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Multilayered fiber-based triboelectric nanogenerator with high performance for biomechanical energy harvesting

机译:基于多层纤维的摩擦纳米能器,具有高性能的生物力学能量收获

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摘要

With a rapid development of various wearable electronics, self-powered system and triboelectric nanogenerator (TENG) have attracted increasingly widespread attention. Tremendous efforts have been devoted to seeking effective approaches to increase the triboelectric charge density of friction surfaces and thus further boost the output performance of TENG. Here, we designed a multilayered fiber-based TENG to greatly enhance the charge density by creatively introducing a charge-transport layer and a charge-storage layer in the composite structure. The introduced conductive material and dielectric material could effectively increase the transfer rate and storage depth of triboelectric charges during the triboelectrification process. The short-circuit current and opencircuit voltage of the three-layer structured TENG were distinctively 3.07 times and 2.56 times larger respectively compared with the single-layer structured TENG. The power density of three-layer structured TENG with an effective area of 9 cm(2) can reach as high as 0.13 W/m(2) under a frequency of 3 Hz. The fabricated TENG can be integrated into a commercial kneepad to harvest versatile biomechanical energy from human motions. Besides, the composite TENG was demonstrated to sustainably drive some small wearable or portable electronics such as electronic watch, commercial thermometer and calculator. This presented work provides an innovative and effective approach to design novel mechanical energy-conversion devices with high performance for practical applications in the field of self-powered wearable system.
机译:随着各种可穿戴电子产品的快速发展,自动系统和摩擦纳米料(Teng)引起了越来越广泛的关注。已经致力于寻求有效方法来增加摩擦表面的摩擦电荷密度,从而进一步提高滕的产出性能。这里,我们设计了一种基于多层光纤的腾腾,通过在复合结构中创造电荷传输层和电荷存储层来大大提高电荷密度。引入的导电材料和介电材料可以在摩擦电压过程中有效地提高摩擦电荷的传递速率和存储深度。与单层结构腾相比,三层结构滕的短路电流和OpenCircuit电压分别与单层结构相比分别为3.07倍,比较大2.56倍。具有9cm(2)的有效面积的三层结构龄的功率密度可以在3Hz的频率下达到0.13W / m(2)。制造的滕可以集成到商业kneepad中以从人类运动中收获多功能生物力学能量。此外,综合腾腾被证明可持续推动一些小型可穿戴或便携式电子产品,如电子表,商业温度计和计算器。这项所提供的工作提供了一种创新和有效的方法来设计具有高性能的新型机械能转换装置,可用于自动穿戴系统领域的实际应用。

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