High-Pressure Structure, Equation of State, and superconductivity of Bi0.5Sb1.5Te3: Observation of a Novel Bi-Sb-Te Alloy
ORAL
Abstract
Post-transition metal and metalloid chalcogenides from A2B3 (A = Sb, Bi, B = S, Se, Te) is a unique family of materials known to show superconductivity and electronic topological transitions at high pressure. These materials are also of interest due to their thermoelectric properties. Bi0.5Sb1.5Te3 from the A2B3 family is found to show superconductivity with Tc of up to ~9 K under pressure. However, its structural and dynamical properties under pressure have not been fully explored. Here, we investigate the structural and dynamics properties of Bi0.5Sb1.5Te3 with x-ray diffraction, Raman spectroscopy, and infrared spectroscopy up to 50 GPa. Structural phase transitions observed by X-ray diffraction are consistent with spectroscopic results measured under pressure. An Electronic topological transition inferred at lower pressure can be correlated with Raman measurements. Notably, above ~25 GPa the Bi0.5Sb1.5Te3 forms a body-centered cubic Bi-Sb-Te alloy with a superconducting Tc near 9 K. Other compounds within the A2B3 family are reported to have high-pressure phases with different identified symmetries. These discrepancies are discussed using Raman and infrared measurements.
*This research was supported by the NSF (DMR-2104881) and DOE-NNSA through the Chicago/DOE Alliance Center (DE-NA0003975)
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Presenters
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Clayton P Halbert
- University of Illinois at Chicago