Khan MU, Sharawi MS, Mittra R. Microstrip patch antenna miniaturisation techniques: a review. IET Microwav Antennas Propag. 2015;9(9):913–22. https://doi.org/10.1049/iet-map.2014.0602.
Vrba J, Karch J, Vrba D, et al. Phantoms for development of microwave sensors for non-invasive blood glucose monitoring. Int J Antennas Propag. 2015. https://doi.org/10.1155/2015/570870.
Costanzo S. Loss tangent effect on the accurate design of microwave sensors for blood glucose monitoring. In: 2017 \(11^\) European conference on antennas and propagation (EUCAP). IEEE; 2017. p. 661–3. https://doi.org/10.23919/EuCAP.2017.7928578.
Yilmaz T, Ozturk T, Joof S. A comparative study for development of microwave glucose sensors.In: Proceedings of the \(32^\) URSI GASS, Montreal. 2017;19–26.
Sen K, Anand S, et al. Design of microstrip sensor for non invasive blood glucose monitoring. In: 2017 International conference on emerging trends and innovation in ICT (ICEI). IEEE; 2017; p. 5–8. https://doi.org/10.1109/ETIICT.2017.7977001.
Singh S, Singh R, Sen K, Anand S. Microwave sensor for the investigation of glucose-dependent reflection properties in aqueous samples. J Med Eng Tech. 2019;43(4):217–22. https://doi.org/10.1080/03091902.2019.1653388.
Satish Sen K, Anand S. Demonstration of microstrip sensor for the feasibility study of non-invasive blood-glucose sensing. Mapan. 2021;36:193–9. https://doi.org/10.1007/s12647-020-00396-z.
Rai P, Agarwal P. Inset-fed microstrip patch antenna for glucose detection using label-free microwave sensing mechanism. Metrol Meas Syst. 2023. https://doi.org/10.24425/mms.2023.144867.
Deshmukh VV, Chorage SS. Microstrip antennas used for noninvasive determination of blood glucose level. In: 2020 4th International conference on intelligent computing and control systems (ICICCS). IEEE; 2020. p. 720–5. https://doi.org/10.1109/ICICCS48265.2020.9120873.
Raj S, Kishore N, Upadhyay G, Tripathi S, Tripathi VS. A novel design of CSRR loaded truncated patch antenna for non-invasive blood glucose monitoring system. In: 2018 IEEE MTT-S international microwave and RF conference (IMaRC). IEEE; 2018. p. 1–4. https://doi.org/10.1109/IMaRC.2018.8877249.
Deshmukh VV, Chorage SS. Non-invasive determination of blood glucose level using narrowband microwave sensor. J Ambient Intell Humaniz Comput. 2021. https://doi.org/10.1007/s12652-021-03105-z.
Megdad AR, Aldhaheri RW, Sobahi NM. A noninvasive method for measuring the blood glucose level using a narrow band microstrip antenna. Appl Computat Electromagne Soc J. 2022;37(11):1118. https://doi.org/10.13052/2022.ACES.J.371102.
Aldhaheri RW, Kamili JB, Nella A, Sobahi NM. A novel compact highly sensitive non-invasive microwave antenna sensor for blood glucose monitoring. Open Phys. 2023;21(1):20230107. https://doi.org/10.1515/phys-2023-0107.
Wiwatwithaya S, Phasukkit P, Tungjitkusolmun S, Wongtrairat W. Real-time monitoring glucose by used microwave antenna apply to biosensor. In: The \(4^\) 2011 biomedical engineering international conference. IEEE; 2012. p. 135–137. https://doi.org/10.1109/BMEiCon.2012.6172036.
Rahman M, Islam M, Samsuzzaman M. Detection of different concentrated salt and sugar solution based on dielectric properties using microstrip technology. Microw Opt Technol Lett. 2018;60(6):1573–7. https://doi.org/10.1002/mop.31201.
Rahman MN, Islam MT, Samsuzzaman Sobuz M. Salinity and sugar detection system using microstrip patch antenna. Microw Opt Technol Lett. 2018;60(5):1092–6. https://doi.org/10.1002/mop.31108.
