Roh Chang Jae, Jung Myung-Chul, Kim Jeong Rae, Go Kyoung-June, Kim Jinkwon, Oh Ho Jun, Jo Yong-Ryun, Shin Yeong Jae, Choi Jeong Gi, Kim Bong-Joong, Noh Do Young, Choi Si-Young, Noh Tae Won, Han Myung Joon, Lee Jong Seok
Department of Physics and Photon Science, Gwangju Institute of Science and Technology (GIST), Gwangju, 61005, Republic of Korea.
Department of Physics, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, 34141, Republic of Korea.
Small. 2020 Oct;16(40):e2003055. doi: 10.1002/smll.202003055. Epub 2020 Sep 11.
ABO perovskite materials and their derivatives have inherent structural flexibility due to the corner sharing network of the BO octahedron, and the large variety of possible structural distortions and strong coupling between lattice and charge/spin degrees of freedom have led to the emergence of intriguing properties, such as high-temperature superconductivity, colossal magnetoresistance, and improper ferroelectricity. Here, an unprecedented polar ferromagnetic metal phase in SrRuO (SRO) thin films is presented, arising from the strain-controlled oxygen octahedral rotation (OOR) pattern. For compressively strained SRO films grown on SrTiO substrate, oxygen octahedral network relaxation is accompanied by structural phase separation into strained tetragonal and bulk-like orthorhombic phases, and the asymmetric OOR evolution across the phase boundary allows formation of the polar phase, while bulk metallic and ferromagnetic properties are maintained. From the results, it is expected that other oxide perovskite thin films will also yield similar structural environments with variation of OOR patterns, and thereby provide promising opportunities for atomic scale control of material properties through strain engineering.
ABO钙钛矿材料及其衍生物由于BO八面体的角共享网络而具有固有的结构灵活性,并且大量可能的结构畸变以及晶格与电荷/自旋自由度之间的强耦合导致了诸如高温超导、巨磁电阻和非本征铁电性等有趣特性的出现。在此,展示了SrRuO(SRO)薄膜中一种前所未有的极性铁磁金属相,它源于应变控制的氧八面体旋转(OOR)模式。对于生长在SrTiO衬底上的压缩应变SRO薄膜,氧八面体网络弛豫伴随着结构相分离成应变四方相和块状正交相,并且跨相界的不对称OOR演化允许形成极性相,同时保持块状金属和铁磁特性。从这些结果可以预期,其他氧化物钙钛矿薄膜也将随着OOR模式的变化产生类似的结构环境,从而通过应变工程为材料特性的原子尺度控制提供有前景的机会。