Carlo Sparaciari: A resource theory for work and heat

Subscribers:
351,000
Published on ● Video Link: https://www.youtube.com/watch?v=9MkMu60xU04



Duration: 35:14
622 views
4


Several recent results in the field of quantum thermodynamics have been obtained using the tools of quantum information theory and resource theories. So far, the resource theories utilised to describe quantum thermodynamics have assumed the existence of an infinite thermal reservoir, by declaring that thermal states at some background temperature come for free. Here, we propose a resource theory of quantum thermodynamics without a background temperature, so that no states at all come for free. In this resource theory, we show that states are classified up to many-copy equivalence by their entropy and average energy, which implies that thermodynamics takes place in a two-dimensional convex set that we call the energy-entropy diagram. The answers to many resource-theoretic questions about thermodynamics can be read off from this diagram, such as the efficiency of a heat engine consisting of finite reservoirs or the rate of conversion between two states. This allows us to consider a resource theory which puts work and heat on an equal footing, and serves as a model for more general resource theories.




Other Videos By Microsoft Research


2017-01-311. Catalytic Decoupling 2. Deconstruction and conditional erasure of quantum correlations
2017-01-31A complete characterization of unitary quantum space
2017-01-31David Reutter: Biunitary constructions in quantum information
2017-01-31Fernando Brandao: Quantum speed-ups for semidefinite programming
2017-01-31Joseph M. Renes: Belief propagation decoding of quantum channels by passing quantum messages
2017-01-31Anupam Prakash: Quantum recommendation systems
2017-01-31Garnet Chan: Simulating quantum systems on classical computers
2017-01-31Rigetti Computing Software Demo: Forest
2017-01-31Frank Verstraete: The entanglement of distillation for gauge theories
2017-01-31Aram Harrow: Sequential measurements, disturbance and property testing
2017-01-31Carlo Sparaciari: A resource theory for work and heat
2017-01-31Mark Howard: Application of a resource theory for magic states to fault-tolerant quantum computing
2017-01-31John Preskill: Quantum information and spacetime (II)
2017-01-31Anurag Anshu: Separations in communication complexity using cheat sheets and information complexity
2017-01-31Florian Speelman: Quantum homomorphic encryption for polynomial-sized circuits (Best Student Paper)
2017-01-31John Preskill: Quantum information and spacetime (I)
2017-01-31Earl Campbell: Unifying gate-synthesis and magic state distillation
2017-01-31Zhengfeng Ji: Compression of quantum multi-prover interactive proofs
2017-01-31Fang Song: Zero-knowledge proof systems for QMA
2017-01-31Norbert Schuch: Matrix product states and tensor networks (I)
2017-01-31Norbert Schuch: Matrix product states and tensor networks (II)



Tags:
microsoft research