arXiv:2609.00349·v1·Nuclear Theory
Symmetry-Reduced Variational Quantum Simulation of the Quantum Phase Transition in the Interacting Boson Model
Abstract
The spherical-to-deformed quantum phase transition of the Interacting Boson Model (IBM) is investigated using the variational quantum eigensolver (VQE). The -- transitional Hamiltonian is studied with . We develop a symmetry-preserving, minimum-qubit VQE framework for collective nuclear models, achieving a substantial reduction in qubit requirements without compromising the finite-size quantum-phase-transition physics. The transition is characterized through the normalized -boson occupation and ground-state energy derivatives. Finite-size results are found to approach the analytic critical point , with an independent order-parameter extrapolation yielding . The VQE reproduces ground-state energies and structural observables to numerical precision. These results demonstrate the potential of symmetry-reduced VQE for efficient quantum simulations of collective nuclear dynamics and quantum phase transitions.
Comments: 34 pages, 8 Figures, 4 tables