2012/05/15 by Yoshimasa Matsuno · 2 citations
Physics and Astronomy · #Derivative (finance) #Nonlinear Photonic Systems #Nonlinear Waves and Solitons #Nonlinear system #Phase (matter) #Quantum Mechanics and Non-Hermitian Physics #Scattering #Soliton #Time derivative #nlin.SI
paper · pdf · doi:10.1088/1751-8113/45/47/475202
To appear in J. Phys. A: Math. Theor. 45(2012) May
arxiv created 2012/05/15 · openalex publication_date 2012/11/05 · arxiv updated 2015/06/05 · openalex created_date 2019/06/27 · openalex updated_date 2026/08/05
In a previous study (Matsuno Y 2012 J. Phys. A: Math. Theor. 45 23202), we have developed a systematic method for obtaining the bright soliton solutions of the Fokas–Lenells derivative nonlinear Schrödinger equation (in short, FL equation) under a vanishing boundary condition. In this paper, we apply the method to the FL equation with a nonvanishing boundary condition. In particular, we deal with a more sophisticated problem on the dark soliton solutions with a plane wave boundary condition. We first derive the novel system of bilinear equations which is reduced from the FL equation through a dependent variable transformation and then construct the general dark N -soliton solution of the system, where N is an arbitrary positive integer. In the process, a trilinear equation derived from the system of bilinear equations plays an important role. As a byproduct, this equation gives the dark N -soliton solution of the derivative nonlinear Schrödinger equation on the background of a plane wave. We then investigate the properties of the one-soliton solutions in detail, showing that both the dark and the bright solitons appear on the nonzero background which reduce to algebraic solitons in specific limits. Last, we perform the asymptotic analysis of the two- and N -soliton solutions for large time and clarify their structure and dynamics.