Phase transitions in the complex plane of physical parameters.

Sci Rep

Department of Physics, Centre for Quantum Coherence, and Institute of Theoretical Physics, The Chinese University of Hong Kong, Shatin, New Territories, Hong Kong, China.

Published: June 2014

AI Article Synopsis

  • At low temperatures, phase transitions in thermodynamic systems occur when a physical parameter crosses a singularity in the free energy, leading to new ordered states.
  • At high temperatures, these orders are disrupted by thermal fluctuations, and the free energy remains smooth, with singularities appearing only in complex values, meaning no phase transitions should occur in real parameters.
  • This study demonstrates that quantum evolution at high temperatures can still reveal phase transitions through complex-valued parameters, linking these transitions to topological properties in renormalization group flows and allowing exploration of thermodynamics in a complex parameter space.

Article Abstract

At low temperature, a thermodynamic system undergoes a phase transition when a physical parameter passes through a singularity point of the free energy. This corresponds to the formation of a new order. At high temperature, thermal fluctuations destroy the order. Correspondingly, the free energy is a smooth function of the physical parameter and singularities only occur at complex values of the parameter. Since a complex valued parameter is unphysical, no phase transitions are expected when the physical parameter is varied. Here we show that the quantum evolution of a system, initially in thermal equilibrium and driven by a designed interaction, is equivalent to the partition function of a complex parameter. Therefore, we can access the complex singularity points of thermodynamic functions and observe phase transitions even at high temperature. We further show that such phase transitions in the complex plane are related to topological properties of the renormalization group flows of the complex parameters. This result makes it possible to study thermodynamics in the complex plane of physical parameters.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4047537PMC
http://dx.doi.org/10.1038/srep05202DOI Listing

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