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Stationary Localized States Due to a Nonlinear Dimeric Impurity Embedded in a Perfect 1-D Chain

Disordered Systems and Neural Networks 2009-10-28 v1

Abstract

The formation of Stationary Localized states due to a nonlinear dimeric impurity embedded in a perfect 1-d chain is studied here using the appropriate Discrete Nonlinear Schro¨\ddot{o}dinger Equation. Furthermore, the nonlinearity has the form, χCσ\chi |C|^\sigma where CC is the complex amplitude. A proper ansatz for the Localized state is introduced in the appropriate Hamiltonian of the system to obtain the reduced effective Hamiltonian. The Hamiltonian contains a parameter, β=ϕ1/ϕ0\beta = \phi_1/\phi_0 which is the ratio of stationary amplitudes at impurity sites. Relevant equations for Localized states are obtained from the fixed point of the reduced dynamical system. β|\beta| = 1 is always a permissible solution. We also find solutions for which β1|\beta| \ne 1. Complete phase diagram in the (χ,σ)(\chi, \sigma) plane comprising of both cases is discussed. Several critical lines separating various regions are found. Maximum number of Localized states is found to be six. Furthermore, the phase diagram continuously extrapolates from one region to the other. The importance of our results in relation to solitonic solutions in a fully nonlinear system is discussed.

Keywords

Cite

@article{arxiv.cond-mat/9610150,
  title  = {Stationary Localized States Due to a Nonlinear Dimeric Impurity Embedded in a Perfect 1-D Chain},
  author = {B. C. Gupta and K. Kundu},
  journal= {arXiv preprint arXiv:cond-mat/9610150},
  year   = {2009}
}

Comments

Seven figures are available on request