Voir la notice de l'article provenant de la source Math-Net.Ru
@article{UZERU_2018_52_2_a9, author = {H. A. Parsamyan and A. Zh. Babajanyan and Sh. Kh. Arakelyan and K. Lee}, title = {Determination of glucose concentration in aqueous solution by using modified hilbert shaped microwave metamaterial sensor}, journal = {Proceedings of the Yerevan State University. Physical and mathematical sciences}, pages = {144--148}, publisher = {mathdoc}, volume = {52}, number = {2}, year = {2018}, language = {en}, url = {http://geodesic.mathdoc.fr/item/UZERU_2018_52_2_a9/} }
TY - JOUR AU - H. A. Parsamyan AU - A. Zh. Babajanyan AU - Sh. Kh. Arakelyan AU - K. Lee TI - Determination of glucose concentration in aqueous solution by using modified hilbert shaped microwave metamaterial sensor JO - Proceedings of the Yerevan State University. Physical and mathematical sciences PY - 2018 SP - 144 EP - 148 VL - 52 IS - 2 PB - mathdoc UR - http://geodesic.mathdoc.fr/item/UZERU_2018_52_2_a9/ LA - en ID - UZERU_2018_52_2_a9 ER -
%0 Journal Article %A H. A. Parsamyan %A A. Zh. Babajanyan %A Sh. Kh. Arakelyan %A K. Lee %T Determination of glucose concentration in aqueous solution by using modified hilbert shaped microwave metamaterial sensor %J Proceedings of the Yerevan State University. Physical and mathematical sciences %D 2018 %P 144-148 %V 52 %N 2 %I mathdoc %U http://geodesic.mathdoc.fr/item/UZERU_2018_52_2_a9/ %G en %F UZERU_2018_52_2_a9
H. A. Parsamyan; A. Zh. Babajanyan; Sh. Kh. Arakelyan; K. Lee. Determination of glucose concentration in aqueous solution by using modified hilbert shaped microwave metamaterial sensor. Proceedings of the Yerevan State University. Physical and mathematical sciences, Tome 52 (2018) no. 2, pp. 144-148. http://geodesic.mathdoc.fr/item/UZERU_2018_52_2_a9/
[1] World Health Organization, 10 Facts on Diabetes, , 2016 http://www.who.int/features/factfiles/diabetes/en/
[2] L. Engel, C. Delaney, M. Cohen, “Blood Glucose Meters: an Independent Head-to-Head Comparison”, Pract. Diabetes Int., 15:1 (1998), 15–18 | DOI
[3] A. Harper, M. R. Anderson, “Electrochemical Glucose Sensors-Developments Using Electrostatic Assembly and Carbon Nanotubes for Biosensor Construction”, Sensors, 10:9 (2010), 8248–8274 | DOI
[4] E.-J. Park, J. Werner, J. Beebe, S. Chan, N. B. Smith, “Noninvasive Ultrasonic Glucose Sensing with Large Pigs (200 Pounds) Using a Lightweight Cymbal Transducer Array and Biosensors”, J. Diabetes Sci. Technol., 3:3 (2009), 517–523 | DOI
[5] H. Lee et al., “Wearable/Disposable Sweat-Based Glucose Monitoring Device with Multistage Transdermal Drug Delivery Module”, Sci. Adv., 3:3 (2017), e1601314 | DOI
[6] V. Ed. Tuchin, Handbook of Optical Sensing of Glucose in Biological Fluids and Tissues, Series in Medical Physics and Biomedical Engineering, Taylor Francis, 2008
[7] B. H. Stuart, Infrared Spectroscopy: Fundamentals and Applications, ed. 1, John Wiley Sons Ltd, 2004
[8] S. Liakat, K. A. Bors, L. Xu, C.M. Woods, J. Doyle, C.F. Gmachl, “Noninvasive in vivo Glucose Sensing on Human Subjects Using Mid-Infrared Light”, Biomed. Opt. Express, 5:7 (2014), 2397 | DOI
[9] W.-C. Shih, K.L. Bechtel, M.S. Feld, “Noninvasive Glucose Sensing with Raman Spectroscopy”, In vivo Glucose Sensing, Chapter 14, John Wiley Sons Inc., NJ, USA, 2009, 391–419
[10] H.-S. Kim, D.-K. Lee, S. Lee, Y. Chung, M. Seo, “Highly Sensitive Terahertz Sensor for Glucose Detection”, Fifth Asia-Pacific Optical Sensors Conference (Jeju, Republic of Korea, 01.07.15), Proc. SPIE, 9655, 2015, 96551
[11] J. Kim, A. Babajanyan, A. Hovsepyan, K. Lee, B. Friedman, “Microwave Dielectric Resonator Biosensor for Aqueous Glucose Solution”, Rev. Sci. Instrum., 79:8 (2008), 086107 | DOI