Yu Renwen, Konečná Andrea, de Abajo F Javier García
ICFO-Institut de Ciencies Fotoniques, The Barcelona Institute of Science and Technology, 08860 Castelldefels (Barcelona), Spain.
ICREA-Institució Catalana de Recerca i Estudis Avançats, Passeig Lluís Companys 23, 08010 Barcelona, Spain.
Phys Rev Lett. 2021 Oct 8;127(15):157404. doi: 10.1103/PhysRevLett.127.157404.
Probing optical excitations with high resolution is important for understanding their dynamics and controlling their interaction with other photonic elements. This can be done using state-of-the-art electron microscopes, which provide the means to sample optical excitations with combined meV-sub-nm energy-space resolution. For reciprocal photonic systems, electrons traveling in opposite directions produce identical signals, while this symmetry is broken in nonreciprocal structures. Here, we theoretically investigate this phenomenon by analyzing electron energy-loss spectroscopy (EELS) and cathodoluminescence (CL) for structures consisting of magnetically biased InAs as an instance of gyrotropic nonreciprocal material. We find that the spectral features associated with excitations of InAs films depend on the electron propagation direction in both EELS and CL, and can be tuned by varying the applied magnetic field within a relatively modest subtesla regime. The magnetic field modifies the optical field distribution of the sampled resonances, and this in turn produces a direction-dependent coupling to the electron. The present results pave the way to the use of electron microscope spectroscopies to explore the near-field characteristics of nonreciprocal systems with high spatial resolution.
以高分辨率探测光学激发对于理解其动力学以及控制其与其他光子元件的相互作用至关重要。这可以通过使用最先进的电子显微镜来实现,这些显微镜提供了以毫电子伏特 - 亚纳米能量 - 空间分辨率组合对光学激发进行采样的手段。对于互易光子系统,沿相反方向传播的电子产生相同的信号,而在非互易结构中这种对称性被打破。在此,我们通过分析由磁偏置的砷化铟组成的结构的电子能量损失谱(EELS)和阴极发光(CL),从理论上研究这种现象,砷化铟作为旋光性非互易材料的一个实例。我们发现,在EELS和CL中,与砷化铟薄膜激发相关的光谱特征取决于电子传播方向,并且可以通过在相对适度的亚特斯拉范围内改变施加的磁场来调节。磁场改变了采样共振的光场分布,进而产生与电子的方向相关耦合。目前的结果为利用电子显微镜光谱学以高空间分辨率探索非互易系统的近场特性铺平了道路。