School of Materials Science & Engineering, Yeungnam University, Gyeongsan, 38541, Republic of Korea.
Electronic Materials Research Center, Korea Institute of Science and Technology (KIST), Seoul, 02792, Republic of Korea.
Adv Sci (Weinh). 2023 Jun;10(17):e2207722. doi: 10.1002/advs.202207722. Epub 2023 Apr 19.
The energy crisis and global shift toward sustainability drive the need for sustainable technologies that utilize often-wasted forms of energy. A multipurpose lighting device with a simplistic design that does not need electricity sources or conversions can be one such futuristic device. This study investigates the novel concept of a powerless lighting device driven by stray magnetic fields induced by power infrastructure for obstruction warning light systems. The device consists of mechanoluminescence (ML) composites of a Kirigami-shaped polydimethylsiloxane (PDMS) elastomer, ZnS:Cu particles, and a magneto-mechano-vibration (MMV) cantilever beam. Finite element analysis and luminescence characterization of the Kirigami structured ML composites are discussed, including the stress-strain distribution map and comparisons between different Kirigami structures based on stretchability and ML characteristic trade-offs. By coupling a Kirigami-structured ML material and an MMV cantilever structure, a device that can generate visible light as luminescence from a magnetic field can be created. Significant factors that contribute to luminescence generation and intensity are identified and optimized. Furthermore, the feasibility of the device is demonstrated by placing it in a practical environment. This further proves the functionality of the device in harvesting weak magnetic fields into luminescence or light, without complicated electrical energy conversion steps.
能源危机和全球向可持续性转变推动了对可持续技术的需求,这些技术利用通常被浪费的能源形式。一种具有简单设计、不需要电源或转换的多用途照明设备可以成为这样一种未来设备。本研究调查了一种新颖的概念,即一种由电力基础设施感应的杂散磁场驱动的无功率照明设备,用于障碍物警告灯系统。该设备由剪纸形状的聚二甲基硅氧烷(PDMS)弹性体、ZnS:Cu 颗粒和磁机电振动(MMV)悬臂梁组成的力学发光(ML)复合材料组成。讨论了剪纸结构 ML 复合材料的有限元分析和发光特性,包括应力-应变分布图以及基于拉伸性和 ML 特性权衡的不同剪纸结构之间的比较。通过耦合剪纸结构 ML 材料和 MMV 悬臂结构,可以创建一种可以从磁场产生可见光的发光器件。确定并优化了对发光产生和强度有重大贡献的因素。此外,通过将该设备放置在实际环境中,证明了该设备的可行性。这进一步证明了该设备在将弱磁场收集到发光或光中,而无需复杂的电能转换步骤的功能。