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Bing-Xin Liu

Publications and source records attributed to Bing-Xin Liu.

2 recordsLinked to original sources

Hadronic photon correction to $γ^{\ast} γ\to f_{2}(1270)$ at next-to-leading order

Within the framework of light-cone sum rules, we calculate the hadronic photon corrections to the $γ^*γ\to f_2(1270)$ transition form factors induced by the leading-twist photon distribution amplitude of the real photon. We establish the factorization formula for the vacuum-to-photon correlation function at next-to-leading order in $α_s$, and extract the perturbative hard matching coefficients by applying the method of regions. The parametrically large logarithms appearing in the hard functions are resummed to next-to-leading logarithmic accuracy by solving the two-loop evolution equation for the corresponding light-ray tensor operator. Combining the resulting light-cone sum rules with the known leading-power contributions from QCD collinear factorization, we provide updated theoretical predictions for the three helicity form factors $T_0(Q^2)$, $T_1(Q^2)$ and $T_2(Q^2)$, including an estimate of the theoretical uncertainties.

hep-ph

Prediction of two-dimensional ferromagnetic VO$_2$ layers in the hexagonal and tetragonal phases

Ferromagnetism in the two-dimensional materials is of great significance and has become an emerging topic. The ferromagnetic VS$_2$ and VSe$_2$ monolayers have been experimentally synthesized, and O element belongs to the same group as S and Se elements. Thus, whether there exists the ferromagnetic VO$_2$ monolayer is a necessary and urgent question. Using first-principles methods within the framework of density functional theory, we predict two kinds of VO$_2$ monolayers with the hexagonal and tetragonal phases and investigate their structural stability, electronic and magnetic properties, and ferromagnetic phase transition. The computational results demonstrate that the two two-dimensional structural phases are stable and possess the ferromagnetic ground states, and they are half-metal with large energy gap. In addition, by solving the Heisenberg model with the Monte Carlo simulation methods, the ferromagnetic phase transition at 270 K in the hexagonal phase is determined. These findings not only predict a new type of intrinsic half-metallic ferromagnet with a high Curie temperature but also fill in an important gap that are lacking in the series of studies from VO$_2$, VS$_2$, VSe$_2$, to VTe$_2$.

cond-mat.mtrl-sci