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Using a Feedback-Based Quantum Algorithm to Analyze the Critical Properties of the ANNNI Model Without Classical Optimization

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arxiv 2406.17937 v2 pith:BUF562CE submitted 2024-06-25 quant-ph cond-mat.str-el

classification quant-phcond-mat.str-el
keywords quantumalgorithmannnimodelpropertiesstatesanalyzeclassical
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We investigate the critical properties of the Anisotropic Next-Nearest-Neighbor Ising (ANNNI) model using a feedback-based quantum algorithm (FQA). We demonstrate how this algorithm enables the computation of both ground and excited states without relying on classical optimization methods. By exploiting symmetries in the algorithm initialization, we show how targeted initial states can increase convergence and facilitate the study of excited states. Using this approach, we study the quantum phase transitions with the Finite Size Scaling method, analyze correlation functions through spin correlations in the ground state, and examine magnetic structure by calculating structure factors via the Discrete Fourier Transform. Our findings highlight FQA's potential as a versatile tool for studying not only the ANNNI model but also other quantum systems, providing insights into quantum phase transitions and the magnetic properties of complex spin models.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Variational Quantum Simulations of a Two-Dimensional Frustrated Transverse-Field Ising Model on a Trapped-Ion Quantum Computer

    quant-ph 2025-05 conditional novelty 6.0 of 10

    A 16-qubit trapped-ion processor, running classically pretrained VQE circuits without error mitigation, reproduces the ferromagnetic and stripe phases of a 2D frustrated transverse-field Ising model.

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