Perfetto E, Stefanucci G
Dipartimento di Fisica, Università di Roma Tor Vergata, Via della Ricerca Scientifica 1, 00133 Rome, Italy.
INFN, Sezione di Roma Tor Vergata, Via della Ricerca Scientifica 1, 00133 Rome, Italy.
Phys Rev Lett. 2020 Sep 4;125(10):106401. doi: 10.1103/PhysRevLett.125.106401.
The nontrivial topology of p-wave superfluids makes these systems attractive candidates in information technology. In this work we report on the topological state of a p-wave nonequilibrium excitonic insulator (NEQ-EI) and show how to steer a nontopological band insulator with bright p excitons toward this state by a suitable laser pulse, thus achieving a dynamical topological phase transition. The underlying mechanism behind the transition is the broken gauge-symmetry of the NEQ-EI which causes self-sustained persistent oscillations of the excitonic condensate and hence a Floquet topological state for high enough exciton densities. We show the formation of Floquet Majorana modes at the boundaries of the open system and discuss unique topological spectral signatures for time-resolved ARPES experiments. We emphasize that the topological properties of a p-wave NEQ-EI arise exclusively from the electron-hole Coulomb interaction as the system is not driven by external fields.
p波超流体的非平凡拓扑结构使这些系统成为信息技术中有吸引力的候选者。在这项工作中,我们报告了p波非平衡激子绝缘体(NEQ-EI)的拓扑状态,并展示了如何通过合适的激光脉冲将具有明亮p激子的非拓扑带绝缘体引导至该状态,从而实现动态拓扑相变。该相变背后的潜在机制是NEQ-EI的规范对称性破缺,这导致激子凝聚体的自持持续振荡,进而在足够高的激子密度下形成弗洛凯拓扑状态。我们展示了开放系统边界处弗洛凯马约拉纳模式的形成,并讨论了时间分辨角分辨光电子能谱实验的独特拓扑光谱特征。我们强调,p波NEQ-EI的拓扑性质完全源于电子-空穴库仑相互作用,因为该系统不受外部场驱动。