Updates
🌟 August 2026 Issue Published: New research articles now available in our latest journal issue. Discover cutting-edge findings. Read More 📢 Call for Papers: October 2026: Submit your research for peer review. Open access publishing with global visibility. Read More 🚀 Continental Scholarly Publications: Join our new multidisciplinary research journal platform. Publishing excellence since 2024. Read More 🎯 Special Issue: Digital Health: Call for papers on digital health innovations. Submission deadline: September 15 Read More 💼 Early Career Researcher Support: Special mentorship program and reduced fees for PhD candidates and new researchers. Read More 🔬 New Research Areas Open: Now accepting submissions in AI Ethics, Climate Science, and Public Health Innovation. Read More 🌐 Global Academic Network: Connect with researchers from 65+ countries through Continental Scholarly Publications. Read More ⏰ Fast-Track Peer Review: Accelerated review process available. Get decisions within 3 weeks. Read More

Applied Physics, Material Sciences, and Engineering Journal

Peer-Reviewed Academic Journal
Research Article

MODELING MAGNETIC DIPOLES IN DIELECTRIC RINGS WITH THE BIOT–SAVART–LAPLACE FRAMEWORK

Authors & Affiliations
Alexei Mikhail Sergeyev
Theoretical Physics and Quantum Technologies Department, National University of Science and Technology MISIS, 119049 Moscow, Russia
Published: July 9, 2025
Volume 12, Issue 4 (2024)
Article ID: 917
Peer-Reviewed
Open Access
Abstract

We investigate the electromagnetic response of a high-permittivity dielectric plane ring under GHz-frequency plane wave excitation. Our results demonstrate that the ring behaves as an almost ideal magnetic dipole at its fundamental resonance, with negligible contributions from higher-order multipoles—less than 0.2% of the primary magnetic dipole component. Experimental measurements of the magnetic field distribution around the ring align closely with both numerical simulations and predictions based on the Biot–Savart–Laplace law. This confirms that the Biot–Savart–Laplace framework, traditionally applied to conductive metal rings, is also valid for accurately modeling non-conductive, low-loss dielectric structures at microwave frequencies. These findings offer a new route for engineering low-loss, magnetically resonant dielectric elements for use in advanced electromagnetic and metamaterial systems

Full-Text Access

Open-access article — free to read and share.

Publish Your Research in This Journal

Continental Scholarly Publications applies rigorous double-blind peer review to every submission. Our expert editorial board ensures your work meets the highest standards of scholarship before reaching an international readership.

Double-Blind Review Global Indexing Fast Turnaround Open Access DOI Assigned Wide Readership
Submit a Manuscript