In the present paper, a study and design is presented of a High Sensitivity Terahertz Metamaterial Biosensor for the detection of multiple viruses using the photosensitive semiconductor GaAs. The biosensor comprises a layered structure: a semiconductor GaAs layer at the top, a gold (Au) conductor layer in the middle, and a polyimide substrate at the base. Numerical experimentation in CST Microwave Studio validates the biosensor's efficacy against several dangerous viruses including Early Cancer, Malaria, Dengue, HIV, among others. It exhibits an average sensitivity of 1.673 THz/RIU, a quality factor of 510, and a high Figure of Merit (FOM) of 418.3 RIU-1. Notably, the biosensor demonstrates polarization insensitivity, accommodating both Transverse Electric (TE) and Transverse Magnetic (TM) polarization states. Moreover, its performance is tunable by varying the conductivity via photo-excitation-induced free carriers in GaAs. This versatile biosensor holds significant promise in terahertz technology, particularly within the medical field, for the sensitive detection of multiple viruses. Its unique design and high sensitivity make it a valuable tool for early disease detection and monitoring. Moving forward, further research and development could enhance its applicability and refine its performance characteristics, paving the way for advancements in the rapid and accurate diagnosis of various infectious diseases.
Published in | American Journal of Electromagnetics and Applications (Volume 12, Issue 1) |
DOI | 10.11648/j.ajea.20241201.12 |
Page(s) | 7-13 |
Creative Commons |
This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited. |
Copyright |
Copyright © The Author(s), 2025. Published by Science Publishing Group |
Absorber, Biosensor, Gallium Arsenide (GaAs), Metamaterial, Terahertz
S. N. | Cell Name | State | Refractive Index (n) | Resonance Frequency (GHz) | Sensitivity (GHz/RIU) |
---|---|---|---|---|---|
1 | air | air | 1 | 2046 | 1653.4 |
2 | Besal cell | Normal | 1.36 | 1962 | 1650.0 |
Cancer | 1.38 | 1929 | |||
3 | Breast Cell | Normal | 1.385 | 1931 | 1571.4 |
Cancer | 1.399 | 1909 | |||
4 | Cervical Cell | Normal | 1.368 | 1956 | 1583.3 |
Cancer | 1.392 | 1918 | |||
5 | Jurkat | Normal | 1.376 | 1944 | 1571.4 |
Cancer | 1.39 | 1922 | |||
6 | MCF-7 | Normal | 1.36 | 1962 | 1585.4 |
Cancer | 1.401 | 1908 | |||
7 | PC12 | Normal | 1.381 | 1933 | 1642.9 |
Cancer | 1.395 | 1915 |
S. N. | Virus | Refractive Index (n) | Resonance Frequency (GHz) | Sensitivity (GHz/RIU) |
---|---|---|---|---|
1. | air | 1.0 | 2046 | 1653.4 |
2. | Malaria (n1) | 1.373 | 1945 | 270.7 |
3. | Malaria (n2) | 1.383 | 1932 | 297.6 |
4. | Dengue | 1.4 | 1914 | 330 |
5. | HSV | 1.41 | 1899 | 358.5 |
6. | Influenza A | 1.48 | 1851 | 406.2 |
7. | HIV | 1.5 | 2187 | 282 |
8. | Corona | 1.53 | 2150 | 196.2 |
Ref | Materials | Q | FoM | Sensitivity | Tunability |
---|---|---|---|---|---|
factor | (RIU-1) | (THz/RIU) | |||
[3] | Graphene | ---- | 24 | 1.775 | Yes |
[4] | Gold | 57 | 11.5 | 0.281 | No |
[5] | InSb | 53 | ---- | 1.043 | No |
[6] | 3D metal | 72 | ---- | 0.832 | No |
[7] | GaAs | 444 | 392 | 1.762 | Yes |
Our | GaAs | 510 | 418.3 | 1.673 | Yes |
GaAs | Gallium Arsenide |
FOM | Figure of Merit |
THz | Terahertz |
FWHM | Full-Width Half Maximum |
RI | Refractive Index |
THz-TDS | Terahertz Time-Domain Spectroscopy |
TE | Transverse Electric |
TM | Transverse Magnetic |
Q | Quality Factor |
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APA Style
Kumar, A., Yadav, V. (2025). Photosensitive Semiconductor GaAs Based High Sensitivity Terahertz Metamaterial Biosensor for Multi-Virus Detection. American Journal of Electromagnetics and Applications, 12(1), 7-13. https://doi.org/10.11648/j.ajea.20241201.12
ACS Style
Kumar, A.; Yadav, V. Photosensitive Semiconductor GaAs Based High Sensitivity Terahertz Metamaterial Biosensor for Multi-Virus Detection. Am. J. Electromagn. Appl. 2025, 12(1), 7-13. doi: 10.11648/j.ajea.20241201.12
