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Criteria for the absence of quantum fluctuations after spontaneous symmetry breaking
Authors:Aron J. Beekman
Affiliation:RIKEN Center for Emergent Matter Science (CEMS), Wako 351-0198, Japan
Abstract:The lowest-energy state of a macroscopic system in which symmetry is spontaneously broken, is a very stable wavepacket centered around a spontaneously chosen, classical direction in symmetry space. However, for a Heisenberg ferromagnet the quantum groundstate is exactly the classical groundstate, there are no quantum fluctuations. This coincides with seven exceptional properties of the ferromagnet, including spontaneous time-reversal symmetry breaking, a reduced number of Nambu–Goldstone modes and the absence of a thin spectrum (Anderson tower of states). Recent discoveries of other non-relativistic systems with fewer Nambu–Goldstone modes suggest these specialties apply there as well. I establish precise criteria for the absence of quantum fluctuations and all the other features. In particular, it is not sufficient that the order parameter operator commutes with the Hamiltonian. It leads to a measurably larger coherence time of superpositions in small but macroscopic systems.
Keywords:Spontaneous symmetry breaking   Quantum fluctuations   Nambu&ndash  Goldstone modes   Thin spectrum
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