Symmetry-guided modal control in elliptical femtosecond-laser-written photonic waveguides
arXiv:2608.20124
Abstract
Few-mode photonic circuits can increase functionality without multiplying waveguide paths, but bends and fabrication errors can mix their transverse modes. We investigate a strategy in which waveguide confinement and perturbation parity are engineered together in vertically elliptical, femtosecond-laser-written glass waveguides. The intended modal basis comprises the even mode and the vertically odd mode. No window-converged state is resolved for a lower-confinement (LC) design, whereas a higher-confinement (HC) design guides , which must therefore be isolated by symmetry. In scalar beam-propagation calculations, the - propagation-constant splitting predicts the optimized periods of a vertically modulated coherent modal splitter to within . Horizontal S-bends remain parity-mismatched for coupling, while the symmetry-allowed HC transfer reaches only at the largest displacement. At a displacement of , the HC design retains approximately the same power as the LC design retains at . Thermal and stochastic writing-error calculations reveal the resulting trade-off: stronger confinement improves modal-power retention, but writing jitter that breaks -parity can populate the guided mode. These results demonstrate how modal-basis engineering can shift part of the crosstalk-control burden from the trajectory to waveguide symmetry, supporting joint path--mode degrees of freedom in quantum photonic applications.