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Holographic optical element

A holographic optical element (HOE) is an optical component (mirror, lens, directional diffuser, etc.) that produces holographic images using principles of diffraction. HOE is most commonly used in transparent displays, 3D imaging, and certain scanning technologies.

The shape and structure of the HOE is dependent on the piece of hardware it is needed for. The coupled wave theory is a common tool used to calculate the diffraction efficiency or grating volume that helps with the design of an HOE. Early concepts of the holographic optical element can be traced back to the mid-1900s, coinciding closely with the start of holography coined by Dennis Gabor. The application of 3D visualization and displays is ultimately the end goal of the HOE; however, the cost and complexity of the device has hindered the rapid development toward full 3D visualization. The HOE is also used in the development of augmented reality (AR) by companies such as Google with Google Glass or in research universities that look to utilize HOEs to create 3D imaging without the use of eye-wear or head-wear. Furthermore, the ability of the HOE to allow for transparent displays have caught the attention of the US military in its development of better head-up displays (HUD) which is used to display crucial information for aircraft pilots.[1][2][3]

Early development edit

The holographic optical element is closely linked to holography (science of making holograms), a term proposed by Dennis Gabor in 1948. Since the idea of holography came around much has been done over the next few decades to try and create holograms. Around the 1960s, Yuri Nikolaevich Denisyuk, a graduate student from Leningrad recognized that perhaps the wave front of light can be recorded as a standing wave in a photographic emulsion (light crystal) by using monochromatic light which can then reflect light back to reproduce the wave front. This essentially describes a holographic mirror (one of the first HOEs created) and fixed the issue of overlapping images. However, there was little practical use in Densiyuk's proposal and his colleagues dismissed his results. It was not until around the mid-1960s that Densiyuk's proposals resurfaced after some development from Emmett Leith and Juris Upatnieks. These two associates encoded and reconstructed images with a two step hologram process on photographic transparency. More experiments for holographic instruments such as the holographic stereogram developed by Lloyd Cross in the 1970s took the imaging process developed by Leith and Uptanieks and arranged them into vertical strips that were curved into a cylinder. These strips act as an aperture that light passes through, so when a viewer is to look through them, a 3D image can be seen. This demonstrates a very simple version of the diffraction concepts that are still utilized in the production of HOEs and a prototype for 3D glasses.[4]

Classification edit

Volume and thin HOEs edit

HOEs differ from other optical devices since they do not bend light with curvature and shape. Instead, they use diffraction principles (the distribution of light as it passes through an aperture) to diffract light waves by reconstructing a new wavefront using a corresponding material profile, making HOEs a type of diffraction optical element (DOE).[1] Two common types of HOEs that exist are volume HOEs and thin HOEs that are dependent. A thin HOE (one containing a thin layer of holographic grating) has a low diffraction efficiency, causing light beams to diffract in various directions. Conversely, volume HOE types (ones containing multiple layers of holographic gratings) are more efficient since there is more control on the direction of light due to a high diffractive efficiency. Most of the calculations done to create HOEs are usually the volume type HOEs.[5]

Reflection-type and transmission-type HOEs edit

In addition to being a thin or volume HOE, an HOE can also be affected by positioning, which determines whether it is a transmission type or reflection type. These types of HOE are determined by the position of the object beam and reference beam in relation to the recording material of those beams: being on the same side indicates a transmission HOE and otherwise a reflection HOE. Some materials that are most commonly used in manufacturing HOEs include silver halide emulsion and dichromate gelatin.[6][7]

Uses edit

Aerospace industry edit

In the early 2000s NASA conducted a test known as the Holographic Airborne Rotating Lidar Instrument Experiment(HARLIE) that utilized dichromate gelatin-based volume HOE sandwiched between float glass. The objective of the test was to find a new method of measuring surface and atmospheric parameters that could reduce the size, mass, and angular momentum of a spaceborne lidar systems.[6][8] The ability of HOE to be made as curved or bendable allows it to be used in the construction of head up displays(HUD) or head mount displays(HMD). Additionally, transparency can be achieved due to the selectivity of the volume grating that is used to diffract light at a specific incident angle or wavelength.[9] This allows for the development of transparent head-up displays that convey information to aircraft pilots and conserves cockpit space. The US military is currently running tests on these new aircraft displays.[10]

