Tuning RScT (R = rare-earth and T = transition metal) materials to the edge of stability
ORAL
Abstract
We report here the interplay between the crystal structure and magnetism in the series of RTX materials (R = rare-earth, T = transition metal and X = p-block element). We demonstrate that the CeScSi-type adopted by GdScGe and CeFeSi-type by GdScSb coexist over a limited range of compositions. Sb for Ge substitutions in GdScGe result in an anisotropic expansion of the unit cell of the parent that is most pronounced along the c-axis. Such expansion acts as the driving force for the instability of the double layer CeScSi-type structure of GdScGe. Extensive, yet limited Sb substitutions lead to a strong reduction of the Curie temperature, but without affecting the saturation magnetization. At xSb = 0.7, the appearance of an antiferromagnetic (AFM) phase coincides with the CeFeSi-type . The electronic structure calculations for xSb = 0.75 indicate that the key factor in the conversion of the ferromagnetic CeScSi-type to the antiferromagnetic CeFeSi-type structure is the disappearance of the induced magnetic moment on Sc.
*This work is supported by the USDOE, Office of Science, Basic Energy Sciences, Materials Science and Engineering Division. The research was performed at Ames Laboratory, which is operated for the USDOE by Iowa State University under contract # DE-AC02-07CH11358.
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Presenters
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Durga Paudyal
- Ames Laboratory, U.S. Department of Energy, Iowa State University
- CMI, Ames Laboratory, Iowa State University