Review of Recent Metamaterial Microfluidic Sensors
暂无分享,去创建一个
[1] P. Blondy,et al. High frequency microfluidic biosensors for intracellular dielectric spectroscopy , 2015, 2015 IEEE MTT-S International Microwave Symposium.
[2] Wenjing Su,et al. Microfluidic tunable inkjet-printed metamaterial absorber on paper. , 2015, Optics express.
[3] J. Venkataraman,et al. A Feasibility Study of Tissue Characterization Using LC Sensors , 2009, IEEE Transactions on Antennas and Propagation.
[4] Arda D. Yalcinkaya,et al. An antenna-coupled split-ring resonator for biosensing , 2014 .
[5] Efe Ilker,et al. Extreme sensitivity biosensing platform based on hyperbolic metamaterials. , 2016, Nature materials.
[6] Jong-Gwan Yook,et al. Biosensing using split-ring resonators at microwave regime , 2008 .
[7] S S Stuchly,et al. Microwave coplanar sensors for dielectric measurements , 1998 .
[8] K. Foster,et al. RF-field interactions with biological systems: Electrical properties and biophysical mechanisms , 1980, Proceedings of the IEEE.
[9] Dietmar Kissinger,et al. Miniature Microwave Biosensors: Noninvasive Applications , 2015, IEEE Microwave Magazine.
[10] Din Ping Tsai,et al. Vertical split-ring resonator based nanoplasmonic sensor , 2014 .
[11] Greg W. Burgreen,et al. Numerical simulations of flow pattern and particle trajectories in feline aorta for hypertrophic cardiomyopathy heart conditions , 2018 .
[12] Muhammed Said Boybay,et al. Behavior of metamaterial-based microwave components for sensing and heating of nanoliter-scale volumes , 2016 .
[13] G. Wurtz,et al. Plasmonic nanorod metamaterials for biosensing. , 2009, Nature materials.
[14] Ryusuke Nozaki,et al. Broadband complex permittivity measurement techniques of materials with thin configuration at microwave frequencies , 2005 .
[15] Jordi Bonache,et al. Recent Advances in Metamaterial Transmission Lines Based on Split Rings , 2011, Proceedings of the IEEE.
[16] D. Dubuc,et al. Microwave biosensor dedicated to the dielectric spectroscopy of a single alive biological cell in its culture medium , 2013, 2013 IEEE MTT-S International Microwave Symposium Digest (MTT).
[17] H. Schwan. Electrical properties of tissues and cell suspensions: mechanisms and models , 1994, Proceedings of 16th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[18] A. Wisitsoraat,et al. Real-time and label-free biosensing with microfluidic-based split-ring-resonator sensor , 2015, 2015 IEEE 15th International Conference on Nanotechnology (IEEE-NANO).
[19] Sungjoon Lim,et al. Novel ethanol chemical sensor using microfluidic metamaterial , 2015, 2015 IEEE International Symposium on Antennas and Propagation & USNC/URSI National Radio Science Meeting.
[20] J. Bonache,et al. Miniaturized coplanar waveguide stop band filters based on multiple tuned split ring resonators , 2003, IEEE Microwave and Wireless Components Letters.
[21] Sangeeta Kale,et al. Ultra-fast selective sensing of ethanol and petrol using microwave-range metamaterial complementary split-ring resonators , 2014 .
[22] Jong-Gwan Yook,et al. Recent research trends of radio-frequency biosensors for biomolecular detection. , 2014, Biosensors & bioelectronics.
[23] Dimitris Pavlidis,et al. High frequency wideband permittivity measurements of biological substances using coplanar waveguides and application to cell suspensions , 2008, 2008 IEEE MTT-S International Microwave Symposium Digest.
[24] Manos M. Tentzeris,et al. Inkjet-Printed Electromagnet-Based Touchpad Using Spiral Resonators , 2016, Journal of Microelectromechanical Systems.
[25] S. Abdu,et al. Optimization in the Computation of Dielectric Constant of Methanol Using Debye Relaxation Method , 2017 .
[26] David J. Rowe,et al. Novel Microwave Microfluidic Sensor Using a Microstrip Split-Ring Resonator , 2014, IEEE Transactions on Microwave Theory and Techniques.
[27] C. Fotakis,et al. 3D plasmonic crystal metamaterials for ultra-sensitive biosensing , 2016, Scientific Reports.
[28] Hong-Min Lee. Effect of Loading Split-Ring Resonators in a Microstrip Antenna Ground Plane , 2015 .
[29] Sungjoon Lim,et al. Metamaterial absorber using complementary circular sector resonator , 2016, 2016 International Symposium on Antennas and Propagation (ISAP).
