Quantum phase transitions in transverse field spin models: from statistical physics to quantum information
Amit Dutta, Gabriel Aeppli, Bikas K. Chakrabarti, Uma Divakaran,, Thomas F. Rosenbaum, Diptiman Sen

TL;DR
This review explores quantum phase transitions in transverse field spin models, covering exact solutions, quantum information measures, non-equilibrium dynamics, and recent experimental findings, highlighting their significance in statistical physics and quantum information science.
Contribution
It provides a comprehensive overview of quantum phase transitions in spin models, integrating exact solutions, quantum information measures, and non-equilibrium dynamics, with recent experimental insights.
Findings
Exact solutions in 1D models connect to conformal field theory.
Quantum information measures reveal critical behavior.
Kibble-Zurek scaling describes defect formation during quenches.
Abstract
We review quantum phase transitions of spin systems in transverse magnetic fields taking the examples of the spin-1/2 Ising and XY models in a transverse field. Beginning with an overview of quantum phase transitions, we introduce a number of model Hamiltonians. We provide exact solutions in one spatial dimension connecting them to conformal field theoretical studies. We also discuss Kitaev models and some other exactly solvable spin systems. Studies of quantum phase transitions in the presence of quenched randomness and with frustrating interactions are presented in detail. We discuss novel phenomena like Griffiths-McCoy singularities. We then turn to more recent topics like information theoretic measures of the quantum phase transitions in these models such as concurrence, entanglement entropy, quantum discord and quantum fidelity. We then focus on non-equilibrium dynamics of a…
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Taxonomy
TopicsQuantum many-body systems · Opinion Dynamics and Social Influence · Complex Network Analysis Techniques
