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Human-motion interactive energy harvester based on polyaniline functionalized textile fibers following metal/polymer mechano-responsive charge transfer mechanism

机译:基于金属/聚合物机械响应电荷转移机构的聚苯胺官能化纺织纤维的人造互动能量收割机

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摘要

Our experimental outturn opens up a new vision by proposing mechano-responsive charge transfer mechanism (MRCTM) to pi-conjugated polymers in the field of human-motion interactive energy harvester. Doped polyaniline (d-PANi) has been used to functionalize conducting textile fibers (f-CTFs) and integrated with our proposed design for wearable power plant. Each f-CTF generates current by patting, bending, or even soft touching. Localized force deformation at the metal/polymeric interface layer with direct visualization of charge distribution pattern has been extensively studied by atomic force microscopy. The integrated arrays of f-CTFs produce a peak power-density of similar to 0.6 W m(-2) with output current-density of similar to 22 mA M-2 and can power at least 10 white LEDs of 2.5 W. The procured energy from f-CTFs is capable of charging a commercial 10 mu F capacitor to 3 V in 80 s and powering portable electronic devices. The prototype energy harvester stably shows the same performance after more than 100 thousand times of patting, bending or twisting.
机译:我们的实验缺失通过提出机械响应电荷转移机制(MRCTM)在人们运动互动能量收割机领域的PI-CONGUINGETION聚合物中提出了一种新的视觉。掺杂的聚苯胺(D-PANI)已被用于官能化纺织纤维(F-CTF),并与我们所提出的可穿戴电厂设计集成。每个F-CTF通过拍拍,弯曲或甚至软接触来产生电流。通过原子力显微镜进行广泛地研究了具有直接可视化的金属/聚合物界面层处的局部力变形。 F-CTF的集成阵列产生类似于0.6 W m(-2)的峰值功率密度,其输出电流密度类似于22 mA M-2,并且可以为2.5W的至少10个白色LED电源。采购来自F-CTF的能量能够在80秒和供电的便携式电子设备中向3V充电至3V。原型能量收割机在拍摄,弯曲或扭曲的100千万次之后稳定地显示相同的性能。

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