[30] D. Brenner,et al. Computed tomography--an increasing source of radiation exposure. , 2007, The New England journal of medicine.
[31] Sungjoon Lim,et al. Inkjet‐printed 3D Hilbert‐curve fractal antennas for VHF band , 2017 .
[32] David Dubuc,et al. Microwaving Biological Cells: Intracellular Analysis with Microwave Dielectric Spectroscopy , 2015, IEEE Microwave Magazine.
[33] Mehmet Bakir,et al. Electromagnetic-Based Microfluidic Sensor Applications , 2017 .
[34] Aydin Sadeqi,et al. Low-cost metamaterial-on-paper chemical sensor , 2017, 2017 19th International Conference on Solid-State Sensors, Actuators and Microsystems (TRANSDUCERS).
[35] M. Orrit,et al. Optical detection of single non-absorbing molecules using the surface plasmon resonance of a gold nanorod. , 2012, Nature nanotechnology.
[36] Alankar Shrivastava,et al. Methods for the determination of limit of detection and limit of quantitation of the analytical methods , 2011 .
[37] 김철기,et al. Highly sensitive and selective sugar detection by terahertz nanoantennas , 2015 .
[38] Soon-Ik Jeon,et al. A Prototype System for Early-Stage Breast Cancer Detection , 2015 .
[39] Chengkuo Lee,et al. Microfluidic metamaterial sensor: Selective trapping and remote sensing of microparticles , 2017 .
[40] Premjeet Chahal,et al. Metamaterial inspired periodic structure used for microfluidic sensing , 2015, 2015 IEEE 65th Electronic Components and Technology Conference (ECTC).
[41] David Dubuc,et al. Microwave dielectric bio-sensing for precise and repetitive living cells suspension analysis , 2013, 2013 European Microwave Conference.
[42] Sungjoon Lim,et al. Electronically Switchable Broadband Metamaterial Absorber , 2017, Scientific Reports.
[43] Dietmar Kissinger,et al. Miniature Microwave Biosensors , 2015 .
[44] Pierre Blondy,et al. RF biosensor based on microwave filter for biological cell characterisation , 2009, 2009 European Microwave Conference (EuMC).
[45] David R. Smith,et al. Metamaterials and Negative Refractive Index , 2004, Science.
[46] Sungjoon Lim,et al. Microfluidic Eighth-Mode Substrate-Integrated-Waveguide Antenna for Compact Ethanol Chemical Sensor Application , 2016, IEEE Transactions on Antennas and Propagation.
[47] Tahsin Tezdogan,et al. Computational fluid dynamics-based hull form optimization using approximation method , 2018 .
[48] G. Whitesides. The origins and the future of microfluidics , 2006, Nature.
[49] Z. Geng,et al. A Route to Terahertz Metamaterial Biosensor Integrated with Microfluidics for Liver Cancer Biomarker Testing in Early Stage , 2017, Scientific Reports.
[50] Dietmar Kissinger,et al. A novel approach to non-invasive blood glucose measurement based on RF transmission , 2011, 2011 IEEE International Symposium on Medical Measurements and Applications.
[51] Kwang-Yong Kim,et al. Shape optimization of a feedback-channel fluidic oscillator , 2018 .
[52] Sungjoon Lim,et al. Angle- and Polarization-Insensitive Metamaterial Absorber using Via Array , 2016, Scientific Reports.
[53] Thomas Meissner,et al. The complex dielectric constant of pure and sea water from microwave satellite observations , 2004, IEEE Transactions on Geoscience and Remote Sensing.
[54] R N Clarke,et al. Tables of the complex permittivity of dielectric reference liquids at frequencies up to 5 GHz. , 2012 .
[55] Tao Chen,et al. Metamaterials Application in Sensing , 2012, Sensors.
[56] Jong-Gwan Yook,et al. DNA sensing using split-ring resonator alone at microwave regime , 2010 .
[57] Sungjoon Lim,et al. Microfluidic Biosensor Based on Microwave Substrate-Integrated Waveguide Cavity Resonator , 2018, J. Sensors.
[58] Sungjoon Lim,et al. A Fluidically Tunable Metasurface Absorber for Flexible Large-Scale Wireless Ethanol Sensor Applications , 2016, Sensors.
[59] Cheng Ma,et al. A ship propeller design methodology of multi-objective optimization considering fluid–structure interaction , 2018 .
[60] Matthias P Lutolf,et al. Biomaterials meet microfluidics: building the next generation of artificial niches. , 2011, Current opinion in biotechnology.
