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      Phase Transitions between Different Spin-Glass Phases and between Different Chaoses in Quenched Random Chiral Systems

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          Abstract

          The left-right chiral and ferromagnetic-antiferromagnetic double spin-glass clock model, with the crucially even number of states q=4 and in three dimensions d=3, has been studied by renormalization-group theory. We find, for the first time to our knowledge, four different spin-glass phases, including conventional, chiral, and quadrupolar spin-glass phases, and phase transitions between spin-glass phases. The chaoses, in the different spin-glass phases and in the phase transitions of the spin-glass phases with the other spin-glass phases, with the non-spin-glass ordered phases, and with the disordered phase, are determined and quantified by Lyapunov exponents. It is seen that the chiral spin-glass phase is the most chaotic spin-glass phase. The calculated phase diagram is also otherwise very rich, including regular and temperature-inverted devil's staircases and reentrances.

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          Most cited references33

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          Chaotic Nature of the Spin-Glass Phase

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            New Liquid-Crystal Phase Diagram

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              Spin-Glass Behavior in Frustrated Ising Models with Chaotic Renormalization-Group Trajectories

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                Author and article information

                Journal
                2017-06-14
                Article
                1706.04891
                99363ce0-5466-4bb8-acd4-65c1812e7e35

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                8 pages, 5 figures, 12 chaotic trajectories. arXiv admin note: substantial text overlap with arXiv:1612.03330
                cond-mat.stat-mech cond-mat.dis-nn

                Condensed matter,Theoretical physics
                Condensed matter, Theoretical physics

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