Next-level augmented reality edit

One use of a holographic optical element is in thin-profile combiner lenses for optical head-mounted displays.[11] A reflective volume hologram is used to extract progressively a collimated image that was directed via total internal reflection in an optical waveguide. The spectral and angular Bragg selectivity of the reflective volume hologram makes it particularly well-suited for a combiner using such light sources as RGB LEDs, providing both good see-through quality and good quality of the projected image. This usage has been implemented in smart glasses by Konica Minolta and Sony.[12][13]

One of the goals in the design of an HOE is to try and create 3D visualization and the closest thing to that is augmented reality. The most common types of augmented reality come from head mount displays or glasses type displays, which can be considered the first type of 3D displays. Some examples of this type of display include Microsoft's HoloLens I, II, Google Glass, and Magic Leap. Items like these are often very expensive due to the high cost of materials used to produce HOEs.[1][14] There is also a second type of 3D visualization method that looks to replicate 3D objects through the creation of light fields. This type of visualization is closer to the ones seen in science fiction films or video games. Theoretical ways in which HOE can be used to bring the second type into fruition have been proposed. One proposal from affiliates of Beihang University and Sichuan University in 2019 suggests the use of micro lens array(MLA) HOE along with a display panel can create a 3D image. The proposed technology works by having the MLA type HOE form a spherical wave of arrays. Light is then distributed across this spherical array to form a 3D image. At its current state, the downside to the display is its low resolution quality.[15]

Mathematical theories relevant for HOE construction edit

Coupled-wave theory edit

The coupled-wave theory is a crucial part of the design of volume HOEs. It was first written about by Herwig Kolgenik in 1969 and contains mathematical models that determine the wavelength and angular selectivity(these factors determine how efficiently something may be able to adjust and transmit light at a certain angle or wavelength) of certain materials.[16] Several premises are given by the theory: it is valid for large diffraction efficiencies(measures how much optical power is diffracted at a given spot) and its derivation is done on the basis that the monochromatic light incident is near the Bragg angle (a small angle between a light beam and a plane of crystals) and perpendicular to the plane of incidence (a plane that contains both a ray of light and a surface that usually acts as a mirror at a certain point). Since the HOE works by diffracting light by constructing new waves, trying to get the thick HOE material to diffract light near the Bragg angle will make for more efficient wavefront construction.[17] These equations are used to adjust the hologram grating volume and increase the diffraction efficiency of the HOE during production and can be applied to both transmission type HOEs or reflection type HOEs.[16][17]

Classical grating equation accounts for the incident angle  , diffraction angle  , surface grating  , wavelength in free space  , and the integer order of diffraction  :

 

Bragg equation for plane transmission accounts for   as   and the index of refraction as  :

 

Spectral bandwidth approximation accounts for the spectral bandwidth   and the grating thickness  :

 

Angular bandwidth approximation accounts for   as the angular bandwidth at FWHM (full width at half the maximum):

 

Diffraction efficiency equation accounts for   as the intensity of the grating modulation,   as the diffraction efficiency for TM mode (polarization parallel to the plane of incidence), and   as the reduced effective coupling constant:

 

Wave propagation in the grating as described by scalar wave equation accounts for   as the complex amplitude in the y component and   as the propagation constant that is spatially modulated:

 

Lenslet calculations edit

Lenslet[1] (very small lenses measured in micrometers) shape variation calculations that may help determine the distance, wavelength, and middle-mask aperture that determine HOE output for HOEs acting like a lens.

