Aamir Jan Agha, Kim Seungbeom, Kim Seok
Department of Mechanical Engineering, Pohang University of Science and Technology (POSTECH), Republic of Korea.
Soft Matter. 2024 Aug 22;20(33):6558-6567. doi: 10.1039/d4sm00500g.
The practical application of a triboelectric nanogenerator (TENG) as a self-powered sensor and an energy harvester is constrained by the need for a wide sensitivity range, significant output power, and structural flexibility. However, most research has focused on physical and chemical surface modifications of the charge-generating layer to enhance the TENG performance. Improving the charge storage ability could otherwise further enhance the overall performance. Here, we propose a flexible TENG design that incorporates a micro-dome array Ecoflex as the tribo-negative layer, coupled with a dielectric enhancement layer composed of a carbon black/Ecoflex composite. The addition of the CB/Eco composite layer to the micro-dome array triboelectric layer enhanced the output voltage performance by forming numerous micro capacitors within the dielectric layer. Furthermore, oxygen-containing fluorocarbon plasma treatment of the micro-dome array increased the surface energy, enhancing the interaction between the triboelectric layers. This leads to an enhancement in the output voltage and energy efficiency, exhibiting a power density of 197.4 mW m. The pressure sensitivity of the TENG was systematically investigated, demonstrating 2.57 V kPa in the low-pressure range (0.612 to 8.58 kPa) and 1.70 V kPa in the high-pressure range (8.58 to 20.83 kPa). Additionally, the encapsulated TENG sensor with spacers was integrated into insoles for self-powered gait analysis, providing real-time insights into walking patterns and frequencies. Exploring the TENG's energy harvesting capability revealed a peak-peak voltage of 89.4 V when two TENGs are connected in series. The comprehensive performance characterization of the TENG demonstrates its promising applications in wearable, self-powered sensing, and energy harvesting systems.
摩擦纳米发电机(TENG)作为自供电传感器和能量收集器的实际应用受到宽灵敏度范围、高输出功率和结构灵活性需求的限制。然而,大多数研究都集中在对电荷产生层进行物理和化学表面改性以提高TENG性能。否则,提高电荷存储能力可以进一步提升整体性能。在此,我们提出一种灵活的TENG设计,该设计采用微穹顶阵列Ecoflex作为摩擦负极层,并结合由炭黑/Ecoflex复合材料组成的介电增强层。在微穹顶阵列摩擦电层中添加CB/Eco复合层,通过在介电层内形成大量微电容器,提高了输出电压性能。此外,对微穹顶阵列进行含氟碳氧等离子体处理增加了表面能,增强了摩擦电层之间的相互作用。这导致输出电压和能量效率提高,功率密度达到197.4 mW/m²。系统研究了TENG的压力灵敏度,在低压范围(0.612至8.58 kPa)为2.57 V/kPa,在高压范围(8.58至20.83 kPa)为1.70 V/kPa。此外,带有间隔物的封装TENG传感器被集成到鞋垫中用于自供电步态分析,可实时洞察行走模式和频率。对TENG能量收集能力的探索表明,两个TENG串联连接时的峰峰值电压为89.4 V。TENG的综合性能表征证明了其在可穿戴、自供电传感和能量收集系统中的广阔应用前景。