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Quantum Soliton Evaporation

We have very little experience of the quantum dynamics of the ubiquitous nonlinear waves. Observed phenomena in high energy physics are perturbations to linear waves, and classical nonlinear waves, like solitons, are barely affected by quantum effects. We know that solitons, immutable in classical physics, exhibit collapse and revivals according to quantum mechanics. However this effect is very weak and has never been observed experimentally. By predicting black hole evaporation Hawking first introduced a distinctly quantum effect in nonlinear gravitational physics.Here we show the existence of a general and universal quantum process whereby a soliton emits quantum radiation with a specific frequency content, and a temperature given by the number of quanta, the soliton Schwarzschild radius, and the amount of nonlinearity, in a precise and surprisingly simple way. This result may ultimately lead to the first experimental evidence of genuine quantum black hole evaporation. In addition, our results show that black hole radiation occurs in a fully quantised theory, at variance with the common approach based on quantum field theory in a curved background; this may provide insights into

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Co-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipRelated contextAuthorshipAuthorshipAuthorshipAuthorshipTopic signalTopic signalTopic signalTopic signalTopic signalRelated contextRelated contextWQuantum Soliton Evaporationpreprint / 2016ALeone Di Mauro VillariResearcherAEwan M. WrightResearcherAFabio BiancalanaResearcherAClaudio ContiResearcherTquant-ph17817 worksTphysics.optics7109 worksTphysics.atom-ph2399 worksTcond-mat.quant-gas2617 worksTnlin.PS1025 works
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Quantum Soliton Evaporation

preprint / 2016

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