Superconducting Electromagnetic

Slides:



Advertisements
Similar presentations
Overview of Metamaterials Radar and Optical Applications
Advertisements

Optical sources Lecture 5.
1 Metamaterials with Negative Parameters Advisor: Prof. Ruey-Beei Wu Student : Hung-Yi Chien 錢鴻億 2010 / 03 / 04.
Lecture 8: Reflection and Transmission of Waves
Shaping the color Optical property of photonic crystals Shine.
Electromagnetic Engineering ECE292 Sophomore Seminar 18 March 2008.
Chapter Fifteen: Radio-Wave Propagation
EKT 441 MICROWAVE Communications
Developing photonic technologies for dielectric laser accelerators
Caleb Hughes Hassan Ismail Brett McCutchan
8. Wave Reflection & Transmission
Wave propagation in structures with left-handed materials Ilya V. Shadrivov Nonlinear Physics Group, RSPhysSE Australian National University, Canberra,
Photonic Crystals and Negative Refraction Dane Wheeler Jing Zhang.
Slow light in photonic crystal waveguides Nikolay Primerov.
Electrical & Computer Engineering Electromagnetics Program David Atkinson & Jeffrey L. Young February 24, 2009.
1 Experiments on Superconducting Metamaterial-Induced Transparency Cihan Kurter, John Abrahams, Chris Bennett, Tian Lan, Steven M. Anlage, L. Zhang, T.
Theoretical investigations on Optical Metamaterials Jianji Yang Supervisor : Christophe Sauvan Nanophotonics and Electromagnetism Group Laboratoire Charles.
Left-handed materials ordinary right-handed (RH) materials: E H, B k, S  left-handed (LH) materials: E H S k  LH materials first theoretically.
Bernd Hüttner DLR Stuttgart Folie 1 A journey through a strange classical optical world Bernd Hüttner CPhys FInstP Institute of Technical Physics DLR Stuttgart.
METAMATERIALS and NEGATIVE REFRACTION Nandita Aggarwal Laboratory of Applied Optics Ecole Polytechnique de Federal Lausanne.
RijksUniversiteit Groningen Nanoscience TopMaster 2006 Symposium
Negative Index of Refraction
Artificial Magnetic Resonators and Potential Applications in Nonlinear Field Yongmin Liu Applied Science & Technology Physics 208A Presentation Oct. 18.
Week 10 – More E&M theory, attenuation, color.
Metamaterial Emergence of novel material properties Ashida Lab Masahiro Yoshii PRL 103, (2009)
A Theoretical study on Negative Refractive Index Metamaterials (Review) Madhurrya P. Talukdar Tezpur University.
1 Optical Properties of Materials … reflection … refraction (Snell’s law) … index of refraction Index of refraction Absorption.
PHYS 241 Final Exam Review Kevin Ralphs. Overview General Exam Strategies Concepts Practice Problems.
Dr. Yungui MA ( 马云贵 ) Office: Room 209, East Building 5, Zijin’gang campus Microwave Fundamentals.
1 Basics of Microwave Measurements Steven Anlage
An Overview of the Theory and Applications of Metasurfaces: The Two-Dimensional Equivalents of Metamaterials IEEE Antennas and Propagation Magazine,
Anomalous Refraction and Photonic Crystal Lenses
Metamaterial Devices Rubaiyat Islam The Edward S. Rogers Sr. Dept. of Electrical & Computer Engineering, University of Toronto, Toronto, ON.
The Fundamental Physics of Directive Beaming at Microwave and Optical Frequencies in Terms of Leaky Waves Saman Kabiri, Master’s Student Dept. of Electrical.
Chapter 24 Wave Optics. The particle nature of light was the basis for ray (geometric) optics The wave nature of light is needed to explain various phenomena.
The Strange Properties of Left-handed Materials C. M. Soukoulis Ames Lab. and Physics Dept. Iowa State University and Research Center of Crete, FORTH -
1 METAMATERIALS Metamaterials are artificial engineered composite structures that can be designed to exhibit specific electromagnetic properties not observed.
Electromagnetic waves and Applications Part III:
Understanding the Electromagnetic Characteristics of Real Metamaterials via Rigorous Field Simulation Raj Mittra Electromagnetic Communication Laboratory.
Negative refraction in photonic crystals Mike Kaliteevski Durham University.
Time-dependent Simulations of Electromagnetically Induced Transparency with Intense Ultra-short Pulses Wei-Chih Liu 劉威志 Department of Physics National.
ENE 428 Microwave Engineering
WAVEGUIDES.
Metamaterial.
Metamaterials Andrew Houck, Dave Kong, Matt Reynolds, Peter Eckley, J. Kong, Ike Chuang, Joe Jacobson.
Double-Positive (DPS) Double-Negative (DNG) Epsilon-Negative (ENG)
LLNL-PRES This work was performed under the auspices of the U.S. Department of Energy by Lawrence Livermore National Laboratory under Contract DE-AC52-07NA27344.
Light and Optics  The Electromagnetic Spectrum  Interference, Diffraction, and Polarization Wave Properties of Light.
ENE 429 Antenna and Transmission lines Theory Lecture 7 Waveguides DATE: 3-5/09/07.
Lecture 26-1 Lens Equation ( < 0 )  True for thin lens and paraxial rays.  magnification m = h’/h = - q/p.
METAMATERIAL BASED ANTENNA FOR WLAN (WiFi) APPLICATIONS
Optical Metamaterials
1 RF Superconducting Materials Workshop at Fermilab A Novel Method to Measure the Absolute Value of the Magnetic Penetration Depth in Superconductors Vladimir.
Lecture 26-1 Lens Equation ( < 0 )  True for thin lens and paraxial rays.  magnification m = h’/h = - q/p.
17. Electromagnetic waves
This work is funded by US Department of Energy and CNAM
DALHM MEETING July 29-30, 2004 FORTH Heraklion, Crete, GREECE
Circuit QED Experiment
Lens Equation ( < 0 ).
Trivia Question Human vision (in daylight) is based on three color receptors which are sensitive to Red, Green, and Blue light. Hence RGB monitors… How.
Interaction between Photons and Electrons
Metamaterials Aos Al-waidh Photonics in Engineering Research Group
ENE 428 Microwave Engineering
CEPC Main Ring Cavity Design with HOM Couplers
Slow light in Photonic Crystals
NEGATIVE REFRACTION AND FOCUSING USING PHOTONIC CRYSTALS
September 18, 2003 FORTH Heraklion Crete, Greece
A THEORETICAL MODEL for MAGNETIC FIELD IMAGING with “SWISS ROLLS” STRUCTURES V. Yannopapas J. B. Pendry M. C. K. Wiltshire J. Hajnal.
Notes 18 ECE 3317 Applied Electromagnetic Waves Prof. David R. Jackson
Chapter 8.1 Chapter 8.2 PERIODIC STRUCTURES
Presentation transcript:

