Mrs. Maryam Jahanbakhshi | Electromagnetism | Research Excellence Award

Mrs. Maryam Jahanbakhshi | Electromagnetism | Research Excellence Award

Mrs. Maryam Jahanbakhshi | University of West Bohemia | Czech Republic

Maryam Jahanbakhshi is a researcher in electrical engineering whose work centers on advanced antenna systems, RF and microwave circuit design, and high-performance communication technologies, contributing extensively to innovations in satellite communication, IoT networks, LTE systems, and radar applications; she has developed collinear array antennas with switched beamforming, compact microstrip lowpass filters with harmonic suppression, wideband Wilkinson power dividers, resonator-based miniaturized circuits, and tri-band filters tailored for modern communication requirements, while also advancing 3D antenna array concepts for next-generation ground stations and IoT gateways; her expertise extends to analyzing real 5G signals, designing and measuring patch antennas, and conducting high-frequency hardware evaluation using electromagnetic simulation tools and precision measurement equipment; she integrates theoretical modeling with hands-on fabrication, prototyping, and calibration, producing impactful research published across respected journals and international conferences; her work reflects strong command of RF simulation environments, circuit design platforms, and microwave analysis techniques, paired with practical experience in software testing, automated validation workflows, and functional safety frameworks, enabling her to bridge communication engineering with system-level reliability; her contributions continue to support the development of compact, efficient, and technologically advanced RF, microwave, and antenna systems that meet the evolving demands of modern wireless communication.

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Featured Publications

Siahkamari, H., Yasoubi, Z., Jahanbakhshi, M., Mousavi, S. M. H., & Siahkamari, P. (2018). Design of compact Wilkinson power divider with harmonic suppression using T-shaped resonators. Frequenz, 72(5-6), 253–259.

Jahanbakhshi, M., & Hayati, M. (2016). Design of a compact microstrip lowpass filter with sharp roll-off using combined T-shaped and L-shaped resonators. Electronics Letters, 52(23), 1931–1933.

Siahkamari, H., Jahanbakhshi, M., Al-Anbagi, H. N., Abdulhameed, A. A., … (2022). Trapezoid-shaped resonators to design compact branch line coupler with harmonic suppression. AEU - International Journal of Electronics and Communications, 144, 154032.

Jahanbakhshi, M., Hayati, M., & Veřtat, I. (2022). Prototype of compact microstrip lowpass filter for active phased antenna array with ultra-wide stopband using funnel shaped resonator. In 2022 International Conference on Applied Electronics (AE) (pp. 1–4).

Siahkamari, H., Lotfi, S., Tahmasbi, M., Blecha, T., … Jahanbakhshi, M. (2022). Design and analysis of a compact and harmonic suppressed microstrip lowpass filter. International Journal of Engineering & Technology Sciences, 1–12.

Prof. Vandana Ravi Kumar | Nonlinear Optics | Best Researcher Award 

Prof. Vandana Ravi Kumar | Nonlinear Optics | Best Researcher Award 

Prof. Vandana Ravi Kumar | Acharya Nagarjuna University | India

Prof. V. Ravi Kumar is a distinguished physicist specializing in materials science and solid-state physics, focusing on glass physics, dielectric and electrical properties, nonlinear optics, and photoluminescence. His research extensively employs ESR, IR, and Raman spectroscopy to study glass and glass-ceramic materials, with applications in radiation dosimetry, electrochromic devices, fuel-cell electrolytes, and optical systems. He has authored over 170 peer-reviewed publications, including more than 70 Q1 papers, with an h-index of 38 and nearly 3900 citations, and contributed chapters to key academic books. His research has been supported by major national funding agencies, reflecting his recognized leadership in advanced materials. He has guided numerous Ph.D. and M.Phil. scholars in oxide glasses, luminescent ions, magnetic nanoparticles, bioactive glasses, and thin-film technologies. Students’ theses under his guidance include studies on dielectric behavior, rare-earth ion luminescence, electrochromic films, antibacterial bioactive glasses, and magnetic nanoparticle tuning. He is an active reviewer for reputed journals from Elsevier, Wiley, and Springer, ensuring research quality and rigor. He holds memberships in the Materials Research Society of India, Luminescence Society of India, Indian Association of Physics Teachers, and is an Associate Fellow of the AP Academy of Sciences. His work bridges fundamental science with practical applications, advancing glass-ceramics, nonlinear optical materials, and functional oxide systems. Prof. Ravi Kumar continues to drive innovative research, interdisciplinary collaborations, and mentorship, leaving a lasting impact on materials science and the next generation of scientists.

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Featured Publications

Srikumar, T., Kityk, I. V., Rao, C. S., Gandhi, Y., Piasecki, M., Bragiel, P., & Kumar, V. R. (2011). Photostimulated optical effects and some related features of CuO mixed Li₂O–Nb₂O₅–ZrO₂–SiO₂ glass ceramics. Ceramics International, 37(7), 2763–2779.

Kumar, V. R., Veeraiah, N., Appa Rao, B., & Bhuddudu, S. (1998). Optical absorption and photoluminescence properties of Eu³⁺-doped ZnF₂–PbO–TeO₂ glasses. Journal of Materials Science, 33(10), 2659–2662.

Kalpana, T., Brik, M. G., Sudarsan, V., Naresh, P., Kumar, V. R., & Kityk, I. V. (2015). Influence of Al³⁺ ions on luminescence efficiency of Eu³⁺ ions in barium boro-phosphate glasses. Journal of Non-Crystalline Solids, 419, 75–81.

Satyanarayana, T., Kityk, I. V., Ozga, K., Piasecki, M., Bragiel, P., & Brik, M. G., et al. (2009). Role of titanium valence states in optical and electronic features of PbO–Sb₂O₃–B₂O₃: TiO₂ glass alloys. Journal of Alloys and Compounds, 482(1–2), 283–297.

Rao, K. S., Reddy, M. S., Kumar, V. R., & Veeraiah, N. (2008). Dielectric, magnetic and spectroscopic properties of Li₂O–WO₃–P₂O₅ glass system with Ag₂O as additive. Materials Chemistry and Physics, 111(2–3), 283–292.