Quantum harvester enables energy transfer without randomness transfer or dissipation
arXiv:2406.08054 · doi:10.1103/PhysRevA.111.012219
Abstract
We consider a foundational question in energy harvesting: given a partly random energy source, is it possible to extract the energy without also transferring randomness or accepting another thermodynamical cost? We answer this in the positive, describing scenarios and protocols where in principle energy is extracted from a field with randomness but without any randomness being transferred, and without energy dissipation. Such protocols fundamentally outperform existing methods of rectification which dissipate power, or feedback demon-like protocols which transfer randomness to the feedback system. The protocols exploit the possibility of the harvesting system taking several trajectories that lead to the same final state at a given time. We explain why these protocols do not violate basic physical principles. A key example involves the experimentally well-established phenomenon of Rabi oscillations between energy levels, exploiting the multitude of rotation axes in the state space that take the lower energy state to the excited state. The quantum system is deterministically excited to the highest energy level after interacting with the source for a fixed amount of time, irrespective of the random initial phase of the external potential.
16 pages, 7 figures
References in corpus (28)
- Spintronics: Fundamentals and applications
- Description of quantum coherence in thermodynamic processes requires constraints beyond free energy
- Enhancing the charging power of quantum batteries
- High-power collective charging of a solid-state quantum battery
- Spin battery operated by ferromagnetic resonance
- The Fascinating World of Landau-Lifshitz-Gilbert Equation: An Overview
- Three-Terminal Energy Harvester with Coupled Quantum Dots
- Randomized benchmarking of single qubit gates in a 2D array of neutral atom qubits
- Geometric Quantum Computation
- Quantum technologies need a Quantum Energy Initiative
- Quantum Supremacy of Many-Particle Thermal Machines
- Entanglement, Coherence, and Extractable Work in Quantum Batteries
- Quantum Refrigeration with Indefinite Causal Order
- Experimental realization of a quantum dot energy harvester
- Remote Charging and Degradation Suppression for the Quantum Battery
- Precise ultra fast single qubit control using optimal control pulses
- Experimental analysis of energy transfers between a quantum emitter and light fields
- Thermodynamics of quantum switch information capacity activation
- The nonequilibrium cost of accurate information processing
- Robust Quantum Gates against Correlated Noise in Integrated Quantum Chips
- Taming the Rotating Wave Approximation
- Fast control of semiconductor qubits beyond the rotating-wave approximation
- Tunnelling necessitates negative Wigner function
- Operational Theories in Phase Space: Toy Model for the Harmonic Oscillator
- Unification of energy concepts in generalised phase space theories
- From reasonable postulates to generalised Hamiltonian systems
- Engines for predictive work extraction from memoryful quantum stochastic processes
- Quantifying the value of transient voltage sources