Dyson Hierarchical Long-Ranged Quantum Spin-Glass via real-space renormalization
arXiv:1506.06012 · doi:10.1088/1742-5468/2015/10/P10024
Abstract
We consider the Dyson hierarchical version of the quantum Spin-Glass with random Gaussian couplings characterized by the power-law decaying variance and a uniform transverse field . The ground state is studied via real-space renormalization to characterize the spinglass-paramagnetic zero temperature quantum phase transition as a function of the control parameter . In the spinglass phase , the typical renormalized coupling grows with the length scale as the power-law with the classical droplet exponent , where the stiffness modulus vanishes at criticality , whereas the typical renormalized transverse field decays exponentially where the correlation length diverges at the transition . At the critical point , the typical renormalized coupling and the typical renormalized transverse field display the same power-law behavior with a finite dynamical exponent . The RG rules are applied numerically to chains containing spins in order to measure these critical exponents for various values of in the region .
9 pages, 7 figures
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