Hybrid surface waves at microwave frequencies in superconductor-dielectric layered structures

dc.contributor.authorQasymeh,Montasir
dc.date.accessioned2026-01-14T08:44:20Z
dc.date.available2026-01-14T08:44:20Z
dc.date.issued2025-10-28
dc.descriptionSurface waves exist in various physical forms and have distinct applications. A prominent example is surface plasmon polaritons (SPPs), which occur at the metal–dielectric interface1,2 and enable strong confinement below the diffraction limit in the terahertz frequency range. Several advances based on SPPs have been reported, including the merging of photonics and electronics at nanoscale dimensions,3 sensing and detection of chemical and biological species,4 a four-peak and high-angle tilted-insensitive surface plasmon resonance graphene absorber,5 multifunctional metasurfaces,6 methane concentration sensors with enhanced sensitivity,7 liquid-analyte biosensors,8 and ultrasensitive gas detectors,9 to mention just a few examples.
dc.description.abstractSurface waves occur at the interfaces between distinct media, with several types identified across different paradigms, including electromagnetic and mechanical surface waves. In this work, I thoroughly investigate the occurrence of microwave surface waves at the interface between superconducting and dielectric layers. I theoretically demonstrate that a hybrid surface wave, combining electromagnetic (EM) fields and supercurrent vortices, propagates along the superconductor–dielectric interface. The associated EM fields occupy the dielectric layer, satisfying Maxwell’s equations, while the supercurrent vortices penetrate the superconducting layer, governed by Ampèr’s and London’s equations. Furthermore, I show that an extended superconductor–dielectric–superconductor (S–D–S) nanostructure can support strong nanoconfinement of these hybrid microwave surface waves, reaching spatial dimensions well below the diffraction limit. The propagating modes exhibit frequency-independent dispersion, enabling high-capacity data transmission. In addition to being intrinsically lossless, these modes can be slowed by carefully tuning the nanostructure dimensions. Importantly, our investigations reveal two key findings: (1) the divergence of the supercurrent vortices is zero, indicating no net charge (Cooper pair) transport associated with the propagating modes and (2) the energy flow of the propagating modes is carried by the associated EM fields. Hence, the proposed surface wave scheme offers a promising route for long-coherence signal transmission in superconducting circuits. I note that this paradigm of microwave surface waves has the potential to enable a new class of superconducting devices. Keywords Superconducting devices, Superconductors, Supercurrent, Diffraction optics, Maxwell equations, Wave propagation, Microwave frequencies, Data processing, Signal processing, Surface waves
dc.identifier.citationQasymeh, M. (2025). Hybrid surface waves at microwave frequencies in superconductor–dielectric layered structures. Journal of Applied Physics, 138(16).
dc.identifier.doihttps://doi.org/10.1063/5.0294042
dc.identifier.urihttps://repository.adu.ac.ae/handle/1/7981
dc.language.isoen
dc.publisherAIP Publishing
dc.titleHybrid surface waves at microwave frequencies in superconductor-dielectric layered structures
dc.typeArticle

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