超精细结构
化学
各向异性
凝聚态物理
谱线
碳-13核磁共振卫星
核磁共振谱数据库
核磁共振波谱
光谱学
结晶学
磁场
中子散射
基态
磁性结构
相变
核磁共振
散射
磁化
原子物理学
氟-19核磁共振
物理
立体化学
光学
量子力学
天文
作者
A.A. Gippius,A. V. Tkachev,С.В. Журенко,A. V. Mahajan,N. Büttgen,Martina Schaedler,I. O. Chernyavskii,И. В. Морозов,Saicharan Aswartham,B. Büchner,A. S. Moskvin
出处
期刊:Physical review
[American Physical Society]
日期:2020-12-14
卷期号:102 (21)
被引量:2
标识
DOI:10.1103/physrevb.102.214416
摘要
We report a detailed study of the ground state helical magnetic structure in monophosphide FeP by means of ${}^{31}$P NMR spectroscopy. We show that the zero-field NMR spectrum of the polycrystalline sample provides strong evidence of an anisotropic distribution of local magnetic fields at the P site with substantially lower anharmonicity than that found at the Fe site by M\"{o}ssbauer spectroscopy. From field-sweep ${}^{31}$P NMR spectra we conclude that a continuous spin-reorientation transition occurs in an external magnetic field range of 4 - 7 T, which is also confirmed by specific-heat measurements. We observe two pairs of magnetically inequivalent phosphorus positions resulting in a pronounced four-peak structure of the single crystal ${}^{31}$P NMR spectra characteristic of an incommensurate helimagnetic ground state. We revealed a spatial redistribution of local fields at the P sites caused by Fe spin-reorientation transition in high fields and developed an effective approach to account for it. We demonstrate that all observed ${}^{31}$P spectra can be treated within a model of an isotropic helix of Fe magnetic moments in the ($ab$)-plane with a phase shift of 36$^{\circ}$ and 176$^{\circ}$ between Fe1-Fe3 (Fe2-Fe4) and Fe1-Fe2 (Fe3-Fe4) sites, respectively, in accordance with the neutron scattering data.
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