论文标题
铁石墨烯中的铁磁诱导的北野效应具有磁杂质
Ferromagnetic induced Kondo effect in graphene with a magnetic impurity
论文作者
论文摘要
我们通过使用数值重新归一化的方法研究了铁石墨烯中磁adatom的多体效应。铁磁石墨烯的非平凡带分散产生了有趣的近代物理学,与常规铁磁材料不同。对于不符合的石墨烯中半充满杂质的杂质,铁磁的存在可以引起近托相关性,在费米能量附近的局部光谱函数中产生两个扭结结构。当局部职业的旋转分裂由外部磁场补偿时,两个近关系扭结合并成表征完全筛选的基态状态的完整的近关系共鸣。引人注目的是,我们发现所得的近藤温度随着狄拉克电子的自旋极化而单调增加,这违反了通常对铁磁带通常不利于近代相关性的常识。掺杂的铁磁石墨烯可以用作半金属,在费米能量处的状态密度线性地消失了一个自旋方向,但在相反方向上保持有限。在这个方案中,我们证明了在第一个自旋方向上发生的异常围绕共振,而另一个则完全不存在。
We investigate the many-body effects of a magnetic adatom in ferromagnetic graphene by using the numerical renormalization group method. The nontrivial band dispersion of ferromagnetic graphene gives rise to interesting Kondo physics different from that in conventional ferromagnetic materials. For a half-filled impurity in undoped graphene, the presence of ferromagnetism can bring forth Kondo correlations, yielding two kink structures in the local spectral function near the Fermi energy. When the spin splitting of local occupations is compensated by an external magnetic field, the two Kondo kinks merge into a full Kondo resonance characterizing the fully screened ground state. Strikingly, we find the resulting Kondo temperature monotonically increases with the spin polarization of Dirac electrons, which violates the common sense that ferromagnetic bands are usually detrimental to Kondo correlations. Doped ferromagnetic graphene can behave as half metals, where its density of states at the Fermi energy linearly vanishes for one spin direction but keeps finite for the opposite direction. In this regime, we demonstrate an abnormal Kondo resonance that occurs in the first spin direction, while completely absent in the other one.