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Published on: June 8, 2018
Quantum phase transitions in a two-dimensional quantum XYX model: ground-state fidelity and entanglement
Bo Li1, Sheng-Hao Li, Huan-Qiang Zhou
1Department of Physics and Centre for Modern Physics, Chongqing University, Chongqing 400044, People's Republic of China.
Abstract:
A systematic analysis is performed for quantum phase transitions in a two-dimensional anisotropic spin-1/2 antiferromagnetic XYX model in an external magnetic field. With the help of an innovative tensor network algorithm, we compute the fidelity per lattice site to demonstrate that the field-induced quantum phase transition is unambiguously characterized by a pinch point on the fidelity surface, marking a continuous phase transition. We also compute an entanglement estimator, defined as a ratio between the one-tangle and the sum of squared concurrences, to identify both the factorizing field and the critical point, resulting in a quantitative agreement with quantum Monte Carlo simulation. In addition, the local order parameter is "derived" from the tensor network representation of the system's ground-state wave functions.
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