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Energy localization in interacting atomic chains with topological solitons

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arxiv 1910.02135 v1 pith:VQWWZXPF submitted 2019-10-04 quant-ph physics.atom-ph

Energy localization in interacting atomic chains with topological solitons

classification quant-ph physics.atom-ph
keywords energytopologicallocalizationenhancedlocalnon-linearaccessibleatomic
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Topological defects in low-dimensional non-linear systems feature a sliding-to-pinning transition of relevance for a variety of research fields, ranging from biophysics to nano- and solid-state physics. We find that the dynamics after a local excitation results in a highly-non-trivial energy transport in the presence of a topological soliton, characterized by a strongly enhanced energy localization in the pinning regime. Moreover, we show that the energy flux in ion crystals with a topological defect can be sensitively regulated by experimentally accessible environmental parameters. Whereas, third-order non-linear resonances can cause an enhanced long-time energy delocalization, robust energy localization persists for distinct parameter ranges even for long evolution times and large local excitations.

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