microwave mesoscopics speckle and phase singularity evolution for diffusive and localized waves

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Microwave Mesoscopics Microwave Mesoscopics Speckle and Phase Singularity Evolution Speckle and Phase Singularity Evolution for Diffusive and Localized Waves for Diffusive and Localized Waves Patrick Sebbah Patrick Sebbah Laboratoire de Physique de la Matière Condensée Laboratoire de Physique de la Matière Condensée CNRS, Université de Nice, France CNRS, Université de Nice, France Collaborators: Collaborators: A.Z. Genack , B. Hu, J. A.Z. Genack , B. Hu, J. Klosner, S. Zhang, Klosner, S. Zhang, Queens College, CUNY, NY Queens College, CUNY, NY O. Legrand, F. Mortessagne, C. Vanneste, O. Legrand, F. Mortessagne, C. Vanneste, LPMC, LPMC, Nice Nice V. Freilikher, V. Freilikher, Bar Ilan, Israel, Bar Ilan, Israel, K.Yu. K.Yu. Bliokh, Bliokh, IRA, IRA, Ukraine Ukraine, Yu.P. Yu.P. Bliokh, Bliokh, Technion, Israel Technion, Israel.

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Microwave Mesoscopics Speckle and Phase Singularity Evolution for Diffusive and Localized Waves. Patrick Sebbah Laboratoire de Physique de la Matière Condensée CNRS, Université de Nice, France Collaborators: A.Z. Genack , B. Hu, J. Klosner, S. Zhang, Queens College, CUNY, NY - PowerPoint PPT Presentation

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Page 1: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Microwave MesoscopicsMicrowave MesoscopicsSpeckle and Phase Singularity Evolution Speckle and Phase Singularity Evolution

for Diffusive and Localized Wavesfor Diffusive and Localized Waves

Patrick SebbahPatrick SebbahLaboratoire de Physique de la Matière Laboratoire de Physique de la Matière

CondenséeCondenséeCNRS, Université de Nice, FranceCNRS, Université de Nice, France

Collaborators: Collaborators: A.Z. Genack , B. Hu, J. A.Z. Genack , B. Hu, J. Klosner, S. Zhang, Klosner, S. Zhang, Queens College, CUNY, NYQueens College, CUNY, NY

O. Legrand, F. Mortessagne, C. Vanneste, O. Legrand, F. Mortessagne, C. Vanneste, LPMC, LPMC, NiceNice

V. Freilikher, V. Freilikher, Bar Ilan, Israel, Bar Ilan, Israel, K.Yu.K.Yu. Bliokh, Bliokh, IRA, IRA, UkraineUkraine,, Yu.P.Yu.P. Bliokh,Bliokh, Technion, IsraelTechnion, Israel..

Page 2: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Speckle constructionSpeckle construction

ieA

ieA

css

22

ieA

Re{E}

Im{E}

E

iAe...

Page 3: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Speckle PatternSpeckle Pattern

Page 4: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Diffusive RegimeDiffusive Regime

<T(L)><T(L)>ℓℓ/L/L

Page 5: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Localized RegimeLocalized Regime

<T(L)><T(L)>exp(-exp(-/L)/L)

Page 6: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Transmission SpectrumTransmission Spectrum

Degree of Spectral Overlap : Degree of Spectral Overlap : = < = <>/<>/<>>

0.000

0.001

0.002

10.20 10.25 10.30 10.35

Localized RegimeLocalized Regime

<1<1

GHz17.2

17.0 17.1Diffusive RegimeDiffusive Regime

Δν

>1>1

GHz

Page 7: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

MotivationMotivation

The statistics of the speckle pattern and its evolution are universal ?

or rather

They may reflect the changing character of radiation at the Anderson transition ?

Page 8: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Experimental SetupExperimental Setup

~ 1 cm ~ 1 cm ~10GHz~10GHz

Medium:Medium:Polystyrene Spheres Polystyrene Spheres Diam~1cmDiam~1cmn~1.4n~1.4Vol. Fraction 52%Vol. Fraction 52%

Copper Tube Copper Tube L=1 mL=1 mDiam =7.5 cmDiam =7.5 cm

Page 9: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Experimental SetupExperimental Setup

~ 1 cm ~ 1 cm ~10GHz~10GHz

Medium:Medium:Polystyrene Spheres Polystyrene Spheres Diam~1cmDiam~1cmn~1.4n~1.4Vol. Fraction 52%Vol. Fraction 52%

Copper Tube Copper Tube L=1 mL=1 mDiam =7.5 cmDiam =7.5 cm

Page 10: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Experimental SetupExperimental Setup

Page 11: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Experimental SetupExperimental Setup

Page 12: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Speckle FieldSpeckle Field

Intensity

Frequency = 9.508 GHz ( )

X (mm)

Y (m

m)

10 20 30 40 50 60 70

10

20

30

40

50

60

70 +

-

0

Frequency = 9.508 GHz ( )

X (mm)

Y (m

m)

10 20 30 40 50 60 70

10

20

30

40

50

60

70 Max

Min

Phase

Page 13: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves
Page 14: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Phase SingularitiesPhase Singularities

Page 15: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Speckle in the diffusive regimeSpeckle in the diffusive regime

Frequency = 9.508 GHz ( )

X (mm)

Y (m

m)

10 20 30 40 50 60 70

10

20

30

40

50

60

70 Max

Min

• CI = |CE|2

- Short range correlation- Speckle spots independent- Self averaging pattern

• The field is Gaussian• P(I)= exp (-I)• …

Page 16: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Diffusive vs. LocalizedDiffusive vs. Localized

?Localized Regime

Diffusive Regime

Frequency = 9.508 GHz ( )

X (mm)

Y (m

m)

10 20 30 40 50 60 70

10

20

30

40

50

60

70

Localized Regime

Frequency = 10.454 GHz ( )

X (mm)

Y (m

m)

10 20 30 40 50 60 70

10

20

30

40

50

60

70

Page 17: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Diffusive vs. LocalizedDiffusive vs. Localized

Probability distributions of the magnitude of phase gradient normalized by its ensemble average

Page 18: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Speckle EvolutionSpeckle Evolution

Page 19: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

Probability distributions of normalized average displacement of singularities within one

speckle pattern

Page 20: Microwave Mesoscopics Speckle and Phase Singularity Evolution  for Diffusive and Localized Waves

In ConclusionIn Conclusion

• Fundamental aspects of multiple scattering and Fundamental aspects of multiple scattering and transport through random media reveal transport through random media reveal themselves in some aspects of the speckle field.themselves in some aspects of the speckle field.

• While the statistics of static speckle patterns are While the statistics of static speckle patterns are generic, fluctuations in the change within generic, fluctuations in the change within speckle patterns are greatly enhanced in the speckle patterns are greatly enhanced in the localization regime.localization regime.

• Speckle evolution reflects the interaction with Speckle evolution reflects the interaction with the underlying electromagnetic modes of the the underlying electromagnetic modes of the medium.medium.