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Magnetic-field-induced electronic instability of Weyl-like fermions in compressed black phosphorus

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arxiv 2310.16311 v1 pith:BHMJMBJS submitted 2023-10-25 cond-mat.str-el cond-mat.mtrl-sci

Magnetic-field-induced electronic instability of Weyl-like fermions in compressed black phosphorus

classification cond-mat.str-el cond-mat.mtrl-sci
keywords electronicweyl-likecompressedfermionsinstabilitybandblackcorrelation
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Revealing the role of Coulomb interaction in topological semimetals with Dirac/Weyl-like band dispersion shapes a new frontier in condensed matter physics. Topological node-line semimetals (TNLSMs), anticipated as a fertile ground for exploring electronic correlation effects due to the anisotropy associated with their node-line structure, have recently attracted considerable attention. In this study, we report an experimental observation for correlation effects in TNLSMs realized by black phosphorus (BP) under hydrostatic pressure. By performing a combination of nuclear magnetic resonance measurements and band calculations on compressed BP, a magnetic-field-induced electronic instability of Weyl-like fermions is identified under an external magnetic field parallel to the so-called nodal ring in the reciprocal space. Anomalous spin fluctuations serving as the fingerprint of electronic instability are observed at low temperatures, and they are observed to maximize at approximately 1.0 GPa. This study presents compressed BP as a realistic material platform for exploring the rich physics in strongly coupled Weyl-like fermions.

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