CASS is an acronym of Collective Accumulation of Single Scattering. This technique collects faint single scattering signal among the intense multiple scattering background in biological sample, thereby enabling conventional diffraction-limited imaging of a target embedded in a turbid sample.

Principle edit

CASS microscopy makes use of time-gated detection and spatial input-output wave correlation. Theoretical description is given below.

Input-Output Relationship for a given Object Function edit

Let   be a planar object function that we wish to reconstruct. Then, it is related to its Fourier transform   by

 

where   represents a 2-dimensional wavevector.

Now, let's take a look at the relation between input and output wave in reflection geometry.

 

where we assumed the incoming wave is plane wave.

Then, the angular spectrum of the output field with given input field is

 

where   has been used.

Coherent Addition edit

Now, consider a reflection matrix in wavevector space without aberration.

 

where   explains the attenuation of single-scattered wave, and   explains the attenuation of the time-gated multiple-scattered waves.

With  , total summation of output field over all possible input wavevector becomes:

 

from which we observe that single-scattered field adds up coherently with the increasing number of incoming wavevectors, whereas the multiple-scattered field adds up incoherently.

Accordingly, the output intensity behaves as follows with the number of incoming wavevector N[1]

 

[2]

Comparison to Confocal Microscopy edit

CASS microscopy has a lot in common with confocal microscopy which enables optical sectioning by eliminating scattered light from other planes by using a confocal pinhole. The main difference between these two microscopy modality comes from whether the basis of illumination is in position space or in momentum space. So, let us try to understand the principle of confocal microscopy in terms of momentum basis, here.

In confocal microscopy, the effect of the pinhole can be understood by the condition that   for all possible input wavevector  's, where it is assumed that illumination is focused at  .

The resulting field from confocal microscopy (CM) then becomes

 

where N refers to the number of possible input wavevector  's.

The formula above gives   for the case of  .

Application edit

Rat brain imaging through skull edit

CASS microscopy has been used to image rat brain without removing skull. It has been further developed such that light energy can be delivered on the target beneath the skull by using reflection eigenchannel, and about 10-fold increase in light energy delivery has been reported.[3]

References edit

  1. ^ Kang, Sungsam; Jeong, Seungwon; Choi, Wonjun; Ko, Hakseok; Yang, Taeseok D.; Joo, Jang Ho; Lee, Jae-Seung; Lim, Yong-Sik; Park, Q.-Han; Choi, Wonshik (April 2015). "Imaging deep within a scattering medium using collective accumulation of single-scattered waves". Nature Photonics. 9 (4): 253–258. Bibcode:2015NaPho...9..253K. doi:10.1038/nphoton.2015.24.
  2. ^ Kang, Pilsung; Kang, Sungsam; Jo, Yonghyeon; Ko, Hakseok; Kim, Guanghoon; Lee, Ye-Ryoung; Choi, Wonshik (1 February 2021). "Optical transfer function of time-gated coherent imaging in the presence of a scattering medium". Optics Express. 29 (3): 3395–3405. Bibcode:2021OExpr..29.3395K. doi:10.1364/OE.412988. PMID 33770938. S2CID 232377119.
  3. ^ Jeong, Seungwon; Lee, Ye-Ryoung; Choi, Wonjun; Kang, Sungsam; Hong, Jin Hee; Park, Jin-Sung; Lim, Yong-Sik; Park, Hong-Gyu; Choi, Wonshik (May 2018). "Focusing of light energy inside a scattering medium by controlling the time-gated multiple light scattering". Nature Photonics. 12 (5): 277–283. arXiv:1709.09337. Bibcode:2018NaPho..12..277J. doi:10.1038/s41566-018-0120-9. S2CID 118925609.