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Autor principal: Jiang, Fu-Jiun
Formato: Preprint
Publicado: 2025
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Acceso en línea:https://arxiv.org/abs/2501.15234
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author Jiang, Fu-Jiun
author_facet Jiang, Fu-Jiun
contents By simulating a two-dimensional (2D) dimerized spin-1/2 antiferromagnet with the quantum Monte Carlo method, the numerical values of two universal quantities associated with the quantum critical regime (QCR), namely $S(π,π)/\left(χ_s T\right)$ and $c/\left(Tξ\right)$, are determined. Here $S(π,π)$, $χ_s$, $c$, $ξ,$ and $T$ are the staggered structure factor, the staggered susceptibility, the spin-wave velocity, the correlation length, and the temperature, respectively. For other QCR universal quantities, such as the Wilson ratio $W$ and $χ_u c^2/T$ ($χ_u$ is the uniform susceptibility), it is shown that the addition of higher order theoretical contribution makes the agreement between the numerical and the analytic results worse. We find that the same scenario applies to $S(π,π)/\left(χ_s T\right)$ and $c/\left(Tξ\right)$ as well. Specifically, our calculations lead to $S(π,π)/\left(χ_s T\right)\sim 1.073$ and $c/\left(Tξ\right)\sim 0.963$ which are in better consistence with the leading theoretical predictions than those with the next-to-leading order terms. The presented outcome here as well as those in some relevant literature suggest that it is desirable to conduct a refinement of the analytic calculation to resolve the puzzle of why the inclusion of higher order terms leads to less accurate predictions for these universal quantities.
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publishDate 2025
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spellingShingle A Monte Carlo examination for the numerical values of universal quantities in spatial dimension two
Jiang, Fu-Jiun
Strongly Correlated Electrons
High Energy Physics - Lattice
By simulating a two-dimensional (2D) dimerized spin-1/2 antiferromagnet with the quantum Monte Carlo method, the numerical values of two universal quantities associated with the quantum critical regime (QCR), namely $S(π,π)/\left(χ_s T\right)$ and $c/\left(Tξ\right)$, are determined. Here $S(π,π)$, $χ_s$, $c$, $ξ,$ and $T$ are the staggered structure factor, the staggered susceptibility, the spin-wave velocity, the correlation length, and the temperature, respectively. For other QCR universal quantities, such as the Wilson ratio $W$ and $χ_u c^2/T$ ($χ_u$ is the uniform susceptibility), it is shown that the addition of higher order theoretical contribution makes the agreement between the numerical and the analytic results worse. We find that the same scenario applies to $S(π,π)/\left(χ_s T\right)$ and $c/\left(Tξ\right)$ as well. Specifically, our calculations lead to $S(π,π)/\left(χ_s T\right)\sim 1.073$ and $c/\left(Tξ\right)\sim 0.963$ which are in better consistence with the leading theoretical predictions than those with the next-to-leading order terms. The presented outcome here as well as those in some relevant literature suggest that it is desirable to conduct a refinement of the analytic calculation to resolve the puzzle of why the inclusion of higher order terms leads to less accurate predictions for these universal quantities.
title A Monte Carlo examination for the numerical values of universal quantities in spatial dimension two
topic Strongly Correlated Electrons
High Energy Physics - Lattice
url https://arxiv.org/abs/2501.15234