Superconducting Electromagnetic Metamaterials Steven M. Anlage, Michael Ricci, Nathan Orloff Fermilab 23 May, 2007 Work Funded by NSF/ECS-0322844

Negative Refraction: Consequences Left-Handed or Negative Index of Refraction Metamaterials e < 0 AND m < 0 Veselago, 1967 Propagating waves have index of refraction n < 0  Phase velocity is opposite to Poynting vector direction Negative refraction in Snell’s Law: n1 sinq1 = n2 sinq2 Flat lens with no optical axis Converging Lens → Diverging Lens and vice-versa “Perfect” Lens (Pendry, 2000) Reverse Doppler Effect Reversed Čerenkov Effect Radiation Tension LHM RHM Point source “perfect image” Flat Lens Imaging Cloaking Devices (Engheta, Leonhardt, Pendry, Milton) V. G. Veselago, Usp. Fiz. Nauk 92, 517 (1967) [Eng. Trans.: Sov. Phys. Uspekhi 10, 509 (1968)]

Metamaterial vs Photonic Crystal wavelength l elementary units or “atoms” Create an “effective medium,” using engineered “atoms,” with macroscopic eeff, meff, n properties Metamaterial a Photonic Crystal a ~ l Use constructive and destructive interference to engineer properties of light → band structure band gaps defect states negative group velocity …

Superconducting Metamaterials How to make them: Step 1 All-Nb X-band waveguide + couplers Nb X-band waveguide (22.86 x 10.16 mm2) Tc = 9.25 K Thanks to P. Kneisel @ JLab 4.57 mm Nb Wires 0.25 mm dia. Tc = 9.25 K What are we doing? 10.2 mm 22.9 mm Nb Wires

Superconducting Metamaterials How to make them: Step 2 Nb film, ~ 200 nm thick 0.89 cm 3.0 cm 2.36 mm 0.3 mm 0.154 mm Nb SRR 200 nm thick on Quartz (350 mm) Tc = 8.65 K B E k

