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High pressure induced superconductivity and chirality-neutral Fermi surface in SrSi2

M.-Y. Yao, J. Noky, Q.-G. Mu, K. Manna, N. Kumar, V. N. Strocov, C. Shekhar, S. Medvedev, Y. Sun, C. Felser

DOI 10.1103/PhysRevB.110.224514 · Physical Review B

T1

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Abstract

In this study, we investigate the electronic structure and topological properties of the compound SrSi2 using angle-resolved photoemission spectroscopy (ARPES), electrical transport measurements, and ab initio calculations. In contrast to recent theoretical predictions that SrSi2 is a Weyl semimetal with robust Weyl nodes and Fermi arcs, our ARPES measurements on undoped and Ca-doped SrSi2 single crystals show no evidence of the predicted Weyl fermions or Fermi arcs at ambient pressure. Instead, ARPES and transport data show that SrSi2 is a narrow-gap semiconductor at ambient conditions. Our hybrid functional calculations also find a small band gap, in agreement with experiments. However, by applying external pressure, we induce a topological phase transition where the electronic bands overlap and Weyl nodes appear, as confirmed by transport measurements and calculations. Interestingly, we also observe a pressure-induced superconducting transition above 20 GPa. Our results establish SrSi2 as a platform to study the interplay between topological states and superconductivity driven by external pressure. Importantly, our results challenge the previously predicted intrinsic Weyl semimetallic nature of SrSi2 and highlight the need for combined experimental and advanced computational approaches to correctly describe the complex electronic structures in topological materials.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
SrSi2

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2.221.8 GPaonset
SrSi2

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1.827.4 GPazero_resistance
SrSi2

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528.7 GPaonset
SrSi2

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334.1 GPazero_resistance

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