Quantum thermochemical engines
arXiv:2208.04132 · doi:10.1103/PhysRevApplied.21.034003
Abstract
Conversion of chemical energy into mechanical work is the fundamental mechanism of several natural phenomena at the nanoscale, like molecular machines and Brownian motors. Quantum mechanical effects are relevant for optimising these processes and to implement them at the atomic scale. This paper focuses on engines that transform chemical work into mechanical work through energy and particle exchanges with thermal sources at different chemical potentials. Irreversibility is introduced by modelling the engine transformations with finite-time dynamics generated by a time-depending quantum master equation. Quantum degenerate gases provide maximum efficiency for reversible engines, whereas the classical limit implies small efficiency. For irreversible engines, both the output power and the efficiency at maximum power are much larger in the quantum regime than in the classical limit. The analysis of ideal homogeneous gases grasps the impact of quantum statistics on the above performances, which persists in the presence of interactions and more general trapping. The performance dependence on different types of Bose-Einstein Condensates (BECs) is also studied. BECs under considerations are standard BECs with a finite fraction of particles in the ground state, and generalised BECs where eigenstates with parallel momenta, or those with coplanar momenta are macroscopically occupied according to the confinement anisotropy. Quantum statistics is therefore a resource for enhanced performances of converting chemical into mechanical work.
References in corpus (25)
- Quantum fluids of light
- Theory of ultracold Fermi gases
- Artificial Brownian motors: Controlling transport on the nanoscale
- Quantum Thermodynamic Cycles and quantum heat engines
- The second law, Maxwell's daemon and work derivable from quantum heat engines
- Formation of Quantum-Degenerate Sodium Molecules
- Quantum Szilard Engine
- Colloquium: Quantum heat transport in condensed matter systems
- Efficiency of molecular motors at maximum power
- Entanglement in indistinguishable particle systems
- Atom trapping and two-dimensional Bose-Einstein condensates in field-induced adiabatic potentials
- Van der Waals Equation of State with Fermi Statistics for Nuclear Matter
- Driven Spin Systems as Quantum Thermodynamic Machines: Fundamental Limits
- Entanglement in fermion systems and quantum metrology
- The Big World of Nanothermodynamics
- Bosons Outperform Fermions -- The Thermodynamic Advantage of Symmetry
- Squeezing Inequalities and Entanglement for Identical Particles
- Making statistics work: a quantum engine in the BEC-BCS crossover
- Efficiency of molecular machines with continuous phase space
- Quantum Thermodynamics with Degenerate Eigenstate Coherences
- Quantum Equilibration under Constraints and Transport Balance
- Microscopic modelling of general time-dependent quantum Markov processes
- Loading a quantum gas from a hybrid dimple trap to a shell trap
- The Wave-Particle Duality in a Quantum Heat Engine
- Locality and entanglement of indistinguishable particles
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- A finite-time quantum Otto engine with tunnel coupled one-dimensional Bose gases
- Out-of-equilibrium quantum thermochemical engine with one-dimensional Bose gas
- Stochastic Thermodynamics at the Quantum-Classical Boundary: A Self-Consistent Framework Based on Adiabatic-Response Theory
- Enhanced performance of sudden-quench quantum Otto cycles via multi-parameter control