A functional-derivative linear-response scheme is extended to time-dependent Hamiltonians and used to track bound-state and Bloch-oscillation relaxation in the mixed-field Ising model.
Observation of Domain Wall Confinement and Dynamics in a Quantum Simulator
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abstract
Confinement is a ubiquitous mechanism in nature, whereby particles feel an attractive force that increases without bound as they separate. A prominent example is color confinement in particle physics, in which baryons and mesons are produced by quark confinement. Analogously, confinement can also occur in low-energy quantum many-body systems when elementary excitations are confined into bound quasiparticles. Here, we report the first observation of magnetic domain wall confinement in interacting spin chains with a trapped-ion quantum simulator. By measuring how correlations spread, we show that confinement can dramatically suppress information propagation and thermalization in such many-body systems. We are able to quantitatively determine the excitation energy of domain wall bound states from non-equilibrium quench dynamics. Furthermore, we study the number of domain wall excitations created for different quench parameters, in a regime that is difficult to model with classical computers. This work demonstrates the capability of quantum simulators for investigating exotic high-energy physics phenomena, such as quark collision and string breaking.
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quant-ph 1years
2025 1verdicts
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Probing Bound State Relaxation Dynamics in Systems Out-of-Equilibrium on Quantum Computers
A functional-derivative linear-response scheme is extended to time-dependent Hamiltonians and used to track bound-state and Bloch-oscillation relaxation in the mixed-field Ising model.