Lin X N, Zhou Z X, Durairaj V, Schlottmann P, Cao G
Department of Physics and Astronomy, University of Kentucky, Lexington, Kentucky 40506, USA.
Phys Rev Lett. 2005 Jul 1;95(1):017203. doi: 10.1103/PhysRevLett.95.017203. Epub 2005 Jun 30.
Transport and magnetic studies of Ca3Ru2O7 for temperatures ranging from 0.4 to 56 K and magnetic fields B up to 45 T lead to strikingly different behavior when the field is applied along the different crystal axes. A ferromagnetic (FM) state with full spin polarization is achieved for the B//a axis, but colossal magnetoresistance is realized only for the B//b axis. For the B//c axis, Shubnikov-de Haas oscillations are observed and followed by a less resistive state than that for B//a. Hence, in contrast with standard colossal magnetoresistive materials, the FM phase is the least favorable for electron hopping. These properties together with highly unusual spin-charge-lattice coupling near the Mott transition (48 K) are driven by the orbital degrees of freedom.
对Ca3Ru2O7在0.4至56 K温度范围以及高达45 T的磁场B下进行的输运和磁性研究表明,当磁场沿不同晶轴施加时,会出现截然不同的行为。对于B//a轴,可实现具有完全自旋极化的铁磁(FM)态,但仅在B//b轴时才会出现巨磁电阻。对于B//c轴,观察到舒布尼科夫-德哈斯振荡,随后出现比B//a轴时电阻更小的状态。因此,与标准巨磁电阻材料不同,FM相对电子跳跃最不利。这些特性以及在莫特转变(48 K)附近高度异常的自旋-电荷-晶格耦合是由轨道自由度驱动的。