论文标题
Fe5gete2单晶的物理特性和热稳定性
Physical properties and thermal stability of Fe5GeTe2 single crystals
论文作者
论文摘要
研究了Fe5gete2单晶(具有X〜0.3的Fe5-Xgete2)的磁性和传输性能,并探讨了热处理的影响。先前已显示出从生长温度的淬灭晶体产生亚稳态,在冷却低于100K时,在冷却时经历了强烈的滞后一阶转变。一阶过渡会影响磁性特性,从而从270 k到310k的Curie温度T_C提高。在目前的工作中,T_HT〜550K已被确定为通过淬火获得亚稳态晶体的温度。衍射实验揭示了在此温度下发生的结构变化,当样品缓慢冷却到该温度范围时,就会发生明显的堆叠障碍。无论晶体的热历史如何,传输特性都被证明是相似的。电荷载体的散射似乎是由Fe(1)sublattice上波动的矩占主导地位的,Fe(1)的散射保持动态至100-120k。在120k附近观察到磁势和异常大厅电阻中的最大值。大厅和Seebeck系数也受到Fe(1)Sublattice的磁性顺序的影响。数据表明,电子和孔都会导致传导高于120k,但是当所有Fe Sublattices磁性排序时,该电子在较低的温度下占主导地位。这项研究表明,Fe5-Xgete2中磁性和转运性能的强耦合,并补充了先前的结果,这些结果表明,作为Fe(1)矩序的强磁弹性耦合。此手稿的发表版本为doi:10.1103/physrevmaterials.3.104401(2019)
The magnetic and transport properties of Fe-deficient Fe5GeTe2 single crystals (Fe5-xGeTe2 with x~0.3) were studied and the impact of thermal processing was explored. Quenching crystals from the growth temperature has been previously shown to produce a metastable state that undergoes a strongly hysteretic first-order transition upon cooling below ~100K. The first-order transition impacts the magnetic properties, yielding an enhancement in the Curie temperature T_C from 270 to 310K. In the present work, T_HT ~550K has been identified as the temperature above which metastable crystals are obtained via quenching. Diffraction experiments reveal a structural change at this temperature, and significant stacking disorder occurs when samples are slowly cooled through this temperature range. The transport properties are demonstrated to be similar regardless of the crystal's thermal history. The scattering of charge carriers appears to be dominated by moments fluctuating on the Fe(1) sublattice, which remain dynamic down to 100-120K. Maxima in the magnetoresistance and anomalous Hall resistance are observed near 120K. The Hall and Seebeck coefficients are also impacted by magnetic ordering on the Fe(1) sublattice. The data suggest that both electrons and holes contribute to conduction above 120K, but that electrons dominate at lower temperature when all of the Fe sublattices are magnetically ordered. This study demonstrates a strong coupling of the magnetism and transport properties in Fe5-xGeTe2 and complements the previous results that demonstrated strong magnetoelastic coupling as the Fe(1) moments order. The published version of this manuscript is DOI:10.1103/PhysRevMaterials.3.104401 (2019)