论文标题
方向敏感的磁表面晶体
Direction-sensitive magnetophotonic surface crystal
论文作者
论文摘要
纳米薄的稀有地球金属(RE-TM)合金具有精确控制的组合物和平面外磁各向异性,目前是Ultrafast磁性应用的重点。然而,实现侧面纳米级尺寸,对于潜在的设备缩减至关重要,同时保持设计可设计的光磁功能和平面外磁各向异性非常具有挑战性。在这里,我们将纳米化的tb $ _ {18} $ co $ _ {82} $ ferrimagnetic合金(具有强大的平面磁各向异性)集成在金等离激元纳米annna阵列中,以设计微米尺度的磁态水晶,表现出磁性的磁性和狭窄的磁力范围,并且是磁性光谱的范围,并且是磁性磁力范围的。狭窄的FANO型共振是通过单个纳米ant的表面等离子体的干扰以及整个纳米ant虫阵列的瑞利异常的干扰,在光学和磁光谱中都引起,我们使用Maxwell主题模拟来证明和解释。这种坚固的磁晶晶体为在概念上的高分辨率光入射方向传感器以及在铁磁性RE-TM合金中的等离子辅助全光磁化开关的构建块开辟了道路。
Nanometer-thin rare-earth-transition metal (RE-TM) alloys with precisely controlled compositions and out-of-plane magnetic anisotropy are currently in the focus for ultrafast magnetophotonic applications. However, achieving lateral nanoscale dimensions, crucial for potential device downscaling, while maintaining designable optomagnetic functionality and out-of-plane magnetic anisotropy is extremely challenging. Here we integrate nanosized Tb$_{18}$Co$_{82}$ ferrimagnetic alloys, having strong out-of-plane magnetic anisotropy, within a gold plasmonic nanoantenna array to design micrometer-scale a magnetophotonic crystal that exhibit abrupt and narrow magneto-optical spectral features that are both magnetic field and light incidence direction controlled. The narrow Fano-type resonance arises through the interference of the individual nanoantenna's surface plasmons and a Rayleigh anomaly of the whole nanoantenna array, in both optical and magneto-optical spectra, which we demonstrate and explain using Maxwell-theory simulations. This robust magnetophotonic crystal opens the way for conceptually new high-resolution light incidence direction sensors, as well as for building blocks for plasmon-assisted all-optical magnetization switching in ferrimagnetic RE-TM alloys.