High-performance triboelectric nanogenerator based on a double-spiral zigzag-origami structure for continuous sensing and signal transmission in marine environment

IF 24.5 Q1 CHEMISTRY, PHYSICAL
Yang Jiang, Pengfei Chen, Jiajia Han, Xi Liang, Yutong Ming, Shijie Liu, Tao Jiang, Zhong Lin Wang
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Abstract

With the rapid evolution of emerging technologies like artificial intelligence, Internet of Things, big data, robotics, and novel materials, the landscape of global ocean science and technology is undergoing significant transformation. Ocean wave energy stands out as one of the most promising clean and renewable energy sources. Triboelectric nanogenerators (TENGs) represent a cutting-edge technology for harnessing such random and ultra-low frequency energy toward blue energy. A high-performance TENG incorporating a double-spiral zigzag-origami structure is engineered to achieve continuous sensing and signal transmission in marine environment. Integrating the double-spiral origami into the TENG system enables efficient energy harvesting from the ocean waves by converting low-frequency wave vibrations into high-frequency motions. Under the water wave triggering of 0.8 Hz, the TENG generates a maximum peak power density of 55.4 W m3, and a TENG array with six units can generate an output current of 375.2 μA (density of 468.8 mA m3). This power-managed TENG array effectively powers a wireless water quality detector and transmits signals without an external power supply. The findings contribute to the development of sustainable and renewable energy technologies for oceanic applications and open new pathways for designing advanced materials and structures in the field of energy harvesting.

Abstract Image

基于双螺旋锯齿折纸结构的高性能摩擦电纳米发电机用于海洋环境中连续传感和信号传输
随着人工智能、物联网、大数据、机器人、新材料等新兴技术的快速发展,全球海洋科技格局正在发生重大变革。海浪能是最具发展前景的清洁可再生能源之一。摩擦电纳米发电机(TENGs)代表了利用这种随机和超低频率能量转化为蓝色能量的前沿技术。为实现海洋环境下的连续传感和信号传输,设计了一种具有双螺旋折纸结构的高性能TENG。将双螺旋折纸技术集成到TENG系统中,通过将低频波浪振动转化为高频运动,可以有效地从海浪中收集能量。在0.8 Hz的水波触发下,TENG阵列产生的最大峰值功率密度为55.4 W m−3,6个单元的TENG阵列输出电流为375.2 μA(密度为468.8 mA m−3)。这种电源管理的TENG阵列有效地为无线水质检测器供电,并在没有外部电源的情况下传输信号。这一发现有助于海洋应用的可持续和可再生能源技术的发展,并为设计能量收集领域的先进材料和结构开辟了新的途径。
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