Hsu Pin-Jui, Kügel Jens, Kemmer Jeannette, Parisen Toldin Francesco, Mauerer Tobias, Vogt Matthias, Assaad Fakher, Bode Matthias
Physikalisches Institut, Experimentelle Physik II, Universität Würzburg, Am Hubland, D-97074 Würzburg, Germany.
Institut für Theoretische Physik und Astrophysik, Universität Würzburg, 97074 Würzburg, Germany.
Nat Commun. 2016 Mar 14;7:10949. doi: 10.1038/ncomms10949.
Phase coexistence phenomena have been intensively studied in strongly correlated materials where several ordered states simultaneously occur or compete. Material properties critically depend on external parameters and boundary conditions, where tiny changes result in qualitatively different ground states. However, up to date, phase coexistence phenomena have exclusively been reported for complex compounds composed of multiple elements. Here we show that charge- and magnetically ordered states coexist in double-layer Fe/Rh(001). Scanning tunnelling microscopy and spectroscopy measurements reveal periodic charge-order stripes below a temperature of 130 K. Close to liquid helium temperature, they are superimposed by ferromagnetic domains as observed by spin-polarized scanning tunnelling microscopy. Temperature-dependent measurements reveal a pronounced cross-talk between charge and spin order at the ferromagnetic ordering temperature about 70 K, which is successfully modelled within an effective Ginzburg-Landau ansatz including sixth-order terms. Our results show that subtle balance between structural modifications can lead to competing ordering phenomena.
在强关联材料中,当几种有序态同时出现或相互竞争时,相共存现象已得到深入研究。材料特性严重依赖于外部参数和边界条件,微小的变化会导致性质截然不同的基态。然而,迄今为止,相共存现象仅在由多种元素组成的复杂化合物中被报道。在此我们表明,双层Fe/Rh(001)中电荷有序态和磁有序态共存。扫描隧道显微镜和能谱测量揭示了在130 K以下存在周期性电荷序条纹。接近液氦温度时,如自旋极化扫描隧道显微镜所观察到的,它们被铁磁畴叠加。温度相关测量揭示了在约70 K的铁磁有序温度下,电荷序和自旋序之间存在明显的相互作用,这在包含六阶项的有效金兹堡 - 朗道近似中成功建模。我们的结果表明,结构修饰之间的微妙平衡可导致相互竞争的有序现象。