Intrinsic defect intolerance in the ultra-pure metal PtSn
arXiv:2509.19807 · doi:10.1038/s43246-025-00964-3
Abstract
Ultra-pure materials are highly valued as model systems for the study of intrinsic physics. Frequently, however, the crystal growth of such pristine samples requires significant optimization. PtSn is a rare example of a material that naturally forms with a very low concentration of crystalline defects. Here, we investigate the origin of its low defect levels using a combination of electrical resistivity measurements, computational modeling, and scanning tunneling microscopy imaging. While typical flux-grown crystals of PtSn can have residual resistivity ratios (RRRs) that exceed 1000, we show that even at the most extreme formation speeds, the RRR cannot be suppressed below 100. This aversion to defect formation extends to both the Pt and Sn sublattices, which contribute with equal weight to the conduction properties. Direct local imaging with scanning tunneling microscopy further substantiates the rarity of point defects, while the prohibitive energetic cost of forming a defect is demonstrated through density functional theory calculations. Taken together, our results establish PtSn as an intrinsically defect-intolerant material, making it an ideal platform to study other properties of interest, including extreme magnetoresistance and topology.
References in corpus (26)
- Unconventional Superconductivity in Heavy Fermion UTe2
- Unexpected Dirac-Node Arc in the Topological Line-Node Semimetal HfSiS
- Single-component superconducting state in UTe2 at 2 K
- Extremely large magnetoresistance and Kohler's rule in PdSn4: a complete study of thermodynamic, transport and band structure properties
- On the metallic conductivity of the delafossites PdCoO2 and PtCoO2
- Spatially inhomogeneous superconductivity in UTe2
- Quasi-symmetry protected topology in a semi-metal
- Directional ballistic transport in the two-dimensional metal PdCoO2
- Hourglass Fermion Surface States in Stacked Topological Insulators with Nonsymmorphic Symmetry
- Symmetry-enforced band crossings in tetragonal materials: Dirac and Weyl degeneracies on points, lines, and planes
- Nonsymmorphic Symmetry-Protected Band Crossings in a Square-Net Metal PtPb
- Enhanced triplet superconductivity in next generation ultraclean UTe2
- Topologically-Driven Linear Magnetoresistance in Helimagnetic FeP
- Enhanced electron correlations in the new binary stannide PdSn4: a homologue of the Dirac nodal arc semimetal PtSn4
- Symmetry-enforced topological band crossings in orthorhombic crystals: Classification and materials discovery
- Crystal growth and annealing study of fragile, non-bulk superconductivity in YFeGe
- Evidence for bulk nodal loops and universality of Dirac-node arc surface states in ZrGeXc (Xc = S, Se, Te)
- Superconductivity in PtPb with Possible Nontrivial Band Topology
- Band structure, superconductivity and polytypism in AuSn
- Unconventional bulk superconductivity in YFeGe single crystals
- Weak Antilocalization and topological edge states in PdSn
- Ultrafast Carrier Relaxation Dynamics in a Nodal-Line Semimetal PtSn
- Evidence for large Rashba splitting in PtPb4 from Angle-Resolved Photoemission Spectroscopy
- IrF4: From Tetrahedral Compass Model to Topological Semimetal
- Linear Magnetoresistance and Type-I Superconductivity in -IrSn
- Low temperature phase of AuSn induced by the van der Waals interactions