†Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, Beijing 100083, China.
‡School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332-0245, United States.
ACS Nano. 2015;9(4):3521-9. doi: 10.1021/nn507455f. Epub 2015 Feb 18.
We report a hybridized electromagnetic-triboelectric nanogenerator for highly efficient scavenging of biomechanical energy to sustainably power wearable electronics by human walking. Based on the effective conjunction of triboelectrification and electromagnetic induction, the hybridized nanogenerator, with dimensions of 5 cm × 5 cm × 2.5 cm and a light weight of 60 g, integrates a triboelectric nanogenerator (TENG) that can deliver a peak output power of 4.9 mW under a loading resistance of 6 MΩ and an electromagnetic generator (EMG) that can deliver a peak output power of 3.5 mW under a loading resistance of 2 kΩ. The hybridized nanogenerator exhibits a good stability for the output performance and a much better charging performance than that of an individual energy-harvesting unit (TENG or EMG). Furthermore, the hybridized nanogenerator integrated in a commercial shoe has been utilized to harvest biomechanical energy induced by human walking to directly light up tens of light-emitting diodes in the shoe and sustainably power a smart pedometer for reading the data of a walking step, distance, and energy consumption. A wireless pedometer driven by the hybrid nanogenerator can work well to send the walking data to an iPhone under the distance of 25 m. This work pushes forward a significant step toward energy harvesting from human walking and its potential applications in sustainably powering wearable electronics.
我们报告了一种混合电磁-摩擦电纳米发电机,可高效地收集生物力学能量,为可穿戴电子产品提供可持续的动力,这些电子产品可通过人类行走来驱动。基于摩擦发电和电磁感应的有效结合,这种混合纳米发电机的尺寸为 5 cm×5 cm×2.5 cm,重量仅为 60 g,集成了一个可在 6 MΩ负载电阻下提供 4.9 mW 峰值输出功率的摩擦电纳米发电机(TENG),以及一个可在 2 kΩ负载电阻下提供 3.5 mW 峰值输出功率的电磁发电机(EMG)。混合纳米发电机在输出性能方面表现出良好的稳定性,其充电性能也明显优于单个能量收集单元(TENG 或 EMG)。此外,集成在商业鞋子中的混合纳米发电机已被用于收集由人类行走引起的生物力学能量,以直接点亮鞋子中的数十个发光二极管,并为一个智能计步器持续供电,以读取步数、距离和能耗数据。由混合纳米发电机驱动的无线计步器在 25 m 的距离内可以很好地将行走数据发送到 iPhone 上。这项工作在从人类行走中收集能量及其在可持续为可穿戴电子产品供电方面的潜在应用方面迈出了重要的一步。