GB2358512A - Production of a collimated beam - Google Patents
Production of a collimated beam Download PDFInfo
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- GB2358512A GB2358512A GB0001139A GB0001139A GB2358512A GB 2358512 A GB2358512 A GB 2358512A GB 0001139 A GB0001139 A GB 0001139A GB 0001139 A GB0001139 A GB 0001139A GB 2358512 A GB2358512 A GB 2358512A
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- 238000004519 manufacturing process Methods 0.000 title description 6
- 230000005855 radiation Effects 0.000 claims abstract description 39
- 230000003287 optical effect Effects 0.000 claims description 16
- 239000004973 liquid crystal related substance Substances 0.000 claims description 5
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- 230000005670 electromagnetic radiation Effects 0.000 description 2
- 238000005286 illumination Methods 0.000 description 2
- 238000001746 injection moulding Methods 0.000 description 2
- 238000000034 method Methods 0.000 description 2
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F21—LIGHTING
- F21V—FUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
- F21V11/00—Screens not covered by groups F21V1/00, F21V3/00, F21V7/00 or F21V9/00
- F21V11/08—Screens not covered by groups F21V1/00, F21V3/00, F21V7/00 or F21V9/00 using diaphragms containing one or more apertures
- F21V11/14—Screens not covered by groups F21V1/00, F21V3/00, F21V7/00 or F21V9/00 using diaphragms containing one or more apertures with many small apertures
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F21—LIGHTING
- F21V—FUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
- F21V13/00—Producing particular characteristics or distribution of the light emitted by means of a combination of elements specified in two or more of main groups F21V1/00 - F21V11/00
- F21V13/02—Combinations of only two kinds of elements
- F21V13/10—Combinations of only two kinds of elements the elements being reflectors and screens
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F21—LIGHTING
- F21V—FUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
- F21V13/00—Producing particular characteristics or distribution of the light emitted by means of a combination of elements specified in two or more of main groups F21V1/00 - F21V11/00
- F21V13/12—Combinations of only three kinds of elements
- F21V13/14—Combinations of only three kinds of elements the elements being filters or photoluminescent elements, reflectors and refractors
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F21—LIGHTING
- F21V—FUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
- F21V5/00—Refractors for light sources
- F21V5/002—Refractors for light sources using microoptical elements for redirecting or diffusing light
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B27/00—Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
- G02B27/30—Collimators
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B5/00—Optical elements other than lenses
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- G—PHYSICS
- G21—NUCLEAR PHYSICS; NUCLEAR ENGINEERING
- G21K—TECHNIQUES FOR HANDLING PARTICLES OR IONISING RADIATION NOT OTHERWISE PROVIDED FOR; IRRADIATION DEVICES; GAMMA RAY OR X-RAY MICROSCOPES
- G21K1/00—Arrangements for handling particles or ionising radiation, e.g. focusing or moderating
- G21K1/02—Arrangements for handling particles or ionising radiation, e.g. focusing or moderating using diaphragms, collimators
- G21K1/025—Arrangements for handling particles or ionising radiation, e.g. focusing or moderating using diaphragms, collimators using multiple collimators, e.g. Bucky screens; other devices for eliminating undesired or dispersed radiation
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- G—PHYSICS
- G02—OPTICS
- G02F—OPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
- G02F1/00—Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics
- G02F1/01—Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour
- G02F1/13—Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour based on liquid crystals, e.g. single liquid crystal display cells
- G02F1/133—Constructional arrangements; Operation of liquid crystal cells; Circuit arrangements
- G02F1/1333—Constructional arrangements; Manufacturing methods
- G02F1/1335—Structural association of cells with optical devices, e.g. polarisers or reflectors
- G02F1/1336—Illuminating devices
- G02F1/133602—Direct backlight
- G02F1/133606—Direct backlight including a specially adapted diffusing, scattering or light controlling members
- G02F1/133607—Direct backlight including a specially adapted diffusing, scattering or light controlling members the light controlling member including light directing or refracting elements, e.g. prisms or lenses
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- G—PHYSICS
- G02—OPTICS
- G02F—OPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
- G02F1/00—Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics
- G02F1/01—Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour
- G02F1/13—Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour based on liquid crystals, e.g. single liquid crystal display cells
- G02F1/133—Constructional arrangements; Operation of liquid crystal cells; Circuit arrangements
- G02F1/1333—Constructional arrangements; Manufacturing methods
- G02F1/1335—Structural association of cells with optical devices, e.g. polarisers or reflectors
- G02F1/1336—Illuminating devices
- G02F1/133617—Illumination with ultraviolet light; Luminescent elements or materials associated to the cell
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- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Optics & Photonics (AREA)
- Spectroscopy & Molecular Physics (AREA)
- High Energy & Nuclear Physics (AREA)
- Optical Elements Other Than Lenses (AREA)
- Devices For Indicating Variable Information By Combining Individual Elements (AREA)
Abstract
To produce a collimated beam of light for illuminating displays, there is provided a highly reflective diffusely illuminated cavity source 11 having apertures or holes 12 in one wall . Each aperture 12 has a finite depth and angled sides tapering outwardly. The apertures allow light to pass directly through over a limited range of angles but light which enters the apertures at larger angles is reflected off the walls of the apertures. Any radiation not entering an aperture is reflected back into the cavity and then reflected by another wall of the cavity and thus has a finite probability of entering one of the apertures. In this way the a high proportion of the light coming into the cavity will exit the cavity in a preferred direction. The collimation can be improved by placing a lens or diffractive hologram placed after the tapered apertures.
