The heat and work of quantum thermodynamic processes with quantum coherence
arXiv:1705.07618 · doi:10.1088/1674-1056/27/6/060502
Abstract
Energy is often partitioned into heat and work by two independent paths corresponding to the change in the eigenenergies or the probability distributions of a quantum system. The discrepancies of the heat and work for various quantum thermodynamic processes have not been well characterized in literature. Here we show how the work in quantum machines is differentially related to isochoric, isothermal, and adiabatic processes. We prove that the energy exchanges during the quantum isochoric and isothermal processes are simply depending on the change in the eigenenergies or the probability distributions. However, for a time-dependent system in a non-adiabatic quantum evolution, the transitions between the different quantum states representing the quantum coherence can affect the essential thermodynamic properties, and thus the general definitions of the heat and work should be clarified with respect to the microscopic generic time-dependent system. By integrating the coherence effects in the exactly-solvable dynamics of quantum-spin precession, the internal energy is rigorously transferred as the work in the thermodynamic adiabatic process. The present study demonstrates that quantum adiabatic process is sufficient but not necessary for thermodynamic adiabatic process.
7 pages, 1 figures
References in corpus (6)
- Quantum Thermodynamic Cycles and quantum heat engines
- Maximizing information on the environment by dynamically controlled qubit probes
- Demon Dynamics: Deterministic Chaos, the Szilard Map, and the Intelligence of Thermodynamic Systems
- Photoelectric converters with quantum coherence
- High-precision evaluation of Wigner's d-matrix by exact diagonalization
- Effects of system-bath coupling on Photosynthetic heat engine: A polaron master equation approach
Cited by in corpus (14)
- Quantum thermodynamic devices: from theoretical proposals to experimental reality
- Experimental validation of the -scaling entropy generation in finite-time thermodynamics with dry air
- Entropy-Based Formulation of Thermodynamics in Arbitrary Quantum Evolution
- Boosting the performance of the Quantum Otto heat engines
- Achieve Higher Efficiency at Maximum Power with Finite-time Quantum Otto Cycle
- The Generalized Boltzmann Distribution is the Only Distribution in Which the Gibbs-Shannon Entropy Equals the Thermodynamic Entropy
- Effect of finite-size heat source's heat capacity on the efficiency of heat engine
- Minimal Energy Cost to Initialize a Quantum Bit with Tolerable Error
- Nonadiabatic coupled-qubit Otto cycle with bidirectional operation and efficiency gains
- Qubit thermodynamics far from equilibrium: two perspectives about the nature of heat and work in the quantum regime
- Self-consistency of optimizing finite-time Carnot engines with the low-dissipation model
- Simulating finite-time quantum isothermal processes with generic superconducting quantum circuit
- Finite-time quantum measurement cooling beyond the Carnot limit
- Tracking Adiabaticity in Non-Equilibrium Many-Body Systems: The Hard Case of the X-ray Photoemission in Metals