Yamamoto Yoshiya, Yamaoka Hitoshi, Kawai Takuma, Yoshida Masahiro, Yamaura Jun-Ichi, Ishii Kenji, Onari Seiichiro, Uozumi Takayuki, Hariki Atsushi, Taguchi Munetaka, Kobayashi Kensuke, Lin Jung-Fu, Hiraoka Nozomu, Ishii Hirofumi, Tsuei Ku-Ding, Okanishi Hiroshi, Iimura Soshi, Matsuishi Satoru, Hosono Hideo, Mizuki Jun'ichiro
Graduate School of Science and Technology, Kwansei Gakuin University, Sanda, Hyogo 669-1337, Japan.
RIKEN SPring-8 Center, Sayo, Hyogo 679-5148, Japan.
J Phys Condens Matter. 2021 May 28;33(25). doi: 10.1088/1361-648X/abfaf4.
We examine electronic and crystal structures of iron-based superconductorsFeAsOH(= La, Sm) under pressure by means of x-ray absorption spectroscopy (XAS), x-ray emission spectroscopy (XES), and x-ray diffraction. In LaFeAsO the pre-edge peak on high-resolution XAS at the Fe-absorption edge gains in intensity on the application of pressure up to 5.7 GPa and it saturates in the higher pressure region. We found integrated-absolute difference values on XES for= La, corresponding to a spin state, decline on the application of pressure, and then it is minimized when theapproaches the maximum at around 5 GPa. In contrast, such the optimum value was not detected for= Sm. We reveal that the superconductivity is closely related to the lower spin state for= La unlike Sm case. We observed that As height from the Fe basal plane and As-Fe-As angle on the FeAstetrahedron for= La deviate from the optimum values of the regular tetrahedron in superconducting (SC) phase, which has been widely accepted structural guide to SC thus far. In contrast, the structural parameters were held near the optimum values up to ∼15 GPa for= Sm.
我们通过X射线吸收光谱(XAS)、X射线发射光谱(XES)和X射线衍射研究了铁基超导体FeAsOH(= La,Sm)在压力下的电子结构和晶体结构。在LaFeAsO中,铁吸收边处高分辨率XAS的前缘峰在施加高达5.7 GPa的压力时强度增加,并在更高压力区域达到饱和。我们发现,对于 = La,对应于自旋态的XES积分绝对差值在施加压力时下降,然后在压力接近5 GPa左右的最大值时最小化。相比之下,对于 = Sm未检测到这样的最佳值。我们揭示,与Sm情况不同,对于 = La,超导性与较低的自旋态密切相关。我们观察到,对于 = La,在超导(SC)相中,As从Fe基面的高度以及FeAs四面体上的As-Fe-As角度偏离了常规四面体的最佳值,而这是迄今为止被广泛接受的超导结构指南。相比之下,对于 = Sm,结构参数在高达约15 GPa时保持在最佳值附近。