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F. Falcone, T. Lopetegi, J. D. Baena, R. Marqués, F. Martín et al., Effective negative-? stopband microstrip lines based on complementary split ring resonators, IEEE Microw. Wireless Compon. Lett, vol.14, issue.6, pp.280-282, 2004.

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J. Naqui, C. Damm, A. Wiens, R. Jakoby, L. Su et al., Transmission lines loaded with pairs of magnetically coupled stepped impedance resonators (SIRs): Modeling and application to microwave sensors, IEEE MTT-S Int. Microw. Symp. Dig, pp.1-4, 2014.

L. Su, J. Naqui, J. Mata-contreras, and F. Martín, Modeling metamaterial transmission lines loaded with pairs of coupled split ring resonators, IEEE Antennas Wireless Propag. Lett, vol.14, pp.68-71, 2015.

L. Su, J. Naqui, J. Mata, and F. Martín, Dual-band epsilon-negative (ENG) transmission line metamaterials based on microstrip lines loaded with pairs of coupled complementary split ring resonators (CSRRs): Modeling, analysis and applications, Proc. 9th Int, pp.7-12, 2015.

L. Su, J. Naqui, J. Mata-contreras, P. Vélez, and F. Martín, Transmission line metamaterials based on pairs of coupled split ring resonators (SRRs) and complementary split ring resonators (CSRR): A comparison to the light of the lumped element equivalent circuits, Proc. Int. Conf. Electromagn, pp.7-11, 2015.

L. Su, J. Naqui, J. Mata-contreras, and F. Martín, Modeling and applications of metamaterial transmission lines loaded with pairs of coupled complementary split ring resonators (CSRRs), IEEE Antennas Wireless Propag. Lett, vol.15, pp.154-157, 2016.

L. Su, J. Mata-contreras, P. Vélez, and F. Martín, Splitter/combiner microstrip sections loaded with pairs of complementary split ring resonators (CSRRs): Modeling and optimization for differential sensing applications, IEEE Trans. Microw. Theory Techn, vol.64, issue.12, pp.4362-4370, 2016.

J. Naqui, M. Durán-sindreu, and F. Martín, Novel sensors based on the symmetry properties of split ring resonators (SRRs),'' Sensors, vol.11, pp.7545-7553, 2011.

F. Martín, Artificial Transmission Lines for RF and Microwave Applications, 2015.

J. Naqui, Symmetry Properties in Transmission Lines Loaded With Electrically Small Resonators: Circuit Modeling and Applications, 2016.

J. Naqui, M. Durán-sindreu, and F. Martín, Alignment and position sensors based on split ring resonators, Sensors, vol.12, issue.9, pp.11790-11797, 2012.

A. K. Horestani, C. Fumeaux, S. F. Al-sarawi, and D. Abbott, Displacement sensor based on diamond-shaped tapered split ring resonator, IEEE Sensors J, vol.13, issue.4, pp.1153-1160, 2013.

A. K. Horestani, D. Abbott, and C. Fumeaux, Rotation sensor based on horn-shaped split ring resonator, IEEE Sensors J, vol.13, issue.8, pp.3014-3015, 2013.

J. Naqui and F. Martín, Transmission lines loaded with bisymmetric resonators and their application to angular displacement and velocity sensors, IEEE Trans. Microw. Theory Techn, vol.61, issue.12, pp.4700-4713, 2013.

J. Naqui and F. Martín, Angular displacement and velocity sensors based on electric-LC (ELC) loaded microstrip lines, IEEE Sensors J, vol.14, issue.4, pp.939-940, 2014.

A. K. Horestani, J. Naqui, D. Abbott, C. Fumeaux, and F. Martín, Twodimensional displacement and alignment sensor based on reflection coefficients of open microstrip lines loaded with split ring resonators, Electron. Lett, vol.50, issue.8, pp.620-622, 2014.

J. Naqui and F. Martín, Microwave sensors based on symmetry properties of resonator-loaded transmission lines, J. Sensors, vol.2015, 2015.

J. Naqui, J. Coromina, A. Karami-horestani, C. Fumeaux, and F. Martín, Angular displacement and velocity sensors based on coplanar waveguides (CPWs) loaded with S-shaped split ring resonators (S-SRR),'' Sensors, vol.15, pp.9628-9650, 2015.

P. Vélez, L. Su, J. Mata-contreras, F. Martín, K. Grenier et al., Modeling and analysis of pairs of open complementary split ring resonators (OCSRRs) for differential permittivity sensing, Adv. Mater. Process. RF THz Appl. (IMWS-AMP, pp.20-22, 2017.

L. Su, J. Mata-contreras, P. Vélez, and F. Martín, Estimation of conductive losses in complementary split ring resonator (CSRR) loading an embedded microstrip line and applications, IEEE MTT-S Int. Microw. Symp. Dig, pp.476-479, 2017.

L. Su, J. Mata-contreras, P. Vèlez, and F. Martín, Estimation of the complex permittivity of liquids by means of complementary split ring resonator (CSRR) loaded transmission lines, IEEE MTT-S Int. Microw. Symp. Dig. Adv. Mater. Process. (IMWS-AMP), pp.20-22, 2017.

P. Vélez, L. Su, K. Grenier, J. Mata-contreras, D. Dubuc et al., Microwave microfluidic sensor based on a microstrip splitter/combiner configuration and split ring resonators (SRRs) for dielectric characterization of liquids, IEEE Sensors J, vol.17, issue.20, pp.6589-6598, 2017.

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J. Mata-contreras, C. Herrojo, and F. Martín, Application of split ring resonator (SRR) loaded transmission lines to the design of angular displacement and velocity sensors for space applications, IEEE Trans. Microw. Theory Techn, vol.65, issue.11, pp.4450-4460, 2017.

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URL : https://hal.archives-ouvertes.fr/hal-00879539

W. Withayachumnankul, K. Jaruwongrungsee, A. Tuantranont, C. Fumeaux, and D. Abbott, Metamaterial-based microfluidic sensor for dielectric characterization, Sens. Actuators A, Phys, vol.189, pp.233-237, 2013.

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P. Vélez, He received the bachelor's degree in telecommunications engineering, specializing in electronics, the master's degree in electronics engineering, and the Ph.D. degree in electrical engineering, with a thesis Common Mode Suppression Differential Microwave Circuits Based on Metamaterial Concepts and Semilumped Resonators, from the Universitat Autònoma de Barcelona in 2008, 2010, and 2014, respectively. During the Ph.D. degree, he received the Pre-Doctoral Teaching Fellowship and the Research Fellowship by the Spanish Government from 2011 to 2014. Actually, his scientific activity is focused on the miniaturization of passive circuits RF/microwave-based metamaterials, S'10-M'14) was born in, 1982.