Modelling of triplet proximity effects in conically magnetized NbN/Ho/NbN Josephson junctions

Abstract This study presents a theoretical analysis of the proximity effect in superconductor/ferromagnet (S/F) hybrid structures, specifically focusing on NbN/Ho/NbN and NbN/F1/Ho/F2/NbN multilayers. We use self-consistent solutions of the Usadel equations to investigate the energy-resolved density...

Full description

Saved in:
Bibliographic Details
Main Authors: Asif Majeed, Harkirat Singh
Format: Article
Language:English
Published: Nature Portfolio 2025-07-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-025-88556-6
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1849238486783098880
author Asif Majeed
Harkirat Singh
author_facet Asif Majeed
Harkirat Singh
author_sort Asif Majeed
collection DOAJ
description Abstract This study presents a theoretical analysis of the proximity effect in superconductor/ferromagnet (S/F) hybrid structures, specifically focusing on NbN/Ho/NbN and NbN/F1/Ho/F2/NbN multilayers. We use self-consistent solutions of the Usadel equations to investigate the energy-resolved density of states (DOS) and superconducting critical temperature ( $$T_c$$ T c ) as functions of ferromagnetic layer thickness, misorientation angles, interfacial roughness, and phase differences between the superconducting NbN layers. The thickness of the ferromagnetic Ho layer is shown to significantly influence superconducting properties, including a reduction in the superconducting gap due to the inverse proximity effect. For thin Ho layers, both DOS and $$T_c$$ T c are slightly suppressed, while intermediate thicknesses exhibit non-monotonic behavior, corresponding to complex superconducting-ferromagnetic interactions, and thicker Ho layers lead to diminished superconductivity. The interplay between the magnetization inhomogeneity in Ho and the phase coherence of the superconducting order parameter is emphasized, revealing the appearance of zero-energy peaks (ZEPs) in the DOS. These unique features, such as controllable singlet and triplet states, are sensitive to the phase difference between the NbN electrodes. Additionally, triplet generation is also sensitive to the misalignment angle between the F1, F2, and Ho layers. The phase difference modulates DOS and $$T_c$$ T c , with certain alignments favoring triplet pairing, enabling external control over triplet generation similar to a spin valve device. Furthermore, the effect of interfacial roughness is systematically analyzed, with its implications for experimental realizations providing practical insights into optimizing S/F systems for future applications in superconducting spintronics. Our findings offer a comprehensive understanding of the proximity effect in S/F hybrid structures and its potential for tailored superconducting spintronic applications.
format Article
id doaj-art-c45db8b15c344e17b0319d32f3e8c82d
institution Kabale University
issn 2045-2322
language English
publishDate 2025-07-01
publisher Nature Portfolio
record_format Article
series Scientific Reports
spelling doaj-art-c45db8b15c344e17b0319d32f3e8c82d2025-08-20T04:01:35ZengNature PortfolioScientific Reports2045-23222025-07-0115111810.1038/s41598-025-88556-6Modelling of triplet proximity effects in conically magnetized NbN/Ho/NbN Josephson junctionsAsif Majeed0Harkirat Singh1Department of Physics, National Institute of TechnologyDepartment of Physics, National Institute of TechnologyAbstract This study presents a theoretical analysis of the proximity effect in superconductor/ferromagnet (S/F) hybrid structures, specifically focusing on NbN/Ho/NbN and NbN/F1/Ho/F2/NbN multilayers. We use self-consistent solutions of the Usadel equations to investigate the energy-resolved density of states (DOS) and superconducting critical temperature ( $$T_c$$ T c ) as functions of ferromagnetic layer thickness, misorientation angles, interfacial roughness, and phase differences between the superconducting NbN layers. The thickness of the ferromagnetic Ho layer is shown to significantly influence superconducting properties, including a reduction in the superconducting gap due to the inverse proximity effect. For thin Ho layers, both DOS and $$T_c$$ T c are slightly suppressed, while intermediate thicknesses exhibit non-monotonic behavior, corresponding to complex superconducting-ferromagnetic interactions, and thicker Ho layers lead to diminished superconductivity. The interplay between the magnetization inhomogeneity in Ho and the phase coherence of the superconducting order parameter is emphasized, revealing the appearance of zero-energy peaks (ZEPs) in the DOS. These unique features, such as controllable singlet and triplet states, are sensitive to the phase difference between the NbN electrodes. Additionally, triplet generation is also sensitive to the misalignment angle between the F1, F2, and Ho layers. The phase difference modulates DOS and $$T_c$$ T c , with certain alignments favoring triplet pairing, enabling external control over triplet generation similar to a spin valve device. Furthermore, the effect of interfacial roughness is systematically analyzed, with its implications for experimental realizations providing practical insights into optimizing S/F systems for future applications in superconducting spintronics. Our findings offer a comprehensive understanding of the proximity effect in S/F hybrid structures and its potential for tailored superconducting spintronic applications.https://doi.org/10.1038/s41598-025-88556-6
spellingShingle Asif Majeed
Harkirat Singh
Modelling of triplet proximity effects in conically magnetized NbN/Ho/NbN Josephson junctions
Scientific Reports
title Modelling of triplet proximity effects in conically magnetized NbN/Ho/NbN Josephson junctions
title_full Modelling of triplet proximity effects in conically magnetized NbN/Ho/NbN Josephson junctions
title_fullStr Modelling of triplet proximity effects in conically magnetized NbN/Ho/NbN Josephson junctions
title_full_unstemmed Modelling of triplet proximity effects in conically magnetized NbN/Ho/NbN Josephson junctions
title_short Modelling of triplet proximity effects in conically magnetized NbN/Ho/NbN Josephson junctions
title_sort modelling of triplet proximity effects in conically magnetized nbn ho nbn josephson junctions
url https://doi.org/10.1038/s41598-025-88556-6
work_keys_str_mv AT asifmajeed modellingoftripletproximityeffectsinconicallymagnetizednbnhonbnjosephsonjunctions
AT harkiratsingh modellingoftripletproximityeffectsinconicallymagnetizednbnhonbnjosephsonjunctions