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Visualizing the Odd-Parity Superconducting Order Parameter and Its Quasiparticle Surface Band in UTe2
Shuqiu Wang1,2, J C Séamus Davis2,3
1H. H. Wills Physics Laboratory, University of Bristol, Bristol, BS8 1TL UK.
This study reveals that UTe2 exhibits non-chiral intrinsic topological superconductivity (ITS). This finding is based on observing unique surface states and their behavior under specific experimental conditions, confirming the material's topological nature.
Area of Science:
- Condensed Matter Physics
- Materials Science
- Quantum Materials
Background:
- Topological superconductivity is a quantum state with exotic properties.
- Intrinsic topological superconductivity (ITS) requires specific order parameters.
- Identifying ITS in materials like UTe2 is crucial for understanding novel quantum phenomena.
Purpose of the Study:
- To experimentally identify and characterize intrinsic topological superconductivity (ITS) in UTe2.
- To distinguish between chiral and non-chiral ITS order parameters using surface-sensitive techniques.
- To investigate the nature of the topological quasiparticle surface band (QSB) in UTe2.
Main Methods:
- Utilized s-wave superconductive scan-tip scanning tunneling microscopy (STM) for high-resolution surface imaging.
- Employed Andreev spectroscopy to probe the electronic states at the superconductor-insulator interface.
- Performed quasiparticle interference (QPI) imaging to map the dispersion of surface states.
Main Results:
- Observed an intense zero-energy Andreev conductance maximum at the UTe2 (0-11) surface, indicative of a QSB.
- Demonstrated that the superconductivity in UTe2 is non-chiral, evidenced by the evolution of the Andreev peak.
- Visualized QPI patterns of the QSB, revealing a characteristic sextet of interference wavevectors within the superconducting gap.
Conclusions:
- The experimental findings strongly support a non-chiral, spin-triplet, time-reversal conserving, odd-parity, a-axis nodal, B3u symmetry for the bulk superconducting order parameter in UTe2.
- The identified topological quasiparticle surface band (QSB) serves as a key identifier for nodal intrinsic topological superconductivity (ITS).
- This work provides critical experimental evidence for topological superconductivity in UTe2, opening avenues for future research in topological quantum computation.
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