Vivekananthan Venkateswaran, Chandrasekhar Arunkumar, Alluri Nagamalleswara Rao, Purusothaman Yuvasree, Kim Sang-Jae
Nanomaterials and Systems Laboratory, Major of Mechatronics Engineering, Faculty of Applied Energy System, Jeju National University Jeju Republic of Korea
Nanosensors and Nanoenergy Lab, Department of Sensors and Biomedical Technology, School of Electronics Engineering, Vellore Institute of Technology Vellore India
Nanoscale Adv. 2020 Jan 9;2(2):746-754. doi: 10.1039/c9na00790c. eCollection 2020 Feb 18.
The triboelectric effect is one of the most trending effects in energy harvesting technologies, which use one of the most common effects in daily life. Herein, an impervious silicone elastomer-based triboelectric nanogenerator (SE-TENG) is reported with a micro roughness-created silicone elastomer film and Ni foam as triboelectric layers with opposite surface charges. The surface roughness modification process was performed a cost-effective soft lithography technique using sandpaper. The replicated film was then used as the negative triboelectric layer and porous Ni foam was used as the positive triboelectric layer. The device exhibited the advantage of high stability due to the porous nature of the Ni foam, which could not damage the roughness pattern of the elastomer film. The device generated a maximum electrical output of ∼370 V/6.1 μA with a maximum area power density of ∼17 mW m at a load resistance of 1 GΩ. Furthermore, the SE-TENG device was packed using polyethylene to protect it from humidity and made to be a water-resistant SE-TENG (WR-SE-TENG). The device was stable under different percentages of relative humidity, showing a uniform electrical output in the range of 10% RH to 99% RH. This proves that the packing is highly resistant against moisture and humidity. The device was also used for demonstrating its capability in powering small electronic components such as charging commercial capacitors, glowing LEDs and powering wrist watches. Further, the WR-SE-TENG device was used to scavenge bio-mechanical energy from human motions and also used for a real-time application of zero power consuming/self-powered pressure sensors. As an active sensor, the device showed linear sensing behavior and a sensitivity of 0.492 μA kPa.
摩擦电效应是能量收集技术中最具发展趋势的效应之一,它利用了日常生活中最常见的效应。在此,报道了一种基于不可渗透硅橡胶的摩擦纳米发电机(SE-TENG),其具有通过微粗糙度制造的硅橡胶薄膜和泡沫镍作为具有相反表面电荷的摩擦电层。表面粗糙度改性过程采用砂纸通过具有成本效益的软光刻技术进行。复制的薄膜用作负摩擦电层,多孔泡沫镍用作正摩擦电层。由于泡沫镍的多孔性质,该器件表现出高稳定性的优点,不会破坏弹性体薄膜的粗糙度图案。该器件在1 GΩ的负载电阻下产生的最大电输出约为370 V/6.1 μA,最大面积功率密度约为17 mW/m²。此外,SE-TENG器件用聚乙烯包装以保护其免受湿度影响,并制成防水的SE-TENG(WR-SE-TENG)。该器件在不同相对湿度百分比下稳定,在10% RH至99% RH范围内显示出均匀的电输出。这证明该包装具有高度防潮性。该器件还用于展示其为小型电子元件供电的能力,如为商用电容器充电、点亮发光二极管和为手表供电。此外,WR-SE-TENG器件用于从人体运动中收集生物机械能,还用于零功耗/自供电压力传感器的实时应用。作为有源传感器,该器件表现出线性传感行为,灵敏度为0.492 μA/kPa。