| Hauptseite > Publikationsdatenbank > Density-functional description of materials for topological qubits and superconducting spintronics > print |
| 001 | 1019945 | ||
| 005 | 20240226075231.0 | ||
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| 100 | 1 | _ | |a Rüßmann, Philipp |0 P:(DE-Juel1)157882 |b 0 |e Corresponding author |u fzj |
| 111 | 2 | _ | |a Spintronics XVI |c San Diego |d 2023-08-20 - 2023-08-25 |w United States |
| 245 | _ | _ | |a Density-functional description of materials for topological qubits and superconducting spintronics |
| 260 | _ | _ | |c 2023 |b SPIE |
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| 520 | _ | _ | |a Interfacing superconductors with magnetic or topological materials offers a playground where novel phenomena like topological superconductivity, Majorana zero modes, or superconducting spintronics are emerging. In this work, we discuss recent developments in the Kohn-Sham Bogoliubov-de Gennes method, which allows to perform material-specific simulations of complex superconducting heterostructures on the basis of density functional theory. As a model system we study magnetically-doped Pb. In our analysis we focus on the interplay of magnetism and superconductivity. This combination leads to Yu-Shiba-Rusinov (YSR) in-gap bound states at magnetic defects and the breakdown of superconductivity at larger impurity concentrations. Moreover, the influence of spin-orbit coupling and on orbital splitting of YSR states as well as the appearance of a triplet component in the order parameter is discussed. These effects can be exploited in S/F/S-type devices (S=superconductor, F=ferromagnet) in the field of superconducting spintronics. |
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| 700 | 1 | _ | |a Wegrowe, Jean-Eric |0 P:(DE-HGF)0 |b 7 |e Editor |
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| 773 | _ | _ | |a 10.1117/12.2678145 |
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