Rahman MN, Hassan SA, Samsuzzaman M, Singh MSJ, Islam MT. Determination of salinity and sugar concentration using microwave sensor. Microw Opt Technol Lett. 2019;61(2):361–4. https://doi.org/10.1002/mop.31588.
Islam MT, Rahman MN, Singh MSJ, Samsuzzaman M. Detection of salt and sugar contents in water on the basis of dielectric properties using microstrip antenna-based sensor. IEEE Access. 2018;6:4118–26. https://doi.org/10.1109/ACCESS.2017.2787689.
Njokweni S, Kumar P. Salt and sugar detection system using a compact microstrip patch antenna. Int J Smart Sens Intell Syst. 2020;13(1):1–9. https://doi.org/10.21307/ijssis-2020-027.
Cheng E, Fareq M, Shahriman A, Mohd Afendi R, Lee Y, Khor S, Tan W, Nashrul Fazli M, Abdullah A, Jusoh M. Development of microstrip patch antenna sensing system for salinity and sugar detection in water. Int J Mech Mechatronics Eng. 2014;15(5):31–6.
Abdolrazzaghi M, Genov R, Eleftheriades GV. Microwave planar sensor antenna for glucose sensing in aqueous solutions. In: 2021 IEEE International symposium on antennas and propagation and USNC-URSI radio science meeting (APS/URSI). IEEE; 2021. p. 127–8. https://doi.org/10.1109/APS/URSI47566.2021.9704157.
Ebrahimi A, Scott J, Ghorbani K. Microwave reflective biosensor for glucose level detection in aqueous solutions. Sens Actuators : Phys. 2019. https://doi.org/10.1016/j.sna.2019.111662.
Balanis CA. Antenna theory: analysis and design. Hoboken: Wiley; 2016.
Prabhakar D, Rao PM, Satyanarayana DM. Characteristics of patch antenna with notch gap variations for Wi-Fi applications. Int J Appl Eng Res. 2016;11(8):5741–6.
Pradeep H. Inset fed microstrip patch antenna for X-band applications. Int J Eng Res Electron Commun Eng (IJERECE). 2018;5(7):1–5.
MathSciNet MATH Google Scholar
Mishra PC, Sonkusare R. Performance analysis of simple rectangular microstrip patch antenna and gap coupled rectangular microstrip patch antenna. In: 2017 International conference on intelligent computing and control (I2C2). IEEE; 2017. p. 1–4. https://doi.org/10.1109/I2C2.2017.8321847
Bahl IJ. A designer’s guide to microstrip line. Microwaves. 1977;1–380.
Garg R, Bahl I, Bozzi M. Microstrip lines and slotlines. Artech House; 2013.
Malmberg CG, Maryott AA. Dielectric constants of aqueous solutions of dextrose and sucrose. J Res Natl Bureau Standards. 1950;45(4):299–303. https://doi.org/10.6028/jres.045.030.
Alahnomi RA, Zakaria Z, Yussof ZM, Althuwayb AA, Alhegazi A, Alsariera H, Rahman NA. Review of recent microwave planar resonator-based sensors: techniques of complex permittivity extraction, applications, open challenges and future research directions. Sensors. 2021;21(7):2267. https://doi.org/10.3390/s21072267.
Abdolrazzaghi M, Nayyeri V, Martin F. Techniques to improve the performance of planar microwave sensors: a review and recent developments. Sensors. 2022;22(18):6946. https://doi.org/10.3390/s22186946.
Kazemi N, Abdolrazzaghi M, Light PE, Musilek P. In-human testing of a non-invasive continuous low-energy microwave glucose sensor with advanced machine learning capabilities. Biosens Bioelectron. 2023;241:115668. https://doi.org/10.1016/j.bios.2023.115668.
Kazemi N, Musilek P. Enhancing microwave sensor performance with ultrahigh Q features using CycleGAN. IEEE Trans Microw Theory Tech. 2022;70(12):5369–82. https://doi.org/10.1109/TMTT.2022.3218015.
Comments (0)