A derivation (and quantification) of the third law of thermodynamics
arXiv:1412.3828 · doi:10.1038/ncomms14538
Abstract
The third law of thermodynamics has a controversial past and a number of formulations due to Planck, Einstein, and Nernst. It's most accepted version, the unattainability principle, states that "any thermodynamic process cannot reach the temperature of absolute zero by a finite number of steps and within a finite time." Although formulated in 1912, there has been no general proof of the principle, and the only evidence we have for it is that particular cooling methods become less efficient as the temperature decreases. Here we provide the first derivation of a general unattainability principle, which applies to arbitrary cooling processes, even those exploiting the laws of quantum mechanics or involving an infinite-dimensional reservoir. We quantify the resources needed to cool a system to any particular temperature, and translate these resources into a minimal time or number of steps by considering the notion of a Thermal Machine which obeys similar restrictions to universal computers. We generally find that the obtainable temperature can scale as an inverse power of the cooling time. Our argument relies on the heat capacity of the bath being positive, and we show that if this is not the case then perfect cooling in finite time is in principle possible. Our results also clarify the connection between two versions of the third law (the Unattainability Principle and the Heat Theorem), and place ultimate bounds on the speed at which information can be erased.
Substantial improvement of the third law derivation, which now only relies on a single assumption: the positivity of the heat capacity. 7 pages+appendix, 2 figures
References in corpus (4)
- Description of quantum coherence in thermodynamic processes requires constraints beyond free energy
- The thermodynamic meaning of negative entropy
- Quantum bath refrigeration towards absolute zero: unattainability principle challenged
- Quantum resources for purification and cooling: fundamental limits and opportunities
Cited by in corpus (111)
- Quantum Resource Theories
- Fundamental aspects of steady-state conversion of heat to work at the nanoscale
- Irreversible entropy production, from quantum to classical
- Dynamical purification phase transitions induced by quantum measurements
- The extraction of work from quantum coherence
- An introductory review of the resource theory approach to thermodynamics
- Thermometry in the quantum regime: Recent theoretical progress
- Fluctuations in extractable work bound the charging power of quantum batteries
- Ideal Projective Measurements Have Infinite Resource Costs
- Fully quantum fluctuation theorems
- Landauer vs. Nernst: What is the True Cost of Cooling a Quantum System?
- Correlating thermal machines and the second law at the nanoscale
- Random Quantum Batteries
- Von Neumann entropy from unitarity
- Fundamental limits on low-temperature quantum thermometry with finite resolution
- Elementary Thermal Operations
- A Resource Theory for Work and Heat
- Unifying paradigms of quantum refrigeration: A universal and attainable bound on cooling
- Work estimation and work fluctuations in the presence of non-ideal measurements
- Thermodynamics as a Consequence of Information Conservation
- Energy-temperature uncertainty relation in quantum thermodynamics
- Enhanced precision bound of low-temperature quantum thermometry via dynamical control
- Many-body quantum thermal machines
- Third Law of Thermodynamics as a Single Inequality
- Energy storage and coherence in closed and open quantum batteries
- Entropy-Based Formulation of Thermodynamics in Arbitrary Quantum Evolution
- Correlations as a resource in quantum thermodynamics
- A sufficient set of experimentally implementable thermal operations
- Quantum field thermal machines
- Steering heat engines: a truly quantum Maxwell demon
- Role of Quantum Coherence in Thermodynamics
- Anti-Zeno quantum advantage in fast-driven heat machines
- Fundamental limitations on photoisomerization from thermodynamic resource theories
- Quantum Horn's lemma, finite heat baths, and the third law of thermodynamics
- A quantum Otto engine with finite heat baths: energy, correlations, and degradation
- The first law of general quantum resource theories
- Roadmap on Quantum Thermodynamics
- Unifying paradigms of quantum refrigeration: fundamental limits of cooling and associated work costs
- From single-shot to general work extraction with bounded fluctuations in work
- Microcanonical thermodynamics in general physical theories
- All states are universal catalysts in quantum thermodynamics
- Optimal performance of generalized heat engines with finite-size baths of arbitrary multiple conserved quantities beyond i.i.d. scaling
- Not quite free shortcuts to adiabaticity
- Finite-bath corrections to the second law of thermodynamics
- Energy-Consumption Advantage of Quantum Computation
- A Nernst heat theorem for nonequilibrium jump processes
- Finite-time Landauer principle beyond weak coupling
- A Third-Law Isentropic Analysis of a Simulated Hurricane
- Exponential improvement for quantum cooling through finite-memory effects
- Quantum Thermodynamics and Quantum Coherence Engines
- Measurement-based cooling of a nonlinear mechanical resonator
- The tight Second Law inequality for coherent quantum systems and finite-size heat baths
- A Quantum Heat Machine from Fast Optomechanics
- A finite-time quantum Otto engine with tunnel coupled one-dimensional Bose gases
- Conditional work statistics of quantum measurements
- Novel Technique for Robust Optimal Algorithmic Cooling
- Autonomous Quantum Devices: When Are They Realizable without Additional Thermodynamic Costs?
