Title :
Asymmetric Evolution of Interacting Solitons in Parity Time Symmetric Cells
Author :
Nazari, Fakhroddin ; Nazari, M. ; Moravvej-Farshi, Mohammad Kazem ; Ramezani, Hamid
Author_Institution :
Dept. of Electr. & Comput. Eng., Tarbiat Modares Univ., Tehran, Iran
Abstract :
We show the evolution of two fundamental bright solitons after being simultaneously launched into nonlinear triangular parity time (PT) symmetric waveguides, at mirrored transverse input positions. Numerical simulations show, whether below or above the phase transition, in general the retarded soliton propagating along the gain side and the advanced soliton evolving along the loss side of either waveguide interfere incoherently, within the interacting regime. In non-interacting regime, however, each soliton evolves as it has been launched individually. When beyond the phase transition, the unstable solitons become self-trapped after traversing relatively short distances. The incoherent interference alters the projectile of each soliton from that of the one launched individually at the same initial input position. The temporal dynamics of interacting solitons along PT symmetric waveguide, due to the interplay of nonlinearity and the active elements, are not periodic. This is in contrast to the interaction dynamics along the purely index guided cell. The results suggest that appropriately designed nonlinear PT symmetric waveguides, below or above the phase transition, can play the role of key elements in design and fabrication of optical gates, isolators, and switches.
Keywords :
light interference; light propagation; numerical analysis; optical losses; optical solitons; optical waveguides; active elements; asymmetric evolution; fundamental bright solitons; incoherent interference; interacting solitons; interaction dynamics; mirrored transverse input positions; noninteracting regime; nonlinear PT symmetric waveguides; nonlinear triangular parity time symmetric waveguides; numerical simulations; optical gates; optical isolators; optical switches; parity time symmetric cells; phase transition; projectile; purely index guided cell; retarded soliton propagation; self-trapping; temporal dynamics; unstable solitons; Indexes; Nonlinear optics; Optical imaging; Optical solitons; Optical waveguides; Waveguide transitions; Kerr effect; Parity time symmetry; nonlinear Schrodinger equation; self-phase modulation; spatial solitons; split step Fourier method;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2013.2281824