IP Library › Granted Patent US 12,619,070
Granted Patent B2
US 12,619,070 · App. 18/335,833 · Granted May 5, 2026

Hologram waveguiding

Inventor: Jamieson Christmas (Milton Keynes, GB)
Assignee: Envisics Ltd
G02B27/0081G02B27/0093G02B27/1026G02B2027/0109
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Quick Facts
Patent No.
US 12,619,070
App. No.
18/335,833
Granted
May 5, 2026
Kind
B2
Abstract

A projection system comprising a display device, a hologram engine and a waveguide. The display device is arranged to display a hologram of an image and spatially modulate light in accordance with the hologram to form a holographic wavefront. The hologram engine is arranged to calculate the hologram. The hologram is arranged to angularly distribute light within the holographic wavefront in accordance with spatial position within the image such that continuous angular ranges of the holographic wavefront respectively correspond with continuous regions of the image. The waveguide comprising a pair of parallel reflective surfaces arranged to waveguide the holographic wavefront therebetween. A first surface of the pair of parallel reflective surfaces is partially reflective-transmissive so as to form an output comprising a plurality of emission zones for the holographic wavefront. The hologram engine is arranged to modify the hologram to at least partially compensate for a decrease in intensity of the emission from each successive emission zone of the waveguide caused by the partial reflection-transmissions at the first surface during waveguiding.

Claims (58)

1 . A projection system comprising:

a display device arranged to display a hologram of an image and spatially modulate light in accordance with the hologram to form a holographic light field;

a hologram engine arranged to calculate the hologram, wherein the hologram is arranged to angularly distribute light within the holographic light field in accordance with spatial position within the image such that continuous angular ranges of the holographic light field respectively correspond with continuous regions of the image;

a waveguide comprising a pair of parallel reflective surfaces arranged to waveguide the holographic light field therebetween, wherein a first surface of the pair of parallel reflective surfaces is partially reflective-transmissive so as to form an output comprising a plurality of emission zones for the holographic light field,

wherein the hologram engine is arranged to modify the hologram to at least partially compensate for a decrease in intensity of the emission from each successive emission zone of the waveguide caused by the partial reflection-transmissions at the first surface during waveguiding.

2 . A projection system as claimed in claim 1 arranged to form a plurality of viewing positions within a viewing region, wherein the entire holographic light field is receivable through a viewing pupil at each viewing position but different continuous angular ranges of the holographic light field are receivable through the viewing pupil from different emission zones of the waveguide.

3 . A projection system as claimed in claim 1 wherein at least partially compensating for the decrease in intensity of the emission from each successive emission zone comprises changing the intensity of at least one angular channel of the holographic light field.

4 . A projection system as claimed in claim 1 wherein at least partially compensating for the decrease in intensity of the emission from each successive emission zone comprises changing the intensity of at least one continuous region of a target image of the hologram prior to calculation of the hologram.

5 . A projection system as claimed in claim 3 wherein changing the intensity comprises applying a gain or loss factor.

6 . A projection system as claimed in claim 1 wherein calculation of the hologram comprises a plurality of iterations of a phase retrieval algorithm.

7 . A projection system as claimed in claim 1 wherein calculation of the hologram comprises a point cloud method.

8 . A projection system as claimed in claim 1 wherein a second surface of the pair of parallel reflective surfaces is substantially fully reflective.

9 . A projection system as claimed in claim 1 further comprising a viewer tracking system arranged to determine a location of a viewer within a viewing window downstream of the waveguide, wherein the hologram engine is arranged to determine a correlation between angular channels of the holographic light field and the emission zones based on the determined location of the viewer.

10 . A projection system as claimed in claim 1 wherein the transmissivity of the first surface at each emission zone, T(n), in the direction of waveguiding satisfies the following equation:

T

⁡

(

n

)

=

T

⁡

(

n

-

1

)

[

1

-

T

⁡

(

n

-

1

)

]

×

[

1

-

L

]

wherein L is an optical loss factor of the waveguide material.

11 . A method of replicating a holographic light field using a waveguide, wherein the waveguide comprises a pair of parallel reflective surfaces arranged to waveguide the holographic light field therebetween, wherein a first surface of the pair of parallel reflective surfaces is partially reflective-transmissive so as to form an output comprising a plurality of emission zones for the holographic light field in the direction of waveguiding and the method comprises:

calculating a hologram arranged to angular distribute light within the holographic light field in accordance with image position such that angular channels within the holographic light field respectively correspond with continuous regions of the image;

modifying the hologram to at least partially compensate for a decrease in intensity of the emission from each successive emission zone of the waveguide caused by the partial reflection-transmissions at the first surface during waveguiding; and

displaying the hologram and spatially modulating light in accordance with the hologram to form the holographic light field.

12 . A method as claimed in claim 11 further comprising receiving, by a viewer disposed within a viewing window downstream of the waveguide, through a pupil thereof, different angular channels of the holographic light field from different emission zones of the waveguide.

13 . A method as claimed in claim 11 further comprising modifying the global intensity of at least one angular channel of the holographic light field.

14 . A method as claimed in claim 11 further comprising changing the global intensity of at least one continuous region of a target image of the hologram prior to calculation of the hologram.

15 . A method as claimed in claim 11 further comprising determining a location of a viewer within a viewing window downstream of the waveguide and determining a correlation between angular channels of the holographic light field and the emission zones based on the determined location of the viewer.

16 . A method as claimed in claim 11 wherein the waveguide is arranged to form a plurality of viewing positions within a viewing region, wherein the entire holographic light field is receivable through a viewing pupil at each viewing position but different continuous angular ranges of the holographic light field are receivable through the viewing pupil from different emission zones of the waveguide.

17 . A method as claimed in claim 11 wherein at least partially compensating for the decrease in intensity of the emission from each successive emission zone comprises changing the intensity of at least one angular channel of the holographic light field.

18 . A method as claimed in claim 11 wherein at least partially compensating for the decrease in intensity of the emission from each successive emission zone comprises changing the intensity of at least one continuous region of a target image of the hologram prior to calculation of the hologram.

19 . A method as claimed in claim 11 wherein calculation of the hologram comprises a plurality of iterations of a phase retrieval algorithm.

20 . A method as claimed in claim 11 wherein calculation of the hologram comprises a point cloud method.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 5, 2026
From: ENVISICS LTD
To: DUALITAS LTD
Reel/Frame 076113/0595 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 16, 2023
From: CHRISTMAS, JAMIESON
To: ENVISICS LTD
Reel/Frame 063973/0824 →
Continuity (1)
Related Publication 20240036308A1 · Feb 1, 2024
References Cited (9)
US 11592664B2 · Christmas · 2023 [cited by applicant]
US 20120002256A1 · Lacoste · 2012 [cited by applicant]
US 20190353759A1 · Christmas · 2019 [cited by examiner]
US 20200264378A1 · Grant et al. · 2020 [cited by applicant]
US 20210165212A1 · Christmas · 2021 [cited by examiner]
US 20210255459A1 · Jamieson · 2021 [cited by applicant]
US 20220252879A1 · Christmas et al. · 2022 [cited by applicant]
US 20230324705A1 · Christmas et al. · 2023 [cited by applicant]
Search Report in United Kingdom, Patent Application No. GB2211097.7, dated Jan. 27, 2023. [cited by applicant]