- Low-control and robust quantum refrigerator and applications with electronic spins in diamond
- Quantum measurements constrained by the third law of thermodynamics
- Entropy production and fluctuation theorems in a continuously monitored optical cavity at zero temperature
- How much can we cool a quantum oscillator? A useful analogy to understand laser cooling as a thermodynamical process
- Thermodynamically optimal creation of correlations
- Second law of thermodynamics for batteries with vacuum state
- Efficiently Cooling Quantum Systems with Finite Resources: Insights from Thermodynamic Geometry
- Quantum coherence fluctuation relations
- Catalysis in Action via Elementary Thermal Operations
- Quantum thermodynamics of overdamped modes in local and spatially dispersive materials
- Entanglement generation in quantum thermal machines
- Enhancing Gaussian quantum metrology with position-momentum correlations
- On moist potential temperatures and their ability to characterize differences in the properties of air parcels
- The third law of thermodynamics in open quantum systems
- No-go Theorem of Purification
- Entanglement fluctuation theorems
- Non-Markovianity through entropy-based quantum thermodynamics
- Channels, measurements and post-selection in quantum thermodynamics
- Realization of quantum Maxwell's demon with solid-state spins
- An Exponential Bound in the Quest for Absolute Zero
- Catalytic transformations for thermal operations
- Quantum noise can enhance algorithmic cooling
- Bounding the resources for thermalizing many-body localized systems
- Spectral Bounds on Entropy and Ergotropy via Statistical Effective Temperature in Classical Polarization and Quantum Thermal States
- Self-consistency of the two-point energy measurement protocol
- Quantum non-Markovianity, quantum coherence and extractable work in a general quantum process
- Principle of Unattainability of Absolute Zero Temperature, the Third Law of Thermodynamics, and Projective Quantum Measurements
- Cooling to absolute zero: The unattainability principle
- Attraction controls the entropy of fluctuations in isosceles triangular networks
- Speed limit, dissipation bound and dissipation-time trade-off in thermal relaxation processes
- Digital simulation of zero-temperature spontaneous symmetry breaking in a superconducting lattice processor
- Role of quantum state texture in probing resource theories and quantum phase transition
- Locally optimal symplectic control of multimode Gaussian states
- Choi-Defined Resource Theories
- Thermal stability originates the vanishing of the specific heats at the absolute zero
- From basic science to technological development: the case for two avenues
- Catalytic transformations with finite-size environments: applications to cooling and thermometry
- Thermalization of finite complexity and its application to heat bath algorithmic cooling
- Elusive phase transition in the replica limit of monitored systems
- Testing the Quantum of Entropy
- Thermodynamic state convertibility is determined by qubit cooling and heating
- A solvable embedding mechanism for one-dimensional spinless and Majorana fermions in higher-dimensional spin-1/2 magnets
- Thermalization of isolated quantum many-body system and the role of entanglement
- Optimal Manipulation Of Correlations And Temperature In Quantum Thermodynamics
- Minimizing Dissipation via Interacting Environments: Quadratic Convergence to Landauer Bound
- Cooling a Qubit using n Others
- The third law of thermodynamics or an absolute definition for Entropy. Part 1 : the origin and applications in thermodynamics
- Can we accurately read or write quantum data?
- Time-cost-error trade-off relation in thermodynamics: The third law and beyond
- Application of the second law to the atmosphere: impacts of the third-law definition for the moist-air entropy
- Some Entanglement Survives Most Measurements
- Thermodynamic Constraints on Information Transmission in Quantum Ensembles
- Quantum thermodynamics under continuous monitoring: a general framework
- Informational work storage in quantum thermodynamics