Marini Andrea, Longhi Stefano, Biancalana Fabio
Max Planck Institute for the Science of Light, Guenther-Scharowsky-Straße 1, 91058 Erlangen, Germany.
Dipartimento di Fisica, Politecnico di Milano, and IFN-CNR, Piazza Leonardo da Vinci 32, I-20133 Milano, Italy.
Phys Rev Lett. 2014 Oct 10;113(15):150401. doi: 10.1103/PhysRevLett.113.150401. Epub 2014 Oct 7.
We theoretically propose and investigate an optical analogue of neutrino oscillations in a pair of vertically displaced binary waveguide arrays with longitudinally modulated effective refractive index. Optical propagation is modeled through coupled-mode equations, which in the continuous limit converge to two coupled Dirac equations for fermionic particles with different mass states, analogously to neutrinos. In addition to simulating neutrino oscillation in the noninteracting regime, our optical setting enables us to explore neutrino interactions in extreme regimes that are expected to play an important role in massive supernova stars. In particular, we predict the quenching of neutrino oscillations and the existence of topological defects, i.e., neutrino solitons, which in our photonic simulator should be observable as excitation of optical gap solitons propagating along the binary arrays at high excitation intensities.
我们从理论上提出并研究了在一对纵向调制有效折射率的垂直位移二元波导阵列中中微子振荡的光学模拟。光传播通过耦合模方程进行建模,在连续极限下,该方程收敛为两个针对具有不同质量态的费米子粒子的耦合狄拉克方程,类似于中微子。除了在非相互作用 regime 中模拟中微子振荡外,我们的光学设置还使我们能够探索在预期对大质量超新星起重要作用的极端 regime 中的中微子相互作用。特别是,我们预测了中微子振荡的猝灭和拓扑缺陷(即中微子孤子)的存在,在我们的光子模拟器中,这些应该可以作为在高激发强度下沿二元阵列传播的光学带隙孤子的激发而被观测到。