Horizontal direction calculation:   is the horizontal position of the speckle,   is the parameters of the middle mask aperture(mask placed near lens aperture) perpendicular to the horizontal position of the speckle(height),   is the wavelength, and   is the working focal distance,

 

Vertical direction calculation:   is the vertical position of the speckle,   is the parameters of the middle mask aperture(mask placed near lens aperture) perpendicular to the vertical position of the speckle (width),   is the wavelength, and   is the working focal distance,

 

References edit

  1. ^ a b c d "StackPath". www.laserfocusworld.com. 5 August 2008. Retrieved 2020-10-24.
  2. ^ Zhou, PengCheng; Li, Yan; Liu, Shuxin; Su, Yikai (2018). "Compact design for optical see-through holographic optical elements" (PDF). The Optical Society.{{cite journal}}: CS1 maint: multiple names: authors list (link)
  3. ^ Mizokami, Kyle (2018-03-29). "U.S. Troops to Test Augmented Reality By 2019". Popular Mechanics. Retrieved 2020-11-10.
  4. ^ "Whatever Became of Holography?". American Scientist. 2017-02-06. Retrieved 2020-11-07.
  5. ^ Indutnyi, Ivan Z.; Stronski, Alexander V.; Kostyukevych, Sergey A.; Romanenko, Peter F.; Schepeljavi, Peter E.; Robur, Igor Iosifovitc (1995). "Holographic optical element fabrication using chalcogenide layers". Optical Engineering. 34 (4): 1030–1039. Bibcode:1995OptEn..34.1030I. doi:10.1117/12.197144. ISSN 0091-3286.
  6. ^ a b . 2013-02-15. Archived from the original on 2013-02-15. Retrieved 2020-11-07.
  7. ^ "Holographic Optical Elements Recorded in Silver Halide Sensitized Gelatin Emulsions. Part 2. Reflection Holographic Optical Elements | Request PDF". ResearchGate. Retrieved 2020-11-07.
  8. ^ "StackPath". www.laserfocusworld.com. June 2002. Retrieved 2020-11-11.
  9. ^ Bang, Kiseung; Jang, Changwon; Lee, Byoungho (2019-01-02). "Curved holographic optical elements and applications for curved see-through displays". Journal of Information Display. 20 (1): 9–23. doi:10.1080/15980316.2019.1570978. ISSN 1598-0316.
  10. ^ Mizokami, Kyle (2018-03-29). "U.S. Troops to Test Augmented Reality By 2019". Popular Mechanics. Retrieved 2020-11-10.
  11. ^ Kress, Bernard (2013), "Diffractive and holographic optics as combiners in Head Mounted Displays." (PDF), The 17th International Symposium on Wearable Computers, Zürich, pp. 37–49, retrieved 25 January 2015{{citation}}: CS1 maint: location missing publisher (link)
  12. ^ Kress, Bernard; Meimei Shin (2013), "Diffractive and Holographic Optics as Optical Combiners in Head Mounted Displays" (PDF), Adjunct Publication of the 2013 ACM Conference on Ubiquitous Computing, Zürich: Association for Computing Machinery, pp. 1479–1482, ISBN 978-1-4503-2215-7, retrieved 24 January 2015
  13. ^ Kress, Bernard; Starner, Thad (29 April 2013), "A review of head-mounted displays (HMD) technologies and applications for consumer electronics" (PDF), in Kazemi, Alex; Kress, Bernard; Thibault, Simon (eds.), Proceedings of SPIE, vol. 8720, Photonic Applications for Aerospace, Commercial, and Harsh Environments IV, Baltimore: SPIE (published 31 May 2013), doi:10.1117/12.2015654, ISBN 978-0-8194-9511-2, ISSN 0277-786X, S2CID 120332122, 87200A, retrieved 24 January 2015
  14. ^ Jeong, Jinsoo; Lee, Juhyun; Yoo, Chanhyung; Moon, Seokil; Lee, Byounghyo; Lee, Byoungho (2019). "Holographically customized optical combiner for eye-box extended near-eye display". Optics Express. 27 (26): 38006–38018. doi:10.1364/OE.382190. PMID 31878572. S2CID 209491080.{{cite journal}}: CS1 maint: multiple names: authors list (link)
  15. ^ Wang, Qiong-Hua; He, Min-Yang; Zhang, Han-Le; Deng, Huan (2019-03-01). "Augmented reality 3D display system based on holographic optical element". In Wang, Qiong-Hua; Yoon, Tae-Hoon; Lee, Jiun-Haw (eds.). Advances in Display Technologies IX. Vol. 10942. International Society for Optics and Photonics. p. 1094203. Bibcode:2019SPIE10942E..03W. doi:10.1117/12.2508136. ISBN 9781510625266. S2CID 86577230.
  16. ^ a b Blanche, Pierre-Alexandre; Gailly, Patrick; Habraken, Serge L. M.; Lemaire, Philippe C.; Jamar, Claude A. J. (2004). "Volume phase holographic gratings: large size and high diffraction efficiency". Optical Engineering. 43 (11): 2603–2612. Bibcode:2004OptEn..43.2603B. doi:10.1117/1.1803557. ISSN 0091-3286.
  17. ^ a b Kogelnik, H. (1969). "Coupled wave theory for thick hologram gratings". The Bell System Technical Journal. 48 (9): 2909–2947. doi:10.1002/j.1538-7305.1969.tb01198.x. ISSN 0005-8580.

