Neural Network Quantum States for the Interacting Hofstadter Model with Higher Local Occupations and Long-Range Interactions
Fabian D\"oschl, Felix A. Palm, Hannah Lange, Fabian Grusdt, Annabelle, Bohrdt

TL;DR
This paper demonstrates that recurrent neural network quantum states can effectively simulate complex 2D quantum many-body systems, including the Hofstadter model with long-range interactions, revealing new phases and providing a scalable computational approach.
Contribution
It introduces a tensorized gated RNN approach for 2D quantum systems, extending neural network quantum states to models with higher local occupations and long-range interactions.
Findings
Successfully benchmarked RNN-NQS on the Hofstadter-Bose-Hubbard model.
Identified bubble and Wigner crystal phases in the Hofstadter model with long-range interactions.
Demonstrated scalability to 12x12 lattice systems.
Abstract
Due to their immense representative power, neural network quantum states (NQS) have gained significant interest in current research. In recent advances in the field of NQS, it has been demonstrated that this approach can compete with state-of-the-art numerical techniques, making NQS a compelling alternative, in particular for the simulation of large, two-dimensional quantum systems. In this study, we show that recurrent neural network (RNN) wave functions can be employed to study systems relevant to current research in quantum many-body physics. Specifically, we employ a 2D tensorized gated RNN to explore the bosonic Hofstadter model with a variable local Hilbert space cut-off and long-range interactions. At first, we benchmark the RNN-NQS for the Hofstadter-Bose-Hubbard (HBH) Hamiltonian on a square lattice. We find that this method is, despite the complexity of the wave function,…
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Taxonomy
TopicsOpinion Dynamics and Social Influence · Semiconductor Quantum Structures and Devices · Cold Atom Physics and Bose-Einstein Condensates
