Experimental validation of a dual-band slotted patch antenna for microwave brain tumor sensing

Microwave transmission sensing offers a compact and non-ionizing approach for investigating dielectric changes associated with biological tissue abnormalities. This study presents the experimental validation of a compact dual-band double-rectangular slotted microstrip patch antenna for controlled brain-tumor phantom sensing. The antenna has an overall dimension of 36 × 36 mm² and was designed in CST Microwave Studio to operate at 3.08 and 4.28 GHz. Two identical antennas were fabricated on FR-4 substrate and experimentally characterized using a portable NanoVNA-F V3. A tissue-mimicking phantom was prepared using distilled water, agar-agar, glycerin, sodium chloride, and sugar, with spherical tumor inclusions of 4, 7, 10, 13, and 16 mm diameter. The S21 transmission coefficient was evaluated for tumor-free and tumor-loaded phantom configurations in both simulation and experiment. The measured antenna resonances occurred at 3.61 and 4.15 GHz, with S11 values of −17.88 and −19.84 dB and VSWR values of 1.33 and 1.31, respectively. For the phantom experiments, S21 exhibited a consistent decrease with increasing tumor diameter at both investigated frequencies. At 3.08 GHz, the measured S21 changed from −57.03 dB for the tumor-free phantom to −66.09 dB for the 16 mm tumor, while at 4.28 GHz it changed from −47.05 to −55.04 dB. A simulated peak 10-g averaged SAR of 0.348 W/kg was obtained at 3.08 GHz. These results experimentally demonstrate the sensitivity of the proposed antenna-phantom configuration to controlled tumor-size variation and establish a low-cost platform for further development of microwave tumor-sensing systems. The present work is limited to homogeneous phantom validation and should therefore be regarded as a proof-of-concept study rather than clinical diagnostic validation.

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Journal
Next Materials
Published
2026-09-28
DOI
https://doi.org/10.1016/j.nxmate.2026.103660
Primary Topic
Microwave Imaging and Scattering Analysis
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article
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Experimental validation of a dual-band slotted patch antenna for microwave brain tumor sensing

Sifat Hossain, Md. Shahriar Kabir, Md. Hasib Mahbub, Md.Yeasin Ali Bishal et al.
Next Materials
Microwave Imaging and Scattering Analysis
article

Experimental validation of a dual-band slotted patch antenna for microwave brain tumor sensing

Sifat Hossain, Md. Shahriar Kabir, Md. Hasib Mahbub, Md.Yeasin Ali Bishal, Most. Anha Tabassum Tunna, Easin Arafat, Most. Israt Jahan
article en

Abstract

Microwave transmission sensing offers a compact and non-ionizing approach for investigating dielectric changes associated with biological tissue abnormalities. This study presents the experimental validation of a compact dual-band double-rectangular slotted microstrip patch antenna for controlled brain-tumor phantom sensing. The antenna has an overall dimension of 36 × 36 mm² and was designed in CST Microwave Studio to operate at 3.08 and 4.28 GHz. Two identical antennas were fabricated on FR-4 substrate and experimentally characterized using a portable NanoVNA-F V3. A tissue-mimicking phantom was prepared using distilled water, agar-agar, glycerin, sodium chloride, and sugar, with spherical tumor inclusions of 4, 7, 10, 13, and 16 mm diameter. The S21 transmission coefficient was evaluated for tumor-free and tumor-loaded phantom configurations in both simulation and experiment. The measured antenna resonances occurred at 3.61 and 4.15 GHz, with S11 values of −17.88 and −19.84 dB and VSWR values of 1.33 and 1.31, respectively. For the phantom experiments, S21 exhibited a consistent decrease with increasing tumor diameter at both investigated frequencies. At 3.08 GHz, the measured S21 changed from −57.03 dB for the tumor-free phantom to −66.09 dB for the 16 mm tumor, while at 4.28 GHz it changed from −47.05 to −55.04 dB. A simulated peak 10-g averaged SAR of 0.348 W/kg was obtained at 3.08 GHz. These results experimentally demonstrate the sensitivity of the proposed antenna-phantom configuration to controlled tumor-size variation and establish a low-cost platform for further development of microwave tumor-sensing systems. The present work is limited to homogeneous phantom validation and should therefore be regarded as a proof-of-concept study rather than clinical diagnostic validation.

Next MaterialsVol. 13
Bangladesh Army University of Science and Technology
Openalex Percentile: Top 22%
Microwave Imaging and Scattering Analysis
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