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Quantum Batteries: Instant Charging with Squeezed Light ⚡ экспресс

Original: "Quantum battery optimized by parametric amplification"
arXiv:2605.14582 · 2026-05-14 · CC BY · ⏱ 1 min · Quantum Physics
Physicists have figured out how to charge quantum batteries in a fraction of a second and hold energy almost loss-free using squeezed light.
Abstract

An optimized design for quantum batteries on superconducting circuits is proposed, where the charger is an LC resonator with two-photon parametric pumping, and the battery is an array of transmon qubits. The two-photon excitation exponentially enhances the effective resonator-qubit coupling, leading to nearly degenerate energy levels and strongly entangled states. This significantly boosts the charging power and ensures rapid energy transfer from the charger to the battery. The engineered squeezed mode of the resonator and the associated quantum correlations effectively suppress environment-induced decoherence, slowing energy leakage and promoting stable storage. The scheme demonstrates resilience to practical imperfections, such as parameter spread and noise, while preserving performance advantages. The work offers a feasible platform for high-power and highly stable quantum batteries and highlights the potential of parametric control in quantum energy science.

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Ordinary batteries lose charge like tea cools down. A quantum battery works differently: its heart is a tiny cavity with darting photons. If you illuminate it with special photon pairs, energy flows into a chain of qubit cells instantaneously—much like a swing gets a boost from strong pushes. These cells are made of materials that conduct current without loss (their properties were discovered by John Bardeen), and methods for controlling light in a cavity were perfected by Serge Haroche.

But fast charging is only half the battle. In ordinary carbon batteries, entropy grows—that is, disorder—and energy leaks away. Here, 'squeezed light' comes into play—it links photons so that losses are eliminated, as if the swing freezes at the top. The charge remains stable, like water in a thermos, and the system is unfazed by scratches or external jolts and noise.

Remarkably, squeezed light is already used in gravitational wave detectors to hear echoes of distant cataclysms. Perhaps the same principles will one day power drones or portable medical devices.

🎯 Squeezed light, which locks in charge, already helps physicists catch gravitational waves—it boosts measurement precision in detectors like LIGO, enabling them to pick up vibrations a quintillion times smaller than an atom.

Scientists
Jacob BekensteinStephen HawkingLudwig BoltzmannEdward WittenJuan MaldacenaGerard 't Hooft
Tags
entropy carbon Water
Laws
second law of thermodynamicsBekenstein-Hawking entropyBoltzmann distributionfirst law of thermodynamicsAdS/CFT correspondenceholographic principle
Original: arXiv:2605.14582 · CC BY · bridge42worlds