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光控磁特性:通过液晶网络对磁性薄膜进行节能型光机械控制

Light-Controlled Magnetic Properties: An Energy-Efficient Opto-Mechanical Control over Magnetic Films by Liquid Crystalline Networks.

作者信息

Barrera Gabriele, Martella Daniele, Celegato Federica, Fuochi Neri, Coïsson Marco, Parmeggiani Camilla, Wiersma Diederik S, Tiberto Paola

机构信息

Istituto Nazionale di Ricerca Metrologica (INRiM), Strada delle Cacce 91, Torino, 10135, Italy.

European Laboratory for Non Linear Spectroscopy (LENS), Via N. Carrara 1, Sesto Fiorentino, Firenze, 50019, Italy.

出版信息

Adv Sci (Weinh). 2024 Dec;11(47):e2408273. doi: 10.1002/advs.202408273. Epub 2024 Oct 7.

Abstract

Magnetostrictive materials are essential components in sensors, actuators, and energy-storage devices due to their ability to convert mechanical stress into changes in magnetic properties and vice-versa. However, their operation typically requires physical contact to apply stress or relies on magnetic field sources to control magnetic properties. This poses significant limitations to devices miniaturization and their integration into contactless technologies. This work reports on an approach that overcomes these limitations by using light to transfer mechanical stress to a magnetostrictive device, thereby achieving non-contact and reversible opto-mechanical control of its magnetic and electrical properties. The proposed solution combines a magnetostrictive FeGa thin film with a photo-responsive Liquid Crystalline Network (LCN). Magnetic properties are modulated by changing the light wavelength and illumination time. Remarkably, the stable shape change of the LCN induced by ultraviolet (UV) light leads to the retention of magnetic properties even after the light is switched off, resulting in a magnetic memory effect with an energy consumption advantage over the use of conventional magnetic field applicators. The memory effect is erased by visible light, which releases the mechanical stress in the photoresponsive layer. Therefore, this new composite material creates a fully reconfigurable magnetic system controlled by light.

摘要

磁致伸缩材料是传感器、致动器和能量存储设备中的关键部件,因为它们能够将机械应力转化为磁性能的变化,反之亦然。然而,它们的运行通常需要物理接触来施加应力,或者依赖磁场源来控制磁性能。这对设备小型化及其集成到非接触技术中构成了重大限制。这项工作报道了一种方法,该方法通过利用光将机械应力传递到磁致伸缩器件来克服这些限制,从而实现对其磁性能和电性能的非接触和可逆光机械控制。所提出的解决方案将磁致伸缩FeGa薄膜与光响应液晶网络(LCN)相结合。通过改变光波长和光照时间来调制磁性能。值得注意的是,紫外(UV)光诱导的LCN的稳定形状变化导致即使在光关闭后磁性能仍能保留,从而产生一种磁记忆效应,与使用传统磁场施加器相比具有能耗优势。通过可见光消除记忆效应,可见光释放光响应层中的机械应力。因此,这种新型复合材料创建了一个由光控制的完全可重构磁系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/447b/11653635/d2c76c69b35f/ADVS-11-2408273-g003.jpg

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