Malla Rajesh K, Kort-Kamp Wilton J M
Theoretical Division, Los Alamos National Laboratory, MS B262, Los Alamos, NM, 87545, USA.
Center for Nonlinear Studies,Los Alamos National Laboratory, MS B258, Los Alamos, NM, 87545, USA.
Sci Rep. 2021 May 6;11(1):9734. doi: 10.1038/s41598-021-89219-y.
The graphene family materials are two-dimensional staggered monolayers with a gapped energy band structure due to intrinsic spin-orbit coupling. The mass gaps in these materials can be manipulated on-demand via biasing with a static electric field, an off-resonance circularly polarized laser, or an exchange interaction field, allowing the monolayer to be driven through a multitude of topological phase transitions. We investigate the dynamics of spin-orbit coupled graphene family materials to unveil topological phase transition fingerprints embedded in the nonlinear regime and show how these signatures manifest in the nonlinear Kerr effect and in third-harmonic generation processes. We show that the resonant nonlinear spectral response of topological fermions can be traced to specific Dirac cones in these materials, enabling characterization of topological invariants in any phase by detecting the cross-polarized component of the electromagnetic field. By shedding light on the unique processes involved in harmonic generation via topological phenomena our findings open an encouraging path towards the development of novel nonlinear systems based on two-dimensional semiconductors of the graphene family.
石墨烯家族材料是由于固有自旋轨道耦合而具有能隙能带结构的二维交错单层。这些材料中的质量能隙可以通过施加静电场、非共振圆偏振激光或交换相互作用场来按需调控,从而使单层能够经历多种拓扑相变。我们研究自旋轨道耦合石墨烯家族材料的动力学,以揭示嵌入非线性区域的拓扑相变指纹,并展示这些特征如何在非线性克尔效应和三次谐波产生过程中体现。我们表明,拓扑费米子的共振非线性光谱响应可以追溯到这些材料中的特定狄拉克锥,通过检测电磁场的交叉偏振分量能够表征任何相中的拓扑不变量。通过揭示拓扑现象中谐波产生所涉及的独特过程,我们的研究结果为基于石墨烯家族二维半导体的新型非线性系统的开发开辟了一条令人鼓舞的道路。