Exotic Symmetry Breaking Properties of Self-Dual Fracton Spin Models
arXiv:2311.11066 · doi:10.1103/PhysRevResearch.6.013304
Abstract
Fracton codes host unconventional topological states of matter and are promising for fault-tolerant quantum computation due to their large coding space and strong resilience against decoherence and noise. In this work, we investigate the ground-state properties and phase transitions of two prototypical self-dual fracton spin models -- the tetrahedral Ising model and the fractal Ising model -- which correspond to error-correction procedures for the representative fracton codes of type-I and type-II, the checkerboard code and the Haah's code, respectively, in the error-free limit. They are endowed with exotic symmetry-breaking properties that contrast sharply with the spontaneous breaking of global symmetries and deconfinement transition of gauge theories. To show these unconventional behaviors, which are associated with sub-dimensional symmetries, we construct and analyze the order parameters, correlators, and symmetry generators for both models. Notably, the tetrahedral Ising model acquires an extended semi-local ordering moment, while the fractal Ising model fits into a polynomial ring representation and leads to a fractal order parameter. Numerical studies combined with analytical tools show that both models experience a strong first-order phase transition with an anomalous scaling, despite the fractal symmetry of the latter. Our work provides new understanding of sub-dimensional symmetry breaking and makes an important step for studying quantum-error-correction properties of the checkerboard and Haah's codes.
13 pages, 6 figures. v2: published version
References in corpus (15)
- Local stabilizer codes in three dimensions without string logical operators
- Topological Quantum Distillation
- Experimental Quantum Computations on a Topologically Encoded Qubit
- Realization of an Error-Correcting Surface Code with Superconducting Qubits
- Error Threshold for Color Codes and Random 3-Body Ising Models
- Correlation function diagnostics for type-I fracton phases
- Higher-Form Subsystem Symmetry Breaking: Subdimensional Criticality and Fracton Phase Transitions
- Quantum effects on unconventional pinch point singularities
- Quantum robustness of fracton phases
- Topological fracton quantum phase transitions by tuning exact tensor network states
- Classification of nematic order in 2+1D: Dislocation melting and lattice gauge theory
- Fracton Self-Statistics
- Evolution of Dynamical Signature in the X-cube Fracton Topological Order
- Foliated order parameter in a fracton phase transition
- Hybrid Symmetry Breaking in Classical Spin Models With Subsystem Symmetries
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