论文标题
各向异性亚欧热旋转模型中量子相的丰富相图
Rich phase diagram of quantum phases in the anisotropic subohmic spin-boson model
论文作者
论文摘要
我们通过基于变异基质产物状态的数值精确方法研究了各向异性旋转玻色子模型(SBM)。通过计算几个可观察力,可以在各向异性耦合强度平面中发现丰富的相图。有三个不同的量子阶段:具有平等性的离域相(阶段I),一个具有奇数奇偶校验的离域相(II阶段),以及$ Z_2 $对称的局部相位(第III阶段),在量子三学分点上相交。这些阶段之间的竞争将给出相图的整体情况。对于骨浴光谱功能的较小功率,存在从I阶段I到III的量子相变(QPT)具有平均场临界行为,类似于各向同性SBM。具有三个不同阶段的新型相图可以在光谱函数的巨大功能下找到:对于高度各向异性的情况,该系统经历了从I期到II的QPT,然后通过一阶经历QPT,然后通过二阶从2阶到III,并增加耦合强度。对于低各向异性的情况,该系统仅与非均值临界指数从I期到第三阶段的连续QPT进行。有趣的是,在适度的各向异性下,系统将显示连续的QPT几次,但具有相同的关键指数。在光结合系统中发现了这种与同一局部阶段的不寻常的重新进入。目前关于各向异性SBM的研究可以为富含量子关键的途径打开途径。
We study the anisotropic spin-boson model (SBM) with the subohmic bath by a numerically exact method based on variational matrix product states. A rich phase diagram is found in the anisotropy-coupling strength plane by calculating several observables. There are three distinct quantum phases: a delocalized phase with even parity (phase I), a delocalized phase with odd parity (phase II), and a localized phase with broken $Z_2$ symmetry (phase III), which intersect at a quantum tricritical point. The competition between those phases would give overall picture of the phase diagram. For small power of the spectral function of the bosonic bath, the quantum phase transition (QPT) from phase I to III with mean-field critical behavior is present, similar to the isotropic SBM. The novel phase diagram full with three different phases can be found at large power of the spectral function: For highly anisotropic case, the system experiences the QPTs from phase I to II via 1st-order, and then to the phase III via 2nd-order with the increase of the coupling strength. For low anisotropic case, the system only experiences the continuous QPT from phase I to phase III with the non-mean-field critical exponents. Very interestingly, at the moderate anisotropy, the system would display the continuous QPTs for several times but with the same critical exponents. This unusual reentrance to the same localized phase is discovered in the light-matter interacting systems. The present study on the anisotropic SBM could open an avenue to the rich quantum criticality.