Quantum Dynamics in the Thermodynamic Limit
arXiv:0804.3026 · doi:10.1103/PhysRevB.78.054301
Abstract
The description of spontaneous symmetry breaking that underlies the connection between classically ordered objects in the thermodynamic limit and their individual quantum mechanical building blocks is one of the cornerstones of modern condensed matter theory and has found applications in many different areas of physics. The theory of spontaneous symmetry breaking however, is inherently an equilibrium theory, which does not address the dynamics of quantum systems in the thermodynamic limit. Here, we will use the example of a particular antiferromagnetic model system to show that the presence of a so-called thin spectrum of collective excitations with vanishing energy -one of the well-known characteristic properties shared by all symmetry-breaking objects- can allow these objects to also spontaneously break time-translation symmetry in the thermodynamic limit. As a result, that limit is found to be able, not only to reduce quantum mechanical equilibrium averages to their classical counterparts, but also to turn individual-state quantum dynamics into classical physics. In the process, we find that the dynamical description of spontaneous symmetry breaking can also be used to shed some light on the possible origins of Born's rule. We conclude by describing an experiment on a condensate of exciton polaritons which could potentially be used to experimentally test the proposed mechanism.
13 pages, 4 figures; typos corrected, references updated, minor changes in text
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Cited by in corpus (22)
- An Introduction to Spontaneous Symmetry Breaking
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- Mutual information and spontaneous symmetry breaking
- Broken Time Translation Symmetry as a model for Quantum State Reduction
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- Quantum spin systems versus Schroedinger operators: A case study in spontaneous symmetry breaking
- An objective collapse model without state dependent stochasticity
- The classical limit and spontaneous symmetry breaking in algebraic quantum theory
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- Colored noise driven unitarity violation causing dynamical quantum state reduction
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- Exact Ground State of Lieb-Mattis Hamiltonian as a Superposition of Néel states
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- Environment-assisted invariance does not necessitate Born's rule for quantum measurement
- Reconstruction of the unitary symmetry in super-relativity
- Morphogenesis and dynamics of quantum state
- Superluminal signalling witness for quantum state reduction
- Continuous spontaneous localization as the white-noise limit of spontaneous unitarity violation
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- The inconsistency of linear dynamics and Born's rule
- New insights on the quantum-classical division in light of Collapse Models