Abstract

For one-dimensional (1d) nonlinear atomic lattices, the models with on-site nonlinearities such as the Frenkel-Kontorova (FK) and ϕ4 lattices have normal energy transport while the models with inter-site nonlinearities such as the Fermi-Pasta-Ulam-β (FPU-β) lattice exhibit anomalous energy transport. The 1d Discrete Nonlinear Schrödinger (DNLS) equations with on-site nonlinearities has been previously studied and normal energy transport has also been found. Here, we investigate the energy transport of 1d FPU-like DNLS equations with inter-site nonlinearities. Extended from the FPU-β lattice, the renormalized vibration theory is developed for the FPU-like DNLS models and the predicted renormalized vibrations are verified by direct numerical simulations same as the FPU-β lattice. However, the energy diffusion processes are explored and normal energy transport is observed for the 1d FPU-like DNLS models, which is different from their atomic lattice counterpart of FPU-β lattice. The reason might be that, unlike nonlinear atomic lattices where models with on-site nonlinearities have one less conserved quantities than the models with inter-site nonlinearities, the DNLS models with on-site or inter-site nonlinearities have the same number of conserved quantities as the result of gauge transformation.

Highlights

  • The discrete translational symmetry conserves total momentum in solid crystals without on-site potentials

  • The renormalized vibration theory valid for phonons will be developed for the 1d Discrete Nonlinear Schrödinger (DNLS) models and the existence of general renormalized vibrations will be verified by numerical simulations

  • It is found that the 1d FPU-like DNLS models exhibit normal energy transport, totally different from their atomic lattice counterparts such as the FPU-β lattice

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Summary

Introduction

The discrete translational symmetry conserves total momentum in solid crystals without on-site potentials. The 1d nonlinear atomic lattices with on-site nonlinearities such as the FK and φ4 lattices do not conserve total momentum and have normal energy transport[8,9,10,11,12]. The coupled rotator lattice has been viewed as an exception as all the other 1d nonlinear atomic lattices with momentum conservation exhibit anomalous energy transport[13,14,15,16,17,18,19,20,21,22,23]. It is found that the 1d FPU-like DNLS models exhibit normal energy transport, totally different from their atomic lattice counterparts such as the FPU-β lattice

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