Extended Electron Saddle Point Singularities and the Anomalous Isotope Effect in Zr, Nb<sub>3</sub>Sn, and YBa<sub>2</sub>Cu<sub>3</sub>O<sub>7</sub>
ORAL
Abstract
Anomalously small isotope effect in some high and low Tc superconductors such as Zr, Nb3Sn, and YBa2Cu3O7 (YBCO) created a great challenge for understanding. It has been shown by experiments and first-principles quantum calculations that there exist extended saddle point singularities around the Fermi levels in the electronic structures of these materials. In this work, a method is implemented by integrating first-principles quantum computations of electronic structures of the materials into the microscopic quantum theory of many-body physics for superconductivity. The aim is to seek a unified methodology based on first-principles microscopic quantum theory to calculate the electronic and superconducting properties of these materials. It is demonstrated from first-principles that the extended saddle point singularities around the Fermi levels in Zr, Nb3Sn, and YBCO strongly correlate to the anomalous isotope effect in these superconductors.
*The research work was sponsored in part by NSF (award # 2216805), ARO (award # W911NF2210099), and ONR (award# N00014-22-1-2744).
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Publication: [1]. Guang-Lin Zhao, "Sharp electronic structure and anomalous isotope effect in Zr, Nb3Sn,and YBa2Cu3O7", Phys. Status Solidi B 251, No. 8, 1531–1538 (2014)/DOI 10.1002/pssb.201451112.
Presenters
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Guang-Lin Zhao
- Southern University and A&M College