English

Quantum battery supercharging via counter-diabatic dynamics

Quantum Physics 2024-09-09 v2

Abstract

We introduce a counter-diabatic approach for deriving Hamiltonians modeling superchargable quantum batteries (QBs). A necessary requirement for the supercharging process is the existence of multipartite interactions among the cells of the battery. Remarkably, this condition may be insufficient no matter the number of multipartite terms in the Hamiltonian. We analytically illustrate this kind of insufficiency through a model of QB based on the adiabatic version for the Grover search problem. On the other hand, we provide QB supercharging with just a mild number of global connections in the system. To this aim, we consider a spin-1/21/2 chain with nn sites in the presence of Ising multipartite interactions. We then show that, by considering the validity of the adiabatic approximation and by adding nn terms of (n1)(n-1)-site interactions, we can achieve a Hamiltonian exhibiting maximum QB power, with respect to a normalized evolution time, growing quadratically with nn. Therefore, supercharging can be achieved by O(n)O(n) terms of multipartite connections. The time constraint required by the adiabatic approximation can be surpassed by considering a counter-diabatic expansion in terms of the gauge potential for the original Hamiltonian, with a limited O(n)O(n) many-body interaction terms assured via a Floquet approach for the counter-diabatic implementation.

Keywords

Cite

@article{arxiv.2406.15274,
  title  = {Quantum battery supercharging via counter-diabatic dynamics},
  author = {L. F. C. de Moraes and Alan C. Duriez and A. Saguia and Alan C. Santos and Marcelo S. Sarandy},
  journal= {arXiv preprint arXiv:2406.15274},
  year   = {2024}
}

Comments

13 pages and 3 figures. Last version also available as Open Access from Quantum Science and Technology website

R2 v1 2026-06-28T17:14:57.908Z