Overlap of eeff < 0 and meff < 0 to make n < 0 216 SRRs in out Negative Index Passband in a Superconducting Metamaterial 216 SRRs in a 12-cell wire array, 9 cm long Overlap of eeff < 0 and meff < 0 to make n < 0 Increasing temperature Transmission Superconducting Normal Metal Negative Index of Refraction wire array plasma edge

Metamaterials: Novel Applications Thin SubWavelength Cavity Resonators (Engheta, 2002) For a resonance in the z-direction: New possibility – zero net phase winding p = 0 “zeroth order resonance” z 0th resonance condition independent of d1 + d2 and depends only on d1/d2 RHM LHM n1>0 n2<0 Conducting planes p can also be a negative integer!

Split-Ring Resonators Implementation of an LHM Compact Waveguide Novel LHM Pass Band Waveguide 2 cm e < 0 Transmission |S21| (dB) e > 0 Split-Ring Resonators (SRRs) Provide m < 0 at 350 MHz Frequency (GHz) Hrabar, et al., 2005 Measured transmission |S21| parameter of miniaturized waveguide (a = 16 mm) filled with metamaterial based on capacitively loaded rings. The ordinary cutoff of the waveguide is 7 GHz, while the SRRs produce a LHM pass band at 350 MHz.

SC metamaterials papers: Appl. Phys. Lett. 87, 034102 (2005) Conclusions Negatively Refracting Metamaterials offer opportunities for a new kind of optics Negative Index of Refraction Flat Lens Imaging Amplification of Evanescent Waves “Super Lenses” There are many new Emerging Applications Compact (dual TL) structures with enhanced performance Composite LHM/RHM materials with unique field structures New antenna structures Novel optics / NIR lithography Recovering Evanescent fields SC metamaterials papers: Appl. Phys. Lett. 87, 034102 (2005) Appl. Phys. Lett. 88, 264102 (2006) anlage@umd.edu

What Else Can Be Done? Higher Frequencies Smaller size “atoms” Low-Loss Limited only by SC gap frequency Nb: 2D/ħ ~ 1 THz HTS: 2D/ħ ~ 10 THz Size Scaling Losses remain small as dimensions shrink Enhanced Inductance Tricks: Thinner films – Enhanced Kinetic Inductance Josephson Junctions – Enhanced and tunable inductance Novel Effects Unique to Superconductors: SQUID – the ultimate low-loss tunable SRR Josephson Junction Array collective dynamics

Metamaterials: Novel Applications Amplification of evanescent waves Super-resolution imaging Perfect absorber condition Reversed Doppler effect Tunable reflection phase properties New guided mode structures Reversed optics Compact size and light weight electromagnetic structures

Metamaterials: Novel Antennas Directional Antenna with n ~ 0 A point source embedded in a metamaterial with n~0 will produce a directed beam nearly normal to the metamaterial/vacuum interface. From [Enoch2002]. Super-Efficient Electrically-small Dipole Antenna (ℓ << l) RHM LHM Small dipole antenna Ziolkowski (2003) LHM shell compensates Im[ZAnt] Factor of 74 improvement in PRad at 10 GHz with l/1000 antenna

Split-Ring Resonators Implementation of an LHM Compact Waveguide Novel LHM Pass Band Waveguide 2 cm e < 0 Transmission |S21| (dB) e > 0 Split-Ring Resonators (SRRs) Provide m < 0 at 350 MHz Frequency (GHz) Hrabar, et al., 2005 Measured transmission |S21| parameter of miniaturized waveguide (a = 16 mm) filled with metamaterial based on capacitively loaded rings. The ordinary cutoff of the waveguide is 7 GHz, while the SRRs produce a LHM pass band at 350 MHz.

RHM/LHM/RHM resonator is 86% smaller Implementation of an LHM Compact Resonator RHM/LHM/RHM Conventional RHM Both resonate at 1.2 GHz RHM/LHM/RHM resonator is 86% smaller Scher, et al., 2004 Microstrip Resonators RHM Transmission Lines LHM Transmission Line (Dual structure)

Negative Index Microwave Circuits Dual Transmission Lines with NIR concepts are leading to a new class of microwave devices Compact couplers, resonators, antennas, phase shifters have been demonstrated 1.9 GHz 0th-order resonator T. Itoh, et al., UCLA