Zhu Ruxian, Chen Leyi, Tang Shaolong
Opt Lett. 2024 Oct 1;49(19):5599-5602. doi: 10.1364/OL.537848.
Most of the plasmonic nanostructures utilized for magneto-optical (MO) enhancement have been limited to noble metals with resulting enhancement in the visible and infrared spectral range. Here, we designed a horizontal aluminum magneto-plasmonic metasurface, with the ability to control the Kerr rotation angle and enhance the RI sensing performance based on magneto-plasmons, by exploiting the polarization degree of freedom in the ultraviolet range. The surface composes of L-shaped magnetic dielectric embedded in the Al film. The reflection spectrum and the Kerr rotation angle map are both symmetric about the polarization angle of 45° and 135°. It is demonstrated that the sign change of the two maximal Kerr rotation angles at polarization angle of 0° and 90°, originates from the relative contribution of the two mutually orthogonal oscillating electric dipoles. In addition, the RI sensing FoM based on Kerr reversal at 372 nm of this structure reaches 5000/RIU, which is superior to the result in the visible or infrared range (1735/RIU). The results of our investigation demonstrate the potential of Al-based magneto-plasmonic effect and offer opportunities to push the MO spectral response out of the visible range into the ultraviolet range.
大多数用于磁光(MO)增强的等离子体纳米结构仅限于贵金属,从而在可见光和红外光谱范围内实现增强。在此,我们设计了一种水平铝磁等离子体超表面,通过利用紫外范围内的偏振自由度,能够控制克尔旋转角并基于磁等离子体增强折射率(RI)传感性能。该表面由嵌入铝膜中的L形磁性电介质组成。反射光谱和克尔旋转角图关于45°和135°的偏振角均对称。结果表明,在0°和90°偏振角处两个最大克尔旋转角的符号变化源于两个相互正交振荡电偶极子的相对贡献。此外,该结构在372 nm处基于克尔反转的RI传感品质因数达到5000/RIU,优于可见光或红外范围内的结果(1735/RIU)。我们的研究结果证明了基于铝的磁等离子体效应的潜力,并为将MO光谱响应从可见光范围扩展到紫外范围提供了机会。