论文标题

铁磁Ni-V合金中短距离磁相关的演变

Evolution of short-range magnetic correlations in ferromagnetic Ni-V alloys

论文作者

Bhattarai, Shiva, Adawi, Hind, Lussier, Jean-Guy, Gebretsadik, Adane, Dzero, Maxim, Krycka, Kathryn L., Schroeder, Almut

论文摘要

我们通过实验研究如何在靠近铁磁量子临界点的二元合金中发展磁相关性,并具有小角度中子散射(SAN)。将巡回的铁磁体镍与钒合金合成后,不断抑制铁磁秩序。当钒浓度达到XC = 0.116的临界值时,临界温度TC消失,表明将铁磁和顺磁性相分开的量子临界点。较早的磁化和$μ$ SR数据表明,Ni(1-X)V(X)中存在磁不均匀性,尤其是识别接近XC的磁簇,在顺磁性和铁磁性方面,具有非繁琐的动力学特性[R. R. Wang等人,物理。莱特牧师。 118,267202(2017)]。我们介绍了SANS研究的结果,对X = 0.10和X = 0.11的多晶Ni(1-X)V(1-X)V(X)样品进行了完全极化分析,临界温度低于50 k的较低临界温度。对于接近XC的NI-V样品,我们在低温耐高温下均在Nananomer-Scale-Scale持续存在的两个Ni-V样品中,我们都在XC中找到了等值磁性短距离相关性。它们在较高的磁场中逐渐被抑制。另外,在TC下方存在远程有序磁域的特征。这些磁性簇嵌入铁磁有序相中的比例朝XC生长,并且与磁化磁化的群集分数估计和$μ$ $ SR数据非常吻合。我们的SANS研究提供了对靠近量子关键点的铁磁合金中不均匀性的性质的新见解。

We experimentally study how the magnetic correlations develop in a binary alloy close to the ferromagnetic quantum critical point with small-angle neutron scattering (SANS). Upon alloying the itinerant ferromagnet nickel with vanadium, the ferromagnetic order is continuously suppressed. The critical temperature Tc vanishes when vanadium concentrations reach the critical value of xc=0.116 indicating a quantum critical point separating the ferromagnetic and paramagnetic phases. Earlier magnetization and $μ$SR data have indicated the presence of magnetic inhomogeneities in Ni(1-x)V(x) and, in particular, recognize the magnetic clusters close to xc, on the paramagnetic and on the ferromagnetic sides with nontrivial dynamical properties [R. Wang et al., Phys. Rev. Lett. 118, 267202 (2017)]. We present the results of SANS study with full polarization analysis of polycrystalline Ni(1-x)V(x) samples with x=0.10 and x=0.11 with low critical temperatures Tc below 50 K. For both Ni-V samples close to xc we find isotropic magnetic short-range correlations in the nanometer-scale persisting at low temperatures. They are suppressed gradually in higher magnetic fields. In addition, signatures of long-range ordered magnetic domains are present below Tc. The fraction of these magnetic clusters embedded in the ferromagnetic ordered phase grows towards xc and agrees well with the cluster fraction estimate from the magnetization and $μ$SR data. Our SANS studies provide new insights into the nature of the inhomogeneities in a ferromagnetic alloy close to a quantum critical point.

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