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Mehdi Zamani

Researcher at Damghan University

Publications -  101
Citations -  919

Mehdi Zamani is an academic researcher from Damghan University. The author has contributed to research in topics: Density functional theory & Faraday effect. The author has an hindex of 15, co-authored 88 publications receiving 712 citations. Previous affiliations of Mehdi Zamani include Yasouj University & Malek-Ashtar University of Technology.

Papers
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Novel approach for the design and analysis of a terahertz microstrip patch antenna based on photonic crystals

TL;DR: In this paper, the authors designed and analyzed five terahertz microstrip patch antennae based on a modified photonic band gap substrate in the frequency range from 0.5 to 0.8 GHz.
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Analysis and design of a terahertz microstrip antenna based on a synthesized photonic bandgap substrate using BPSO

TL;DR: A microstrip patch antenna based on a synthesized photonic bandgap (PBG) substrate is designed and analyzed by using a technique based on the combination of an evolutionary heuristic optimization algorithm with the CST Microwave Studio simulator, which isbased on the finite integral technique.
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Scavenging performance and antioxidant activity of γ-alumina nanoparticles towards DPPH free radical: Spectroscopic and DFT-D studies.

TL;DR: The radical scavenging performance and antioxidant activity of γ-alumina nanoparticles towards 2,2-diphenyl-1-picrylhydrazyl (DPPH) free radical were investigated by spectroscopic and computational methods and the following order for the adsorption of DPPH over the different active sites of ι alumina was predicted: Brønsted base < Lewis acid < BrøNsted acid
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Photonic crystal-based optical filters for operating in second and third optical fiber windows

TL;DR: In this paper, the filtering properties of photonic crystals (PCs) to perform narrow-channel transmission-type filters in second and third optical fiber telecommunication windows have been studied.
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Adjustable magneto-optical isolators with flat-top responses

TL;DR: A theoretical study on the case of transmission-type one-dimensional magnetophotonic crystals and high performance MPC structures with flat-top responses and with the capability of adjusting to perfect MOIs is performed.