Chandrasekhar Arunkumar, Alluri Nagamalleswara Rao, Saravanakumar Balasubramaniam, Selvarajan Sophia, Kim Sang-Jae
Nanomaterials and System Lab, Department of Mechatronics Engineering, Jeju National University , Jeju 690-756, Republic of Korea.
Faculty of Applied Energy System, Department of Mechanical Engineering, Jeju National University , Jeju 690-756, Republic of Korea.
ACS Appl Mater Interfaces. 2016 Apr 20;8(15):9692-9. doi: 10.1021/acsami.6b00548. Epub 2016 Apr 11.
A lightweight, flexible, cost-effective, and robust, single-electrode-based Smart Seat-Triboelectric Nanogenerator (SS-TENG) is introduced as a promising eco-friendly approach for harvesting energy from the living environment, for use in integrated self-powered systems. An effective method for harvesting biomechanical energy from human motion such as walking, running, and sitting, utilizing widely adaptable everyday contact materials (newspaper, denim, polyethylene covers, and bus cards) is demonstrated. The working mechanism of the SS-TENG is based on the generation and transfer of triboelectric charge carriers between the active layer and user-friendly contact materials. The performance of SS-TENG (52 V and 5.2 μA for a multiunit SS-TENG) is systematically studied and demonstrated in a range of applications including a self-powered passenger seat number indicator and a STOP-indicator using LEDs, using a simple logical circuit. Harvested energy is used as a direct power source to drive 60 blue and green commercially available LEDs and a monochrome LCD. This feasibility study confirms that triboelectric nanogenerators are a suitable technology for energy harvesting from human motion during transportation, which could be used to operate a variety of wireless devices, GPS systems, electronic devices, and other sensors during travel.
一种基于单电极的轻便、灵活、经济高效且坚固的智能座椅摩擦纳米发电机(SS-TENG)被引入,作为一种从生活环境中收集能量的有前景的环保方法,用于集成自供电系统。展示了一种利用广泛适用的日常接触材料(报纸、牛仔布、聚乙烯覆盖物和公交卡)从人类运动(如行走、跑步和坐下)中收集生物机械能的有效方法。SS-TENG的工作机制基于摩擦电荷载流子在活性层和用户友好型接触材料之间的产生和转移。通过一个简单的逻辑电路,系统地研究并展示了SS-TENG在一系列应用中的性能(多单元SS-TENG为52 V和5.2 μA),包括自供电乘客座位号指示器和使用发光二极管的停车指示器。收集到的能量被用作直接电源来驱动60个市售的蓝色和绿色发光二极管以及一个单色液晶显示器。这项可行性研究证实,摩擦纳米发电机是一种适用于在交通运输过程中从人类运动中收集能量的技术,可用于在旅行期间操作各种无线设备、全球定位系统、电子设备和其他传感器。