External links edit

  • Holographic optical element for high efficient illumination
  • Holographic Fluorescence imaging
  • More explanations on how hologram works
  • Holographic optical method for exoplanet spectroscopy(NASA)

holographic, optical, element, holographic, optical, element, optical, component, mirror, lens, directional, diffuser, that, produces, holographic, images, using, principles, diffraction, most, commonly, used, transparent, displays, imaging, certain, scanning,. A holographic optical element HOE is an optical component mirror lens directional diffuser etc that produces holographic images using principles of diffraction HOE is most commonly used in transparent displays 3D imaging and certain scanning technologies The shape and structure of the HOE is dependent on the piece of hardware it is needed for The coupled wave theory is a common tool used to calculate the diffraction efficiency or grating volume that helps with the design of an HOE Early concepts of the holographic optical element can be traced back to the mid 1900s coinciding closely with the start of holography coined by Dennis Gabor The application of 3D visualization and displays is ultimately the end goal of the HOE however the cost and complexity of the device has hindered the rapid development toward full 3D visualization The HOE is also used in the development of augmented reality AR by companies such as Google with Google Glass or in research universities that look to utilize HOEs to create 3D imaging without the use of eye wear or head wear Furthermore the ability of the HOE to allow for transparent displays have caught the attention of the US military in its development of better head up displays HUD which is used to display crucial information for aircraft pilots 1 2 3 Contents 1 Early development 2 Classification 2 1 Volume and thin HOEs 2 2 Reflection type and transmission type HOEs 3 Uses 3 1 Aerospace industry 3 2 Next level augmented reality 4 Mathematical theories relevant for HOE construction 4 1 Coupled wave theory 4 2 Lenslet calculations 5 References 6 External linksEarly development editThe holographic optical element is closely linked to holography science of making holograms a term proposed by Dennis Gabor in 1948 Since the idea of holography came around much has been done over the next few decades to try and create holograms Around the 1960s Yuri Nikolaevich Denisyuk a graduate student from Leningrad recognized that perhaps the wave front of light can be recorded as a standing wave in a photographic emulsion light crystal by using monochromatic light which can then reflect light back to reproduce the wave front This essentially describes a holographic mirror one of the first HOEs created and fixed the issue of overlapping images However there was little practical use in Densiyuk s proposal and his colleagues dismissed his results It was not until around the mid 1960s that Densiyuk s proposals resurfaced after some development from Emmett Leith and Juris Upatnieks These two associates encoded and reconstructed images with a two step hologram process on photographic transparency More experiments for holographic instruments such as the holographic stereogram developed by Lloyd Cross in the 1970s took the imaging process developed by Leith and Uptanieks and arranged them into vertical strips that were curved into a cylinder These strips act as an aperture that light passes through so when a viewer is to look through them a 3D image can be seen This demonstrates a very simple version of the diffraction concepts that are still utilized in the production of HOEs and a prototype for 3D glasses 4 Classification editVolume and thin HOEs edit HOEs differ from other optical devices since they do not bend light with curvature and shape Instead they use diffraction principles the distribution of light as it passes through an aperture to diffract light waves by reconstructing a new wavefront using a corresponding material profile making HOEs a type of diffraction