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Controlling energy storage crossing quantum phase transitions in an integrable spin quantum battery

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arxiv 2402.09169 v2 pith:HNIJ5P5P submitted 2024-02-14 quant-ph cond-mat.mes-hall

classification quant-phcond-mat.mes-hall
keywords quantumchargingenergyphaseregimetimebatterychain
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We investigate the performance of a one-dimensional dimerized XY chain as a spin quantum battery. Such integrable model shows a rich quantum phase diagram that emerges through a mapping of the spins onto auxiliary fermionic degrees of freedom. We consider a charging protocol relying on the double quench of an internal parameter, namely the strength of the dimerization, and address the energy stored in the systems. We observe three distinct regimes, depending on the time-scale characterizing the duration of the charging: a short-time regime related to the dynamics of the single dimers, a long-time regime related to the recurrence time of the system at finite size, and a thermodynamic limit time regime. In the latter, the energy stored is almost unaffected by the charging time and the precise values of the charging parameters, provided the quench crosses a quantum phase transition. Such a robust many-body effect, that characterizes also other models like the quantum Ising chain in a transverse field, as we prove analytically, can play a relevant role in the design of stable solid-state quantum batteries.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Powering a quantum clock with a non-equilibrium steady state

    quant-ph 2024-12 conditional novelty 5.0 of 10

    A quantum clock can be biased by a quench-generated non-equilibrium spin-chain state, with the bias condition set by the sign of the steady-state response function.

  2. Enhancing the Charging Performance of Many-Body Quantum Batteries through Landau-Zener Driving

    quant-ph 2024-12 conditional novelty 5.0 of 10

    Driving a spin-chain quantum battery with a linear Landau-Zener field can deposit more energy than periodic driving, with the largest advantage for long-range interactions and larger system sizes.

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