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Wearable triboelectric nanogenerators with the reduced loss of triboelectric charges by using a hole transport layer of bar-printed single-wall carbon nanotube random networks

机译:可穿戴摩擦纳米电磁炉,通过使用圆柱形单壁碳纳米管随机网络的空穴传输层,通过孔传输层减少摩擦电荷损失

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Wearable triboelectric nanogenerators (TENGs) are considered viable for mobile applications of self-powered electronics operating on human body but limited by relatively low output performance. In this study, the effects of interfacial layers used as hole transport layers (HTLs) which affect triboelectric charge separation on the output performance of TENGs are investigated. Comparative analyses of different interfacial layers prove that the incorporation of single-wall carbon nanotube (SWCNT) random networks into TENGs can reduce the loss of triboelectric charges. Improvements in the charge-repelling force and hole-blocking barrier at the interface between the HTL and electrode enabled the wearable TENGs to achieve output voltages of similar to 760 V and currents of similar to 51 mu A at 3 Hz. Such advances can be realized by optimizing SWCNT-based HTL through a simple and effective bar-printing technology in an ambient atmosphere. Moreover, a practical application of the wearable TENG exhibiting a maximum instantaneous power of 19.2 mW and a power density of 0.77 mWcm(-2) with a load resistance of 5 M Omega is demonstrated. Mechanical finger-tapping on wearable TENGs enables operation of small electric devices without energy storage. The utilization of SWCNT-based HTLs fabricated by effective and practical bar-printing can stimulate the development of energy-harvesting technologies based on wearable TENGs. (C) 2021 Elsevier Ltd. All rights reserved.
机译:可穿戴摩擦纳米料(Tengs)被认为是可行的,用于在人体上运行的自动电子设备的移动应用,但通过相对较低的输出性能限制。在该研究中,研究了用作孔输送层(HTLS)的界面层的影响,其影响TENGS的输出性能的摩擦电荷分离。不同界面层的对比分析证明,将单壁碳纳米管(SWCNT)随机网络掺入龄可以降低摩擦电荷的损失。 HTL和电极之间接口处的电荷排斥力和空穴阻挡屏障的改进使得可穿戴腾腾,以实现类似于760 V的输出电压和3 Hz的51 mu a的电流。通过在环境气氛中通过简单且有效的条形图技术优化SWCNT的HTL,可以实现这种进步。此外,佩戴腾腾的实际应用表现出最大瞬时功率为19.2MW的最大瞬时功率和0.77mWcm(-2)的功率密度,具有5mΩa的载荷电阻。穿戴腾腾的机械手指攻丝使得在没有储能的情况下运行小型电气设备。通过有效和实用的条形印刷制造的基于SWCNT的HTL的利用可以刺激基于可穿戴腾腾的能量收集技术的发展。 (c)2021 elestvier有限公司保留所有权利。

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