Bragg resonator cavity for time-resolved microwave conductivity measurement

Time-resolved microwave conductivity (TRMC) is a well-established technique for characterizing charge carriers in materials. This technique relies on a sensitive resonant microwave cavity to detect small changes in the material’s conductivity induced by a laser pulse. Conventional TRMC systems typically employ iris-coupled resonant cavities. In this work, we present a systematic theoretical, numerical, and experimental study aimed at integrating a Bragg-resonator-based cavity into TRMC measurements. First, we optimize the multilayer structure, composed of silica glass and air, inside the rectangular waveguide operating in the Ka-band, in order to bring the bandgap into our operating frequency range. Next, we introduce a defect into the structure, which induces resonance within the bandgap. At the resonance frequency, the electric field is strongly confined within the defect region, creating a highly sensitive area for TRMC measurements. Then, the position of a substrate containing a thin film is optimized by calculating the sensitivity factor both theoretically and numerically. The experimental characterization of the proposed cavity presents a good convenient with theoretical and simulation result. Finally, TRMC measurements were carried out using the Bragg resonator cavity, and a clear signal attributed to charge excitation was obtained. This opens new perspectives for the use of Bragg cavities in TRMC, by taking advantage of their strong field confinement.

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Publication Details

Journal
Journal of Applied Physics
Published
2026-09-28
DOI
https://doi.org/10.1063/5.0349958
Primary Topic
Microwave and Dielectric Measurement Techniques
Type
article
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article

Bragg resonator cavity for time-resolved microwave conductivity measurement

Mohamed Boutghatin, Patrick Ropa, N. Tentillier, Sébastien Saitzek et al.
Journal of Applied Physics
Microwave and Dielectric Measurement Techniques
article

Bragg resonator cavity for time-resolved microwave conductivity measurement

Mohamed Boutghatin, Patrick Ropa, N. Tentillier, Sébastien Saitzek, Jean‐François Blach, R. Douali, M. Toufaily, A. Ghaddar, B. Khol
article en

Abstract

Time-resolved microwave conductivity (TRMC) is a well-established technique for characterizing charge carriers in materials. This technique relies on a sensitive resonant microwave cavity to detect small changes in the material’s conductivity induced by a laser pulse. Conventional TRMC systems typically employ iris-coupled resonant cavities. In this work, we present a systematic theoretical, numerical, and experimental study aimed at integrating a Bragg-resonator-based cavity into TRMC measurements. First, we optimize the multilayer structure, composed of silica glass and air, inside the rectangular waveguide operating in the Ka-band, in order to bring the bandgap into our operating frequency range. Next, we introduce a defect into the structure, which induces resonance within the bandgap. At the resonance frequency, the electric field is strongly confined within the defect region, creating a highly sensitive area for TRMC measurements. Then, the position of a substrate containing a thin film is optimized by calculating the sensitivity factor both theoretically and numerically. The experimental characterization of the proposed cavity presents a good convenient with theoretical and simulation result. Finally, TRMC measurements were carried out using the Bragg resonator cavity, and a clear signal attributed to charge excitation was obtained. This opens new perspectives for the use of Bragg cavities in TRMC, by taking advantage of their strong field confinement.

Journal of Applied PhysicsVol. 140(12)
Centre National de la Recherche Scientifique (FR), Université de Lille (FR), Université du littoral côte d'opale (FR), Institut d'Electronique, de Microélectronique et de Nanotechnologie (FR), Unité de catalyse et de chimie du solide de Lille (FR), Université Polytechnique Hauts-de-France (FR), École Centrale de Lille (FR)
Openalex Percentile: Top 22%
Microwave and Dielectric Measurement Techniques
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