Size-driven quantum phase transitions

Author:

Bausch Johannes,Cubitt Toby S.,Lucia AngeloORCID,Perez-Garcia David,Wolf Michael M.

Abstract

Can the properties of the thermodynamic limit of a many-body quantum system be extrapolated by analyzing a sequence of finite-size cases? We present models for which such an approach gives completely misleading results: translationally invariant, local Hamiltonians on a square lattice with open boundary conditions and constant spectral gap, which have a classical product ground state for all system sizes smaller than a particular threshold size, but a ground state with topological degeneracy for all system sizes larger than this threshold. Starting from a minimal case with spins of dimension 6 and threshold lattice size 15×15, we show that the latter grows faster than any computable function with increasing local spin dimension. The resulting effect may be viewed as a unique type of quantum phase transition that is driven by the size of the system rather than by an external field or coupling strength. We prove that the construction is thermally robust, showing that these effects are in principle accessible to experimental observation.

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

Cited by 12 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Importance of the Spectral gap in Estimating Ground-State Energies;PRX Quantum;2022-12-09

2. Computational complexity of the ground state energy density problem;Proceedings of the 54th Annual ACM SIGACT Symposium on Theory of Computing;2022-06-09

3. Undecidability of the Spectral Gap;Forum of Mathematics, Pi;2022

4. Bounding the finite-size error of quantum many-body dynamics simulations;Physical Review Research;2021-08-16

5. Uncomputability of phase diagrams;Nature Communications;2021-01-19

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