading candidate to realize longterm biomedical monitoring-based ubiquitous healthcare services. We developed a f-TPEG composed of a piezoelectric (PE) poly(vinylidene fluoride-co-trifluoroethylene) thin film and thermoelectric (TE) bismuth telluride-based alloy blocks. The surficial properties of TE and PE components of f-TPEG were thoroughly optimized to minimize the loss of output performance and enhance the mechanical stability. The f-TPEG harvested a maximum electric voltage of -17 V and current signals of -3.8 mu A at a temperature difference of 3 K by periodic bendings: The harvested output power of the fabricated hybrid energy generator was well integrated without sacrificing each PE and TE-based energy generation. In addition, to confirm the biological energy harvesting efficiency of the generator, we demonstrated the f-TPEG taped onto human fingers, which converts an output voltage of about 8 V and a current pulse of about 6 mu A. The results obtained herein suggest that the f-TPEG would play a variety of important roles in wearable device, which needs long-term biomedical monitoring and applications in smart clothing.
机译:柔性热电压电发电机(F-TPEG)已成为实现基于Longterm生物医学监测的无处不在的医疗保健服务的领先候选者。我们开发了由压电(PE)聚(偏二氟乙烯 - 二三氟乙烯)薄膜和热电(TE)铋基合金块组成的F-TPEG。 F-TPEG的TE和PE组分的曲面性质经过彻底优化,以最小化输出性能的损失,提高机械稳定性。 F-TPEG通过周期性弯曲收获-17V的最大电压-17 V和-3.8μA的电流信号,在3 k的温度差异下:制造的混合动力能量发生器的收获输出功率在不牺牲每个PE的情况下很好地集成基于TE的能量生成。另外,为了确认发电机的生物能量收集效率,我们将F-TPEG折叠在人的手指上,转换约8V的输出电压和约6μA的电流脉冲。本文获得的结果表明F-TPEG将在可穿戴设备中发挥各种重要作用,需要长期生物医学监控和智能服装的应用。

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