论文标题
在具有非kramer的多极局部矩的非纤维液体行为和量子临界程度
Non-Fermi liquid behavior and quantum criticality in cubic heavy fermion systems with non-Kramers multipolar local moments
论文作者
论文摘要
在稀土金属系统中观察到了显着的非Fermi液体和量子关键行为,而非kramers局部矩支持许多不同的多极力矩。一个突出的示例是$ \ text {pr(ti,v)} _ {2} \ text {al} _ {20} $,其中$ \ text {pr}^{3+} $ ion允许的近距离极点和八度矩,但缺少二极极矩的非kramer doublet。先前的理论研究表明,这种不寻常的局部力矩带来了一个杂质的围绕问题,从而导致了新型的非Fermi液态状态。在这项工作中,我们研究了由rkky相互作用引起的非弗米液态和多极级相之间的竞争引起的量子关键行为。我们考虑了相应的Kondo晶格模型的本地版本,即Bose-Fermi Kondo模型。在这里,多极局部矩耦合到代表多极近代效应和rkky相互作用的费米和骨浴自由度。使用扰动重新归一化组(RG)研究最多两个循环顺序,我们发现非FERMI液体昆多固定点和四极有序的固定点之间的临界点。临界点描述了相应相变的量子临界行为,可以通过超声实验来测量的八极易感性中的高阶校正来区分。我们的结果表明,在多极大的费米昂系统中存在丰富的相位和量子关键行为的丰富扩展。
Notable non-Fermi liquid and quantum critical behaviors are observed in rare-earth metallic systems with non-Kramers local moments supporting a number of different multipolar moments. A prominent example is $\text{Pr(Ti,V)}_{2}\text{Al}_{20}$, where the non-Kramers doublet of the $\text{Pr}^{3+}$ ion allows quadrupolar and octupolar moments, but lacks a dipolar moment. Previous theoretical studies show that a single impurity Kondo problem with such an unusual local moment leads to novel non-Fermi liquid states. In this work, we investigate possible quantum critical behaviors arising from the competition between non-Fermi liquid states and multipolar-ordered phases induced by the RKKY interaction. We consider a local version of the corresponding Kondo lattice model, namely the Bose-Fermi Kondo model. Here, the multipolar local moments are coupled to fermionic and bosonic bath degrees of freedom representing the multipolar Kondo effect and RKKY interactions. Using a perturbative renormalization group (RG) study up to two loop order, we find critical points between non-Fermi liquid Kondo fixed points and a quadrupolar ordered fixed point. The critical points describe quantum critical behaviors at the corresponding phase transitions and can be distinguished by higher order corrections in the octupolar susceptibility that can be measured by ultrasound experiments. Our results imply the existence of a rich expansion of the phases and quantum critical behaviors in multipolar heavy fermion systems.