@article{10.11648/j.ajea.20241201.12, author = {Ashwani Kumar and Vikas Yadav}, title = {Photosensitive Semiconductor GaAs Based High Sensitivity Terahertz Metamaterial Biosensor for Multi-Virus Detection }, journal = {American Journal of Electromagnetics and Applications}, volume = {12}, number = {1}, pages = {7-13}, doi = {10.11648/j.ajea.20241201.12}, url = {https://doi.org/10.11648/j.ajea.20241201.12}, eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ajea.20241201.12}, abstract = {In the present paper, a study and design is presented of a High Sensitivity Terahertz Metamaterial Biosensor for the detection of multiple viruses using the photosensitive semiconductor GaAs. The biosensor comprises a layered structure: a semiconductor GaAs layer at the top, a gold (Au) conductor layer in the middle, and a polyimide substrate at the base. Numerical experimentation in CST Microwave Studio validates the biosensor's efficacy against several dangerous viruses including Early Cancer, Malaria, Dengue, HIV, among others. It exhibits an average sensitivity of 1.673 THz/RIU, a quality factor of 510, and a high Figure of Merit (FOM) of 418.3 RIU-1. Notably, the biosensor demonstrates polarization insensitivity, accommodating both Transverse Electric (TE) and Transverse Magnetic (TM) polarization states. Moreover, its performance is tunable by varying the conductivity via photo-excitation-induced free carriers in GaAs. This versatile biosensor holds significant promise in terahertz technology, particularly within the medical field, for the sensitive detection of multiple viruses. Its unique design and high sensitivity make it a valuable tool for early disease detection and monitoring. Moving forward, further research and development could enhance its applicability and refine its performance characteristics, paving the way for advancements in the rapid and accurate diagnosis of various infectious diseases. }, year = {2025} }
TY - JOUR T1 - Photosensitive Semiconductor GaAs Based High Sensitivity Terahertz Metamaterial Biosensor for Multi-Virus Detection AU - Ashwani Kumar AU - Vikas Yadav Y1 - 2025/02/17 PY - 2025 N1 - https://doi.org/10.11648/j.ajea.20241201.12 DO - 10.11648/j.ajea.20241201.12 T2 - American Journal of Electromagnetics and Applications JF - American Journal of Electromagnetics and Applications JO - American Journal of Electromagnetics and Applications SP - 7 EP - 13 PB - Science Publishing Group SN - 2376-5984 UR - https://doi.org/10.11648/j.ajea.20241201.12 AB - In the present paper, a study and design is presented of a High Sensitivity Terahertz Metamaterial Biosensor for the detection of multiple viruses using the photosensitive semiconductor GaAs. The biosensor comprises a layered structure: a semiconductor GaAs layer at the top, a gold (Au) conductor layer in the middle, and a polyimide substrate at the base. Numerical experimentation in CST Microwave Studio validates the biosensor's efficacy against several dangerous viruses including Early Cancer, Malaria, Dengue, HIV, among others. It exhibits an average sensitivity of 1.673 THz/RIU, a quality factor of 510, and a high Figure of Merit (FOM) of 418.3 RIU-1. Notably, the biosensor demonstrates polarization insensitivity, accommodating both Transverse Electric (TE) and Transverse Magnetic (TM) polarization states. Moreover, its performance is tunable by varying the conductivity via photo-excitation-induced free carriers in GaAs. This versatile biosensor holds significant promise in terahertz technology, particularly within the medical field, for the sensitive detection of multiple viruses. Its unique design and high sensitivity make it a valuable tool for early disease detection and monitoring. Moving forward, further research and development could enhance its applicability and refine its performance characteristics, paving the way for advancements in the rapid and accurate diagnosis of various infectious diseases. VL - 12 IS - 1 ER -