IP Library Granted Patent US 10,444,520
Granted Patent B2
US 10,444,520 · App. 14/384,800 · Granted Oct 15, 2019

High resolution imaging of extended volumes

Inventors: Kishan Dholakia (St Andrews, GB); Tom Vettenburg (St Andrews, BE)
Assignee: UNIVERSITY COURT OF THE UNIVERSITY OF ST ANDREWS
G02B27/0927G01N21/6458G02B21/0032G02B21/10G02B21/16G02B21/367G02B27/0944G02B27/0988G02B27/58G02F1/01H04N7/18G01N21/65
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Quick Facts
Patent No.
US 10,444,520
App. No.
14/384,800
Granted
Oct 15, 2019
Kind
B2
Abstract

A light sheet optical system comprising means for forming a light sheet using a non-diffractive or quasi non-diffractive and/or propagation invariant beam that has an asymmetric intensity beam profile transverse to the direction of propagation, such as an Airy beam.

Claims (26)

1. A light sheet optical system comprising:

a light sheet generating element; and

a modulating element, wherein the light sheet generating element and the modulating element are configured to create one or more of a non-diffractive, quasi non-diffractive, or propagation invariant asymmetric light sheet having an asymmetric intensity profile in a direction transverse to a direction of propagation of the asymmetric light sheet, wherein the modulating element is positioned in an illumination path of a light sheet optical system before or after the light sheet generating element, or wherein the modulating element is integrated with the light sheet generating element.

2. The light sheet optical system as claimed in claim 1 , wherein the modulating element is configured to create one or more of a non-diffractive, quasi non-diffractive, or propagation invariant asymmetric beam that has an asymmetric intensity beam profile in a direction transverse to a direction of propagation of the beam, and wherein the light sheet generating element is configured to form the one or more of the non-diffractive, quasi non-diffractive, or propagation invariant asymmetric light sheet using the one or more of the non-diffractive, quasi non-diffractive, or propagation invariant beam.

3. The light sheet optical system as claimed in claim 2 , wherein the one or more of the non-diffractive, quasi non-diffractive, or propagation invariant asymmetric beam has a Fourier transform that includes a phase term which has a second or higher order polynomial.

4. The light sheet optical system as claimed in claim 2 , wherein the one or more of the non-diffractive, quasi non-diffractive, or propagation invariant asymmetric beam has a Fourier transform which contains a third or higher order component in the Taylor expansion of the phase modulation.

5. The light sheet optical system as claimed in claim 2 , wherein the one or more of the non-diffractive, quasi non-diffractive, or propagation invariant asymmetric beam is self-healing or self-repairing.

6. The light sheet optical system as claimed in claim 2 , wherein the one or more of the non-diffractive, quasi non-diffractive, or propagation invariant asymmetric beam results in no or a minimal number of zeros in the modulation transfer function of the light sheet optical system.

7. The light sheet optical system as claimed in claim 2 , wherein the modulating element comprises a static or dynamic spatial light modulator or other static or dynamic diffractive optical element for forming the one or more of the non-diffractive, quasi non-diffractive, or propagation invariant asymmetric beam.

8. The light sheet optical system as claimed in claim 2 , further comprising a beam scanning arrangement for moving or positioning the one or more of the non-diffractive, quasi non-diffractive, or propagation invariant asymmetric light sheet to capture images at different positions throughout a sample volume.

9. The light sheet optical system as claimed in claim 8 , further comprising a detection objective and one or more optical elements which are configurable to ensure that a focal plane of the detection objective coincides with the one or more of the non-diffractive, quasi non-diffractive, or propagation invariant asymmetric light sheet.

10. The light sheet optical system as claimed in claim 2 , further comprising:

a detector array or camera; and

a phase modulator in a detection path between the one or more of the non-diffractive, quasi non-diffractive, or propagation invariant asymmetric light sheet and the detector array or camera, wherein the detector array or camera and the phase modulator are configured for forming a volume image using light detected from multiple light surfaces formed by the one or more of the non-diffractive, or quasi non-diffractive, or propagation invariant asymmetric light sheet.

11. The light sheet optical system as claimed in claim 2 , wherein the system is arranged to used single photon excitation.

12. The light sheet optical system as claimed in claim 2 , wherein the one or more of the non-diffractive, quasi non-diffractive, or propagation invariant beam comprises an Airy beam.

13. The light sheet optical system as claimed in claim 2 , wherein the one or more of the non-diffractive, quasi non-diffractive, or propagation invariant asymmetric beam has a Fourier transform that includes a phase term which has a fractional exponent of 2.5 or a cubic exponent.

14. The light sheet optical system as claimed in claim 2 , further comprising a sample translation stage for moving or positioning a sample relative to the one or more of the non-diffractive, quasi non-diffractive, or propagation invariant asymmetric light sheet to capture images at different positions throughout a volume of the sample.

15. The light sheet optical system as claimed in claim 1 , wherein the light sheet generating element is configured to form a symmetric light sheet having a symmetric intensity profile in the direction transverse to a direction of propagation of the symmetric light sheet; and the modulating element is configured to convert the symmetric light sheet to one or more of the non-diffractive, quasi non-diffractive, or propagation invariant asymmetric light sheet having the asymmetric intensity profile in the direction transverse to the direction of propagation of the asymmetric light sheet.

16. The light sheet optical system as claimed in claim 15 , wherein the modulating element comprises a phase modulation element which is in an illumination path on which the symmetric light sheet propagates.

17. The light sheet optical system as claimed in claim 16 , wherein the phase modulating element provides a cubic phase modulation.

18. The light sheet optical system as claimed in claim 15 , wherein the modulating element comprises a mask in the illumination path on which the symmetric light sheet propagates.

19. The light sheet optical system as claimed in claim 1 , wherein the system is one or more of a light sheet imaging system; a spectroscopy system; a microscopy system; and a system for exerting an optical force on a particle.

20. The light sheet optical system as claimed in claim 19 , wherein the system is a Raman spectroscopy system.

21. The light sheet optical system as claimed in claim 19 , wherein the particle comprises one or more of an inert or a biological particle, and a cell.

22. The light sheet optical system as claimed in claim 19 , wherein the system is an optical trapping system or an optical guiding system.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 22, 2014
From: DHOLAKIA, KISHAN; VETTENBURG, TOM
To: UNIVERSITY COURT OF THE UNIVERSITY OF ST ANDREWS
Reel/Frame 034010/0016 →
Priority Claims (2)
GB 1205974.7 · Apr 3, 2012 · national
GB 1215169.2 · Aug 24, 2012 · national
Continuity (1)
Related Publication 20150029325A1 · Jan 29, 2015
Cited By (2)
US 12,319,735 US 12,576,159