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Research PaperResearchia:202607.21080

Universal Dynamic Scaling of 2D Quantum Ising Transition on the Fuzzy Sphere

Meng Zeng

Abstract

We revisit the problem of \textit{real-time} quantum dynamics of the paradigmatic two dimensional transverse-field Ising model using the recently developed fuzzy sphere regularization scheme. By linearly ramping the transverse field from the paramagnetic phase to criticality, we study the finite-time scaling behavior of the squared order parameter $\langle m_z^2 \rangle$, the excitation energy density $Q$, and the two-point correlation function of $m_z$. We establish numerically that, at interme...

Submitted: July 21, 2026Subjects: Quantum Physics; Quantum Computing

Description / Details

We revisit the problem of \textit{real-time} quantum dynamics of the paradigmatic two dimensional transverse-field Ising model using the recently developed fuzzy sphere regularization scheme. By linearly ramping the transverse field from the paramagnetic phase to criticality, we study the finite-time scaling behavior of the squared order parameter ⟨mz2⟩\langle m_z^2 \rangle, the excitation energy density QQ, and the two-point correlation function of mzm_z. We establish numerically that, at intermediate quench rate, ⟨mz2⟩\langle m_z^2 \rangle follows the conventional Kibble-Zurek prediction set by the critical exponents of the 33D Ising universality class, and the correlation function exhibits the expected exponential decay whose correlation length can be used to estimate the non-universal scaling coefficient in the freeze-out time/length. In contrast, the excitation energy density QQ does not reach the same scaling regime at available system sizes due to large effective finite-size gap from symmetry-enforced level sparsity in the energy spectrum. At slow quench rates the universal quasi-adiabatic scaling for both ⟨mz2⟩\langle m_z^2 \rangle and QQ is recovered. Since the fuzzy sphere construction can realize not only the Ising conformal field theory (CFT), but a broad family of (2+1)d(2+1)d CFTs, our results establish a route to the real-time critical dynamics of strongly coupled CFTs that are otherwise computationally challenging to study.


Source: arXiv:2607.18028v1 - http://arxiv.org/abs/2607.18028v1 PDF: https://arxiv.org/pdf/2607.18028v1 Original Link: http://arxiv.org/abs/2607.18028v1

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Date:
Jul 21, 2026
Topic:
Quantum Computing
Area:
Quantum Physics
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