Non-Abelian gauge redundancy and entropic ambiguities

Author:

Balachandran A. P.1,de Queiroz A. R.2,Vaidya S.3

Affiliation:

1. Department of Physics, Syracuse University, Syracuse, NY 13244-1130, USA

2. Instituto de Fisica, Universidade de Brasilia, Caixa Postal 04455, 70919-970 Brasilia, DF, Brazil

3. Center for High Energy Physics, Indian Institute of Science, Bangalore 560 012, India

Abstract

The von Neumann entropy of a generic quantum state is not unique unless the state can be uniquely decomposed as a sum of extremal or pure states. Therefore one reaches the remarkable possibility that there may be many entropies for a given state. We show that this happens if the GNS representation (of the algebra of observables in some quantum state) is reducible, and some representations in the decomposition occur with non-trivial degeneracy. This ambiguity in entropy, which can occur at zero temperature, can often be traced to a gauge symmetry emergent from the non-trivial topological character of the configuration space of the underlying system. We also establish the analogue of an H-theorem for this entropy by showing that its evolution is Markovian, determined by a stochastic matrix. After demonstrating this entropy ambiguity for the simple example of the algebra of 2 × 2 matrices, we argue that the degeneracies in the GNS representation can be interpreted as an emergent broken gauge symmetry, and play an important role in the analysis of emergent entropy due to non-Abelian anomalies. We work out the simplest situation with such non-Abelian symmetry, that of an ethylene molecule.

Publisher

World Scientific Pub Co Pte Lt

Subject

Physics and Astronomy (miscellaneous)

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