Discovery of a Superconducting Cu-Bi Intermetallic Compound by High-Pressure Synthesis
Overview
Authors
Affiliations
A new intermetallic compound, the first to be structurally identified in the Cu-Bi binary system, is reported. This compound is accessed by high-pressure reaction of the elements. Its detailed characterization, physical property measurements, and ab initio calculations are described. The commensurate crystal structure of Cu Bi is a unique variation of the NiAs structure type. Temperature-dependent electrical resistivity and heat capacity measurements reveal a bulk superconducting transition at T =1.36 K. Density functional theory calculations further demonstrate that Cu Bi can be stabilized (relative to decomposition into the elements) at high pressure and temperature. These results highlight the ability of high-pressure syntheses to allow for inroads into heretofore-undiscovered intermetallic systems for which no thermodynamically stable binaries are known.
Inter-element miscibility driven stabilization of ordered pseudo-binary alloy.
Matsumoto K, Sato R, Tatetsu Y, Takahata R, Yamazoe S, Yamauchi M Nat Commun. 2022; 13(1):1047.
PMID: 35210441 PMC: 8873263. DOI: 10.1038/s41467-022-28710-0.
Cui M, Yang C, Hwang S, Yang M, Overa S, Dong Q Sci Adv. 2022; 8(4):eabm4322.
PMID: 35089780 PMC: 8797181. DOI: 10.1126/sciadv.abm4322.
Prediction of superconducting iron-bismuth intermetallic compounds at high pressure.
Amsler M, Naghavi S, Wolverton C Chem Sci. 2017; 8(3):2226-2234.
PMID: 28507678 PMC: 5408563. DOI: 10.1039/c6sc04683e.
Walsh J, Clarke S, Meng Y, Jacobsen S, Freedman D ACS Cent Sci. 2016; 2(11):867-871.
PMID: 27924316 PMC: 5126710. DOI: 10.1021/acscentsci.6b00287.