School of Materials Science and Engineering, Georgia Institute of Technology , Atlanta, Georgia 30332, United States.
ACS Nano. 2014 Oct 28;8(10):10674-81. doi: 10.1021/nn504243j. Epub 2014 Sep 30.
In the past years, scientists have shown that development of a power suit is no longer a dream by integrating the piezoelectric nanogenerator (PENG) or triboelectric nanogenerator (TENG) with commercial carbon fiber cloth. However, there is still no design applying those two kinds of NG together to collect the mechanical energy more efficiently. In this paper, we demonstrate a fiber-based hybrid nanogenerator (FBHNG) composed of TENG and PENG to collect the mechanical energy in the environment. The FBHNG is three-dimensional and can harvest the energy from all directions. The TENG is positioned in the core and covered with PENG as a coaxial core/shell structure. The PENG design here not only enhances the collection efficiency of mechanical energy by a single carbon fiber but also generates electric output when the TENG is not working. We also show the potential that the FBHNG can be weaved into a smart cloth to harvest the mechanical energy from human motions and act as a self-powered strain sensor. The instantaneous output power density of TENG and PENG can achieve 42.6 and 10.2 mW/m(2), respectively. And the rectified output of FBHNG has been applied to charge the commercial capacitor and drive light-emitting diodes, which are also designed as a self-powered alert system.
在过去的几年中,科学家们通过将压电纳米发电机(PENG)或摩擦纳米发电机(TENG)与商业碳纤维布集成,已经证明了动力服的开发不再是一个梦想。然而,仍然没有设计将这两种纳米发电机结合起来以更有效地收集机械能。在本文中,我们展示了一种由 TENG 和 PENG 组成的纤维基混合纳米发电机(FBHNG),用于收集环境中的机械能。FBHNG 是三维的,可以从各个方向收集能量。TENG 位于核心位置,并用 PENG 作为同轴的核/壳结构覆盖。这里的 PENG 设计不仅通过单个碳纤维增强了机械能的收集效率,而且在 TENG 不工作时也能产生电输出。我们还展示了 FBHNG 可以编织成智能织物以从人体运动中收集机械能并用作自供电应变传感器的潜力。TENG 和 PENG 的瞬时输出功率密度分别达到 42.6 和 10.2 mW/m²。并且 FBHNG 的整流输出已被应用于为商用电容器充电并驱动发光二极管,这些发光二极管也被设计为自供电报警系统。