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Capacitive behavior of carbon nanotube thin film induced by deformed ZnO microspheres

机译:变形ZnO微球诱导碳纳米管薄膜的电容性能

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摘要

Multiwalled carbon nanotubes (CNTs) are uniformly distributed with piezoelectric microspheres. This leads to a large strain gradient due to an induced capacitive response, providing a 250% enhancement in electromechanical response compared with pristine CNTs. The fabricated large-area flexible thin film exhibits excellent pressure sensitivity, which can even detect an arterial pulse with a much faster response time (similar to 79 ms) in a bendable configuration. In addition, the film shows a rapid relaxation time (similar to 0.4 s), high stability and excellent durability with a rapid loading-unloading cycle. The dominant contribution of piezoelectric microspheres in a CNT matrix as opposed to nanoparticles showed a much higher sensitivity due to the large change in capacitance. Therefore, hybrid microstructures have various potential applications in wearable smart electronics, including detection of human motion and wrist pulses.
机译:多壁碳纳米管(CNT)与压电微球均匀分布。 由于诱导的电容响应,这导致大应变梯度,而是与原始CNT相比的机电响应的增强250%。 制造的大面积柔性薄膜具有出色的压力灵敏度,甚至可以在可弯曲配置中检测具有更快的响应时间(类似于79毫秒)的动脉脉冲。 此外,该薄膜显示出快速的弛豫时间(类似于0.4秒),高稳定性和具有快速装载卸载循环的耐高力优异。 与纳米颗粒相对的CNT基质中压电微球的主导贡献显示出由于电容的大变化而具有更高的灵敏度。 因此,混合微结构在可穿戴智能电子器件中具有各种潜在的应用,包括检测人类运动和腕脉冲。

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