Shin Jaehee, Ji Sungho, Cho Hanchul, Park Jinhyoung
Department of Mechatronics Engineering, Korea University of Technology & Education, 600, Chungjeol-ro, Byeongcheon-myeon, Dongnam-gu, Chungcheongnam-do, Cheonan-si 31253, Republic of Korea.
Precision Mechanical Process and Control R&D Group, Korea Institute of Industrial Technology (KITECH), 42-7, Baegyang-daero 804 beon-gil, Sasang-gu, Busan 46938, Republic of Korea.
Polymers (Basel). 2023 Feb 24;15(5):1135. doi: 10.3390/polym15051135.
The rapid development of portable and wearable electronic devices has led researchers to actively study triboelectric nanogenerators (TENGs) that can provide self-powering capabilities. In this study, we propose a highly flexible and stretchable sponge-type TENG, named flexible conductive sponge triboelectric nanogenerator (FCS-TENG), which consists of a porous structure manufactured by inserting carbon nanotubes (CNTs) into silicon rubber using sugar particles. Nanocomposite fabrication processes, such as template-directed CVD and ice freeze casting methods for fabricating porous structures, are very complex and costly. However, the nanocomposite manufacturing process of flexible conductive sponge triboelectric nanogenerators is simple and inexpensive. In the tribo-negative CNT/silicone rubber nanocomposite, the CNTs act as electrodes, increasing the contact area between the two triboelectric materials, increasing the charge density, and improving charge transfer between the two phases. Measurements of the performance of flexible conductive sponge triboelectric nanogenerators using an oscilloscope and a linear motor, under a driving force of 2-7 N, show that it generates an output voltage of up to 1120 V and a current of 25.6 µA. In addition, by using different weight percentages of carbon nanotubes (CNTs), it is shown that the output power increases with the weight percentage of carbon nanotubes (CNTs). The flexible conductive sponge triboelectric nanogenerator not only exhibits good performance and mechanical robustness but can also be directly used in light-emitting diodes connected in series. Furthermore, its output remains extremely stable even after 1000 bending cycles in an ambient environment. In sum, the results demonstrate that flexible conductive sponge triboelectric nanogenerators can effectively power small electronics and contribute to large-scale energy harvesting.
便携式和可穿戴电子设备的迅速发展促使研究人员积极研究能够提供自供电能力的摩擦电纳米发电机(TENGs)。在本研究中,我们提出了一种高度灵活且可拉伸的海绵型TENG,名为柔性导电海绵摩擦电纳米发电机(FCS-TENG),它由通过使用糖颗粒将碳纳米管(CNTs)插入硅橡胶制成的多孔结构组成。用于制造多孔结构的纳米复合材料制造工艺,如模板导向化学气相沉积法和冰冷冻铸造法,非常复杂且成本高昂。然而,柔性导电海绵摩擦电纳米发电机的纳米复合材料制造工艺简单且成本低廉。在摩擦负极性的CNT/硅橡胶纳米复合材料中,CNTs充当电极,增加了两种摩擦电材料之间的接触面积,提高了电荷密度,并改善了两相之间的电荷转移。使用示波器和线性电机对柔性导电海绵摩擦电纳米发电机在2 - 7 N驱动力下的性能进行测量,结果表明它能产生高达1120 V的输出电压和25.6 µA的电流。此外,通过使用不同重量百分比的碳纳米管(CNTs),结果表明输出功率随碳纳米管(CNTs)的重量百分比增加。柔性导电海绵摩擦电纳米发电机不仅表现出良好的性能和机械鲁棒性,还可直接用于串联连接的发光二极管。此外,即使在环境中经过1000次弯曲循环后,其输出仍保持极其稳定。总之,结果表明柔性导电海绵摩擦电纳米发电机能够有效地为小型电子设备供电,并有助于大规模能量收集。