adaptive optics: optimization and wavefront sensing novel microscope enhancements

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Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

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Adaptive optics: optimization and wavefront sensing Novel microscope enhancements. confocal. widefield. Spherical Aberration (on axis). Constant optical Path difference Every ray arrives At same focal point. Perfect lens. Real lens. 2 related types, lateral and transverse - PowerPoint PPT Presentation

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Page 1: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

1) Adaptive optics: optimization and wavefront sensing

2) Novel microscope enhancements

Page 2: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

widefield confocal

Page 3: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Spherical Aberration (on axis)

Perfect lens

Real lens

2 related types, lateral and transverseDifferent effective focal lengths, positions

Constant opticalPath differenceEvery ray arrivesAt same focal point

Page 4: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Adaptive optics idea

Active element undoes what microscope, specimen does to PSF

Correction is determined by iteration: genetic algorithms, random searchesMore correction takes more time

Page 5: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

37 element micromachined deformable mirrorCan travel 6 microns

Page 6: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Norris. J. Microcopy 2002

Performance for TPEF of coumarin dye solution

Good agreement with calculated, measured in simple specimen

Page 7: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Adaptive optics on non-scanning 2-photon microscope

600 microns into solution:PSF greatly improved

Page 8: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Lateral PSFs (measured by THG)

Adaptive optics improves resolution and signal strengthFor nonlinear optical processes (TPEF, SHG, THG, CARS)

Page 9: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Girkin, OPEX

Optimize feedback based on two-photon fluorescence intensity

Setup for adaptive optics on laser scanning microscope

Page 10: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Correction for TPEF of sub-resolution bead

x-y optical section

Significant improvement even for beads in water

Page 11: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Correction for TPEF of sub-resolution bead

x-z cross section

Significant improvement even for beads into 30 microns of water

Page 12: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Improvement in PSF important for multiphoton processes

Page 13: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

TPEF of guinea pig bladder1.3 NA 40x

30 microns into the tissue

Surfaceoptimized

Optimized for30 microns

Need to optimize at every depth

Page 14: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements
Page 15: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

CARS and adaptive optics

Xie and GirkinOpex

Page 16: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Non-resonant CARS from glass-air interface

Page 17: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Depth dependence of CARS for beads in agarose

Optimizing at greatest depth works bestSystems aberrations also very important

Page 18: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Comparison of CARS image with system, sample induced aberrations

600 microns into solution

Page 19: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Comparison of CARS image with system, sample induced aberrations from tissue

Page 20: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements
Page 21: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Radial Dependence of correction

Best response when optimize at every point But very slow

Page 22: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements
Page 23: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Adaptive Optics by Wavefront correction

Denk, PNAS, 2006

Page 24: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Astigmatism

Different planesHave differentFocal lengths

Page 25: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Correction of Astigmatism

Page 26: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

AO on zebrafish larvaeOlfactory bulb:GFP

50 microns

200 microns

Imaging bloodflow

Page 27: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Wavefront sensing and correction using Spatial Light Modulator

SLM larger range than Deformable mirror: better depth

Eliceiritbp

Page 28: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements
Page 29: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements
Page 30: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

MPE in vivo live animal imaging

Flexible periscope converts inverted to upright microscope

Page 31: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Difficulties with live animal imaging: respiration

8 second intervals, each scan 2 secondsFew micron motion, even anesthetized

Page 32: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Performance for in vivo imaging of muscle

Page 33: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Imaging through 200 microns of tissue

Page 34: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

TPEF of kidney of anesthetized rabbit kidney

Breath-holding for one minute:Necessary for internal organ imaging

Page 35: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Fraction of light collected in epi-illumination geometry

High NA only collects 30% of available light (ideal limit without absorption and scattering)

Page 36: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Parabolic reflector to enhance light collection

Balaban, J. Microscopy (2007)

Page 37: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements
Page 38: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

zeffeIzI

)0()(

Light Attenuation in tissue

Z= depth from surface

Simplest case fit to µs [cm-1]1/ µs =scattering length, or mean free path

Multiple scattering in thick, turbid media

)1(' gss g=anisotropy, avg cos0=isotropic1=all forward

Tendon~0.9Brain=0.1

sat

Page 39: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Photon Transport Theory

4

)',()',(4

),(),(

dsrJsspsrJds

srdJ st

J(r,s) in a specific direction s within a unit solid angle dω

2/32

2

)cos21(

1)(

gg

gp

Anisotropy around propagation axis

radiance J(r,s) relates to the observable quantity, intensity I through the relation

4

),( dsrJI

Page 40: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

S ta rt P h o to n

E nd

F lo w C h artSta rt P ho ton

E nd

S et s tep s izew h en requ ired

M o ve P h o ton

M ove P ho ton to bo und aryP a rtia l Transm it

A b so rb

S catte r

Te rm in ate P ho to n

A no the r P ho to n

H it B o und ary

N

N

Y

Y

R

T

S e t rem ain ing s tepto new step size ,reve rse d irec tion

Absorption weakens intensityScattering changes direction

Calculate photon weight by albedo

New direction based on g

Continue until photon escapesForward or backwards

Monte Carlo Simulation of Irradiance:Based on probabilities from optical parameters

as

sa

Page 41: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Calculation of enhancements basedOn Monte Carlo simulation

Muscle more absorbing than brain: limits enhancement Over purely scattering tissues

Page 42: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Comparison of gain in simulation and experimentfor beads in phantom using optical parameters in literature

Gain over epi-detection is substantial

Page 43: Adaptive optics: optimization and wavefront sensing Novel microscope enhancements

Gasi

Gain is ~8 foldPredicted ~12 fold

Discrepancy probably due to imperfect optics