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      Non-Markovian quantum friction of bright solitons in superfluids

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          Abstract

          We explore the quantum dynamics of a bright matter-wave soliton in a quasi-one-dimensional bosonic superfluid with attractive interactions. Specifically, we focus on the dissipative forces experienced by the soliton due to its interaction with Bogoliubov excitations. Using the collective coordinate approach and the Keldysh formalism, a Langevin equation of motion for the soliton is derived from the first principle. The equation contains a stochastic Langevin force (associated with quantum noise) and a non-local in time dissipative force, which appears due to inelastic scattering of Bogoliubov quasiparticles off of the moving soliton. It is shown that Ohmic friction (i.e., a term proportional to the soliton's velocity) is absent in the integrable setup. However, the Markovian approximation gives rise to the Abraham-Lorentz force (i.e., a term proportional to the derivative of the soliton's acceleration), which is known from classical electrodynamics of a charged particle interacting with its own radiation. These Abraham-Lorentz equations famously contain a fundamental causality paradox, where the soliton/particle interacts with excitations/radiation originating from future events. We show, however, that the causality paradox is an artifact of the Markovian approximation, and our exact non-Markovian dissipative equations give rise to physical trajectories. We argue that the quantum friction discussed here should be observable in current quantum gas experiments.

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          Quantum tunnelling in a dissipative system

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            Dynamics and Bloch oscillations of mobile impurities in one-dimensional quantum liquids

            We study dynamics of a mobile impurity moving in a one-dimensional quantum liquid. Such an impurity induces a strong non-linear depletion of the liquid around it. The dispersion relation of the combined object, called depleton, is a periodic function of its momentum with the period 2\pi n, where n is the mean density of the liquid. In the adiabatic approximation a constant external force acting on the impurity leads to the Bloch oscillations of the impurity around a fixed position. Dynamically such oscillations are accompanied by the radiation of energy in the form of phonons. The ensuing energy loss results in the uniform drift of the oscillation center. We derive exact results for the radiation-induced mobility as well as the thermal friction force in terms of the equilibrium dispersion relation of the dressed impurity (depleton). These results show that there is a wide range of external forces where the (drifted) Bloch oscillations exist and may be observed experimentally.
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              Exact form of the Bogoliubov excitations in one-dimensional nonlinear Schr\"{o}dinger equation

              In the paper we present the exact solutions of one-dimensional Nonlinear Schr\"{o}dinger Equation. The solutions correspond to the Bogoliubov excitations in Bose-gas with a local interaction. The obtained expression is used for evaluating the transmission coefficient of the excitations across a delta-functional potential barrier.
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                Author and article information

                Journal
                2015-12-23
                2016-05-04
                Article
                10.1103/PhysRevLett.116.225301
                1512.07640
                65c5e748-8f6b-4234-8b0a-d425e01f5c08

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                9 pages and 2 figures. Extended version accepted to Physical Review Letters
                cond-mat.quant-gas

                Quantum gases & Cold atoms
                Quantum gases & Cold atoms

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