[61] Amit Bage,et al. Studies of some non conventional split ring and complementary split ring resonators for waveguide band stop & band pass filter application , 2013, 2013 International Conference on Microwave and Photonics (ICMAP).
[62] F. Bǎnicǎ,et al. Chemical sensors and biosensors : fundamentals and applications , 2012 .
[63] Zohreh Vafapour,et al. Graphene-based mid-infrared biosensor , 2017 .
[64] Hung-Wei Wu,et al. 40 GHz RF biosensor based on microwave coplanar waveguide transmission line for cancer cells (HepG2) dielectric characterization. , 2014, Biosensors & bioelectronics.
[65] S. J. Park,et al. Detection of microorganisms using terahertz metamaterials , 2014, Scientific Reports.
[66] D. Abbott,et al. Metamaterial-Inspired Multichannel Thin-Film Sensor , 2011, IEEE Sensors Journal.
[67] Sungjoon Lim,et al. Wide Incidence Angle-Insensitive Metamaterial Absorber for Both TE and TM Polarization using Eight-Circular-Sector , 2017, Scientific Reports.
[68] S. Sriram,et al. Meta-atom microfluidic sensor for measurement of dielectric properties of liquids , 2017 .
[69] Jialing Le,et al. Assessment of the IDDES method acting as wall-modeled LES in the simulation of spatially developing supersonic flat plate boundary layers , 2018 .
[70] T. Itoh,et al. Metamaterial-based electronically controlled transmission-line structure as a novel leaky-wave antenna with tunable radiation angle and beamwidth , 2004, IEEE Transactions on Microwave Theory and Techniques.
[71] Chung-Tse Michael Wu,et al. Microwave Gas Sensor based on Graphene-loaded Substrate Integrated Waveguide Cavity Resonator , 2016, 2016 IEEE MTT-S International Microwave Symposium (IMS).
[72] Soon-Ik Jeon,et al. Experimental Measurement System for 3-6 GHz Microwave Breast Tomography , 2015 .
[73] David Dubuc,et al. Microwave Microfluidic Sensor Based on a Microstrip Splitter/Combiner Configuration and Split Ring Resonators (SRRs) for Dielectric Characterization of Liquids , 2017, IEEE Sensors Journal.
[74] Bin Yuan,et al. A composite dual-porosity fractal model for channel-fractured horizontal wells , 2018 .
[75] Derek Abbott,et al. High-Sensitivity Metamaterial-Inspired Sensor for Microfluidic Dielectric Characterization , 2014, IEEE Sensors Journal.
[76] J. Fraden,et al. Handbook of Modern Sensors: Physics, Designs, and Applications, 2nd ed. , 1998 .
[77] Raja Syamsul Azmir Raja Abdullah,et al. Carbon-Nanotube-Based FR-4 Patch Antenna as a Bio-Material Sensor , 2012 .
[78] Sungjoon Lim,et al. Review of Recent Inkjet-Printed Capacitive Tactile Sensors , 2017, Sensors.
[79] Sungjoon Lim,et al. Polarization-Independent and Ultrawideband Metamaterial Absorber Using a Hexagonal Artificial Impedance Surface and a Resistor-Capacitor Layer , 2014, IEEE Transactions on Antennas and Propagation.
[80] Shengjiang Chang,et al. Terahertz ultrathin film thickness sensor below λ/90 based on metamaterial. , 2016, Applied optics.
[81] Sungjoon Lim,et al. Complementary Split-Ring Resonator-Loaded Microfluidic Ethanol Chemical Sensor , 2016, Sensors.
[82] A. Loupy. Microwaves in organic synthesis , 2002 .
[83] Massood Tabib-Azar,et al. Microactuators: Electrical, Magnetic, Thermal, Optical, Mechanical, Chemical & Smart Structures , 1997 .
[84] Derek Abbott,et al. Metamaterial-based microfluidic sensor for dielectric characterization , 2013 .
[85] Sergey Y. Yurish. Sensors and Biosensors , MEMS Technologies and its Applications , 2013 .
[86] Jong-Gwan Yook,et al. A planar split-ring resonator-based microwave biosensor for label-free detection of biomolecules , 2012 .
[87] Chulki Kim,et al. Highly sensitive and selective sugar detection by terahertz nano-antennas , 2015, Scientific Reports.
[88] Lydia L. Sohn,et al. Dielectric spectroscopy for bioanalysis: From 40 Hz to 26.5 GHz in a microfabricated wave guide , 2001 .
[89] R. Shelby,et al. Experimental Verification of a Negative Index of Refraction , 2001, Science.