optical element DOE 1 Two common types of HOEs that exist are volume HOEs and thin HOEs that are dependent A thin HOE one containing a thin layer of holographic grating has a low diffraction efficiency causing light beams to diffract in various directions Conversely volume HOE types ones containing multiple layers of holographic gratings are more efficient since there is more control on the direction of light due to a high diffractive efficiency Most of the calculations done to create HOEs are usually the volume type HOEs 5 Reflection type and transmission type HOEs edit In addition to being a thin or volume HOE an HOE can also be affected by positioning which determines whether it is a transmission type or reflection type These types of HOE are determined by the position of the object beam and reference beam in relation to the recording material of those beams being on the same side indicates a transmission HOE and otherwise a reflection HOE Some materials that are most commonly used in manufacturing HOEs include silver halide emulsion and dichromate gelatin 6 7 Uses editAerospace industry edit In the early 2000s NASA conducted a test known as the Holographic Airborne Rotating Lidar Instrument Experiment HARLIE that utilized dichromate gelatin based volume HOE sandwiched between float glass The objective of the test was to find a new method of measuring surface and atmospheric parameters that could reduce the size mass and angular momentum of a spaceborne lidar systems 6 8 The ability of HOE to be made as curved or bendable allows it to be used in the construction of head up displays HUD or head mount displays HMD Additionally transparency can be achieved due to the selectivity of the volume grating that is used to diffract light at a specific incident angle or wavelength 9 This allows for the development of transparent head up displays that convey information to aircraft pilots and conserves cockpit space The US military is currently running tests on these new aircraft displays 10 Next level augmented reality edit One use of a holographic optical element is in thin profile combiner lenses for optical head mounted displays 11 A reflective volume hologram is used to extract progressively a collimated image that was directed via total internal reflection in an optical waveguide The spectral and angular Bragg selectivity of the reflective volume hologram makes it particularly well suited for a combiner using such light sources as RGB LEDs providing both good see through quality and good quality of the projected image This usage has been implemented in smart glasses by Konica Minolta and Sony 12 13 One of the goals in the design of an HOE is to try and create 3D visualization and the closest thing to that is augmented reality The most common types of augmented reality come from head mount displays or glasses type displays which can be considered the first type of 3D displays Some examples of this type of display include Microsoft s HoloLens I II Google Glass and Magic Leap Items like these are often very expensive due to the high cost of materials used to produce HOEs 1 14 There is also a second type of 3D visualization method that looks to replicate 3D objects through the creation of light fields This type of visualization is closer to the ones seen in science fiction films or video games Theoretical ways in which HOE can be used to bring the second type into fruition have been proposed One proposal from affiliates of Beihang University and Sichuan University in 2019 suggests the use of micro lens array MLA HOE along with a display panel can create a 3D image The proposed technology works by having the MLA type HOE form a spherical wave of arrays Light is then distributed across this spherical array to form a 3D image At its current state the downside to the display is its low resolution quality 15 Mathematical theories relevant for HOE construction editCoupled wave theory edit The coupled wave theory is a crucial part of the design of volume HOEs It was first written