Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe...

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Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures

Transcript of Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe...

Page 1: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Mikhail Rybin

Euler SchoolMarch-April 2004

Saint Petersburg State University,Ioffe Physico-Technical Institute

Photonic Band Gap Structures

Page 2: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Overview1. Photonic crystals and photonic bandgap

2. Artificial opals

3. Photonic bandgap structure of artificial opals:

Transmission experiments

4. 3D diffraction of light in opals: visualization of photonic band gap structure

5. Conclusions

Page 3: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Bragg Diffraction

Wavelength does not correspond to the period

Reflected waves are not in phase.

Wave propagates through.

Wavelength corresponds to the period.

Reflected waves are in phase.

Wave does not propagate inside.

Page 4: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Bragg Reflection

2 ( )B Bnd Sin

~ 2B d

Page 5: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Energy gap

Gap in energy spectra of electrons arises in periodic structure

Page 6: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

PBG formation

Page 7: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Energy gap in electromagnetic spectrum

Increasing of the dielectric contrast could lead to the overlapping of energy gaps in any direction in 3D space.

Page 8: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Width of complete band gap

Calculation of bandwidth in dependence of dielectric constantsS. John et al. PRE (1998)

Page 9: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Density of States in fcc structure

There is no states in any direction within complete photonic band gap S. John et al. PRE (1998)

Page 10: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

2D PHB Structures

Macro-porous silicon material with incorporated defect line

Sharp band waveguide channel in 2D photonic

crystal

Page 11: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Artificial Phonic StructureE.Yablonovitch et al., PRL (1987, 1991)

Fabrication of artificial fcc material and band gap structure for such

material.

Page 12: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

3D Photonic materials

S.Noda, Nature (1999)

E. Yablonovitch, PRL(1989)

K. Robbie, Nature (1996)

Examples of artificial photonic crystals

Page 13: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Bragg diffraction through all electromagnetic region

Page 14: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Natural Opals

Page 15: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Artificial Opal

Artificial opal sample (SEM Image)Several cleaved planes of fcc structure are shown

Page 16: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Artificial Opal

Images of artificial opal.Left: as-growth surface (111) of the sample (SEM image)

Right: surface of the (110)-oriented plane sample (AFM image)

Page 17: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Growing process

Page 18: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Fabrication of artificial opals

Silica spheres settle in close packed hexagonal

layers

There are 3 in-layer positionA – red; B – blue; C –green;Layers could pack infcc lattice: ABCABC or ACBACBhcp lattice: ABABAB

Page 19: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Inverted Opals

Inversed opals obtain greater dielectric contrast than opals.

Page 20: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Diffraction on growth layers

Energy of the gap in transmission and energy of the maximum in reflection spectra are coincided

Transmission for different incident angles:

1. 00

2. 200

3. 300

4. 400

5. 540

Page 21: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Band structure of diamond lattice

Photonic band structure of diamond lattice (refractive index ~3.45) John et. al. PRE (1998)

Page 22: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Scan planes

Page 23: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Angular-resolved transmission spectra

Bandgap position for different incident angle directions

Page 24: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Structure of Photonic Bandgap

Page 25: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Experimental Set

( , ) 1 ( , )T I

k -k

k k - k

Page 26: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Experiment

Page 27: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Geometry of “2-spots” and “4- spots”

Diffraction patterns in two different scattering geometry (Art image)

Page 28: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

“2 spots” pattern

Page 29: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Diffraction Pattern (515 nm)

Page 30: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Geometry of “2-spots” and “4- spots”

Diffraction patterns in two different scattering geometry (Art image)

Page 31: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

“2 spots” pattern

Page 32: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Visualization of Photonic Band Structure in opals

1 = 515 nm 2 = 578 nm 3 = 633 nm

Page 33: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Features in diffraction patterns

Page 34: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Processing of images

Page 35: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Conclusions1. Photonic band gap structures are new class of material

possessed uncial photonic properties. Opal-based structures are 3D photonic crystals.

2. Photonic band gap structure was obtained for artificial opals in the visible range from angle-resolved transmission measurements.

3. Photonic band gap structure could be visualized by diffraction method. Diffraction patterns provides information about structure of photonic crystal.

Page 36: Mikhail Rybin Euler School March-April 2004 Saint Petersburg State University, Ioffe Physico-Technical Institute Photonic Band Gap Structures.

Spontaneous Emission Control

Emission is forbidden if energy of photonic bandgap and width of electron’s energy gap are coincided.