Topological enhancement of a PT-symmetric Su-Schrieffer-Heeger quantum battery
arXiv:2511.13088 · doi:10.1103/4klp-kw27
Abstract
We investigate a non-Hermitian quantum battery based on the Su-Schrieffer-Heeger (SSH) lattice, charged through a parity-time (PT)-symmetric protocol that alternates gain and loss between the two sublattices. The interplay between lattice topology and non-Hermiticity gives rise to both bulk and edge exceptional points (EPs), which govern the charging dynamics. In the topological regime, an edge-state EP appears at a smaller gain-loss strength than the bulk thresholds and gives rise to an additional edge-broken regime absent in the trivial configuration. This topology-specific spectral structure is reflected in the charging dynamics, where the topological phase exhibits more favorable transient and long-time performance in the representative non-Hermitian regimes considered here. We further examine the corresponding Lindblad dynamics, identifying the non-Hermitian model as the conditional no-jump description of the same gain-loss processes. The Lindblad results show that the topological advantage remains visible at the level of stored energy, extractable work, and extractable fraction under unconditional open-system evolution. These findings demonstrate that topology constitutes a genuine physical resource for enhancing the performance of quantum batteries.
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References in corpus (32)
- Non-Hermitian Physics
- PT-Symmetry in Non-Hermitian Su-Schrieffer-Heeger model with complex boundary potentials
- Colloquium: Quantum Batteries
- Quantum versus classical many-body batteries
- The quantum Rabi model: solution and dynamics
- Ultrafast charging in a two-photon Dicke quantum battery
- Entanglement, Coherence, and Extractable Work in Quantum Batteries
- Extended Dicke quantum battery with interatomic interactions and driving field
- Fast charging of quantum battery assisted by noise
- The battery capacity of energy-storing quantum systems
- Quantum battery of interacting spins with environmental noise
- Beneficial and detrimental entanglement for quantum battery charging
- Collective enhancement in dissipative quantum batteries
- Topological Quantum Batteries
- Collective effects and quantum coherence in dissipative charging of quantum batteries
- Quantum master equation with balanced gain and loss
- Quantum noise effects with Kerr nonlinearity enhancement in coupled gain-loss waveguides
- Quantum simulation of parity-time symmetry breaking with a superconducting quantum processor
- Quantum Coherent Control of a Single Molecular-Polariton Rotation
- Quantum Battery with Ultracold Atoms: Bosons vs. Fermions
- phase transition in open quantum systems with Lindblad dynamics
- Hidden symmetry and tunnelling dynamics in asymmetric quantum Rabi models
- Quantum battery with non-Hermitian charging
- Topological edge-states of the PT-symmetric Su-Schrieffer-Heeger model: An effective two-state description
- Quantum Dicke battery supercharging in the "bound luminocity" state
- Generalized adiabatic approximation to the quantum Rabi model
- Correlations enable lossless ergotropy transport
- PT-symmetric quantum Rabi model
- Quantum Speed Limit under Brachistochrone Evolution
- Quantum metrology enhanced by the spin interaction in a generalized Tavis-Cummings model
- Dissipative qutrit-mediated stable charging
- Anisotropic Rabi model with two-photon relaxation