about by Herwig Kolgenik in 1969 and contains mathematical models that determine the wavelength and angular selectivity these factors determine how efficiently something may be able to adjust and transmit light at a certain angle or wavelength of certain materials 16 Several premises are given by the theory it is valid for large diffraction efficiencies measures how much optical power is diffracted at a given spot and its derivation is done on the basis that the monochromatic light incident is near the Bragg angle a small angle between a light beam and a plane of crystals and perpendicular to the plane of incidence a plane that contains both a ray of light and a surface that usually acts as a mirror at a certain point Since the HOE works by diffracting light by constructing new waves trying to get the thick HOE material to diffract light near the Bragg angle will make for more efficient wavefront construction 17 These equations are used to adjust the hologram grating volume and increase the diffraction efficiency of the HOE during production and can be applied to both transmission type HOEs or reflection type HOEs 16 17 Classical grating equation accounts for the incident angle a displaystyle alpha nbsp diffraction angle b displaystyle beta nbsp surface grating v displaystyle v nbsp wavelength in free space l displaystyle lambda nbsp and the integer order of diffraction m displaystyle m nbsp mvl sin a0 sin b0 displaystyle mv lambda sin alpha 0 sin beta 0 nbsp Bragg equation for plane transmission accounts for 1 v displaystyle 1 v nbsp as L displaystyle Lambda nbsp and the index of refraction as n1 displaystyle n 1 nbsp ml L2n1sin a1 displaystyle m lambda Lambda 2n 1 sin alpha 1 nbsp Spectral bandwidth approximation accounts for the spectral bandwidth Dlf displaystyle Delta lambda f nbsp and the grating thickness d displaystyle d nbsp Dlf l L d cot a1 displaystyle Delta lambda f lambda approx Lambda d cot alpha 1 nbsp Angular bandwidth approximation accounts for af displaystyle alpha f nbsp as the angular bandwidth at FWHM full width at half the maximum Daf L d displaystyle Delta alpha f approx Lambda d nbsp Diffraction efficiency equation accounts for Dn1 displaystyle Delta n 1 nbsp as the intensity of the grating modulation ht displaystyle eta t nbsp as the diffraction efficiency for TM mode polarization parallel to the plane of incidence and cos 2a1 displaystyle cos 2 alpha 1 nbsp as the reduced effective coupling constant ht sin2 pDn1dcos 2a1 lcos a1 displaystyle eta t sin 2 pi Delta n 1 d cos 2 alpha 1 lambda cos alpha 1 nbsp Wave propagation in the grating as described by scalar wave equation accounts for E x z displaystyle E x z nbsp as the complex amplitude in the y component and k x z displaystyle k x z nbsp as the propagation constant that is spatially modulated 2E k2E 0 displaystyle nabla 2 E k 2 E 0 nbsp Lenslet calculations edit Lenslet 1 very small lenses measured in micrometers shape variation calculations that may help determine the distance wavelength and middle mask aperture that determine HOE output for HOEs acting like a lens Horizontal direction calculation dx displaystyle delta x nbsp is the horizontal position of the speckle h displaystyle h nbsp is the parameters of the middle mask aperture mask placed near lens aperture perpendicular to the horizontal position of the speckle height l displaystyle lambda nbsp is the wavelength and f displaystyle f nbsp is the working focal distance dx 2lf h displaystyle delta x 2 lambda f h nbsp Vertical direction calculation dy displaystyle delta y nbsp is the vertical position of the speckle w displaystyle w nbsp is the parameters of the middle mask aperture mask placed near lens aperture perpendicular to the vertical position of the speckle width l displaystyle lambda nbsp is the wavelength and f displaystyle f nbsp is the working focal distance dy 2lf w displaystyle delta y 2 lambda f w nbsp References edit a b c d StackPath www laserfocusworld com 5 August 2008 Retrieved 2020 10 24 Zhou PengCheng