论文标题
各向异性自旋的自旋激发光谱 - $ 1/2 $三角形晶格Heisenberg Antiferromagnets
Spin Excitation Spectra of Anisotropic Spin-$1/2$ Triangular Lattice Heisenberg Antiferromagnets
论文作者
论文摘要
对动态激发的研究很困难,但对于理解在量子材料中发现的许多外来量子现象至关重要。对于高度沮丧的量子抗铁磁铁尤其如此,其动力学特性与基于自旋波或其他近似值做出的理论预测很大。在这里,我们使用最先进的Tensor Network Renoralization Grout方法进行了关于旋转$ 1/2 $三角形海森堡模型的动态相关函数的大规模数值计算。计算出的结果使我们能够在这个高度沮丧的量子系统中首次获得有关自旋激发光谱的性质的全面图片。它为$ \ rm ba_3cosb_2o_9 $的无弹性中子散射测量测量所披露的动力光谱的所有关键特征提供了定量说明,这揭示了低功能激励及其重新分配效果之间相互作用的重要性及其对低Energy Magnergy Magnon Bandon Bandon Bandon and High-Enerumssss and Enerumygy的重要性。我们在中间能量尺度中识别纵向希格斯模式,并预测沿三个主轴的光谱函数的能量和动量依赖性,可以通过极化的中子散射实验来验证,这些函数可以验证。此外,我们发现自旋激发光谱弱取决于抗铁磁相互作用的各向异性比率。
Investigation of dynamical excitations is difficult but crucial to the understanding of many exotic quantum phenomena discovered in quantum materials. This is particularly true for highly frustrated quantum antiferromagnets whose dynamical properties deviate strongly from theoretical predictions made based on the spin-wave or other approximations. Here we present a large-scale numerical calculation on the dynamical correlation functions of spin-$1/2$ triangular Heisenberg model using a state-of-the-art tensor network renormalization group method. The calculated results allow us to gain for the first time a comprehensive picture on the nature of spin excitation spectra in this highly frustrated quantum system. It provides a quantitative account for all the key features of the dynamical spectra disclosed by inelastic neutron scattering measurements for $\rm Ba_3CoSb_2O_9$, revealing the importance of the interplay between low- and high-energy excitations and its renormalization effect to the low-energy magnon bands and high-energy continuums. We identify the longitudinal Higgs modes in the intermediate-energy scale and predict the energy and momentum dependence of spectral functions along the three principal axes that can be verified by polarized neutron scattering experiments. Furthermore, we find that the spin excitation spectra weakly depend on the anisotropic ratio of the antiferromagnetic interaction.