Li Yan Liu Shuxin Su Yikai 2018 Compact design for optical see through holographic optical elements PDF The Optical Society a href Template Cite journal html title Template Cite journal cite journal a CS1 maint multiple names authors list link Mizokami Kyle 2018 03 29 U S Troops to Test Augmented Reality By 2019 Popular Mechanics Retrieved 2020 11 10 Whatever Became of Holography American Scientist 2017 02 06 Retrieved 2020 11 07 Indutnyi Ivan Z Stronski Alexander V Kostyukevych Sergey A Romanenko Peter F Schepeljavi Peter E Robur Igor Iosifovitc 1995 Holographic optical element fabrication using chalcogenide layers Optical Engineering 34 4 1030 1039 Bibcode 1995OptEn 34 1030I doi 10 1117 12 197144 ISSN 0091 3286 a b HARLIE WebPage 2013 02 15 Archived from the original on 2013 02 15 Retrieved 2020 11 07 Holographic Optical Elements Recorded in Silver Halide Sensitized Gelatin Emulsions Part 2 Reflection Holographic Optical Elements Request PDF ResearchGate Retrieved 2020 11 07 StackPath www laserfocusworld com June 2002 Retrieved 2020 11 11 Bang Kiseung Jang Changwon Lee Byoungho 2019 01 02 Curved holographic optical elements and applications for curved see through displays Journal of Information Display 20 1 9 23 doi 10 1080 15980316 2019 1570978 ISSN 1598 0316 Mizokami Kyle 2018 03 29 U S Troops to Test Augmented Reality By 2019 Popular Mechanics Retrieved 2020 11 10 Kress Bernard 2013 Diffractive and holographic optics as combiners in Head Mounted Displays PDF The 17th International Symposium on Wearable Computers Zurich pp 37 49 retrieved 25 January 2015 a href Template Citation html title Template Citation citation a CS1 maint location missing publisher link Kress Bernard Meimei Shin 2013 Diffractive and Holographic Optics as Optical Combiners in Head Mounted Displays PDF Adjunct Publication of the 2013 ACM Conference on Ubiquitous Computing Zurich Association for Computing Machinery pp 1479 1482 ISBN 978 1 4503 2215 7 retrieved 24 January 2015 Kress Bernard Starner Thad 29 April 2013 A review of head mounted displays HMD technologies and applications for consumer electronics PDF in Kazemi Alex Kress Bernard Thibault Simon eds Proceedings of SPIE vol 8720 Photonic Applications for Aerospace Commercial and Harsh Environments IV Baltimore SPIE published 31 May 2013 doi 10 1117 12 2015654 ISBN 978 0 8194 9511 2 ISSN 0277 786X S2CID 120332122 87200A retrieved 24 January 2015 Jeong Jinsoo Lee Juhyun Yoo Chanhyung Moon Seokil Lee Byounghyo Lee Byoungho 2019 Holographically customized optical combiner for eye box extended near eye display Optics Express 27 26 38006 38018 doi 10 1364 OE 382190 PMID 31878572 S2CID 209491080 a href Template Cite journal html title Template Cite journal cite journal a CS1 maint multiple names authors list link Wang Qiong Hua He Min Yang Zhang Han Le Deng Huan 2019 03 01 Augmented reality 3D display system based on holographic optical element In Wang Qiong Hua Yoon Tae Hoon Lee Jiun Haw eds Advances in Display Technologies IX Vol 10942 International Society for Optics and Photonics p 1094203 Bibcode 2019SPIE10942E 03W doi 10 1117 12 2508136 ISBN 9781510625266 S2CID 86577230 a b Blanche Pierre Alexandre Gailly Patrick Habraken Serge L M Lemaire Philippe C Jamar Claude A J 2004 Volume phase holographic gratings large size and high diffraction efficiency Optical Engineering 43 11 2603 2612 Bibcode 2004OptEn 43 2603B doi 10 1117 1 1803557 ISSN 0091 3286 a b Kogelnik H 1969 Coupled wave theory for thick hologram gratings The Bell System Technical Journal 48 9 2909 2947 doi 10 1002 j 1538 7305 1969 tb01198 x ISSN 0005 8580 External links editHOE Tutorial Holographic optical element for high efficient illumination Holographic Fluorescence imaging More explanations on how hologram works Holographic optical method for exoplanet spectroscopy NASA Retrieved from https en wikipedia org w index php title Holographic optical element amp oldid 1217083926, wikipedia, wiki, book, books, library,

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