Description
2358512 -1 Production of a collimated beam The invention is concerned with
the production of a two-dimensional well-defined collimated beam of light or beam of light of restricted angular distribution.
Such a source is useful in particular for liquid crystal displays and other modulator devices, partly because the opto-electronic properties of the liquid crystal are sensitive to the direction of incident light and partly for simple geometric reasons of avoiding crosstalk in pixellated displays in which the liquid-crystal switching layer is separated from the red, green and blue layer by a finite distance.
In principle collimated light can be produced by is expanding light from a point source such as a pinhole, or a set of point sources, using a lens or a corresponding array of lenses, or simply by stopping down a diffuse source. However, this inevitably discards a large proportion of the light generated.
EP-Al-30875 (Commissariat A 11Energie Atomique) describes light sources for liquid-crystal displays, including in Fig. 4 one in which light from an array of tubes passes through an array of pyramidal apertures and then a corresponding array of collimating lenses.
However, this is essentially a more sophisticated version of the pinhole concept and uses only a small proportion of the available light.
The invention provides a radiation source comprising a wall defining a cavity for enclosing a radiation generator, and a set of apertures in the wall, in which the apertures taper through the thickness of the wall, forming channels that increase in cross-sectional area from the interior to the exterior of the cavity.
This construction means that, with the sides of the apertures being suitably reflecting, light entering the apertures at highly oblique angles will strike the sloping sides and be reflected substantially towards the normal, forming a substantially collimated beam.
The collimated beam is formed from an array of localised three-dimensional channels which are positioned after the radiation generator, which can be a large-area diffuse source. The cavity wall can enclose the radiation generator completely, using a low-loss reflective inner surface except where the apertures occur. The channels are not simple holes, but instead have a finite depth as in the case of a tunnel. The channels are defined by two openings, which are called the input orifice and the output orifice. The input orifices are those orifices closer to the light source. The output orifices are the orifices further from the source; that is, radiation must pass through the input orifice in order to arrive at the output orifice. Because of the taper, passage through any one of the apertures results in radiation that impinges on the sides of the channel being re directed towards the axis by reflection in such a way that the new path of the radiation makes a smaller angle with the axis. The axis of the channel is defined as the line passing through the mi - dpoint of both orifices. of course, light passing straight through the channel is reasonably well collimated in any event, provided that the depth of the aperture is comparable with its diameter.
The fact that the input'orifice has smaller dimensions than the output orifice results in a tapered structure inside the channel, with the sides angled away from one and other so that the sides of the channel totally enclose the channel between the orifices. Embodiments of the invention can have different forms for the illumination of a display device. The form of the device is dependent upon the requirements of the particular display. Varying the angle the side of the channel makes with the axis of the channel, hereafter called the taper angle changes the amount by which the radiation passing through the channel has the angle it makes with the axis of the channel changed by reflection by a different degree, if it has originally an angle greater than the taper angle.
The range of useful taper angles can be divided into two regimes. In the first, a highly collimated output is required. For this to be achieved the maximum angle of radiation which can traverse the channel must be directed so as to be collected by an optical element which further concentrates the intensity into a restricted angular distribution. This requires a taper angle between about 15' and 400. For radiation concentration in a system where collimation is not required but there is a preferred angular distribution, taper angles of between 400 and 650 can be used. An example of this would be for use in the backlight of a conventional transmissive LC display.
Normally this range of angles does not require additional optical elements.
For a better understanding of the invention embodiments of it will now be described, by way of example, with reference to the accompanying drawings, in which:
Figs. 1 and 2 show the geometrical background;
Fig. 3 shows a single aperture which can be used in embodiments of the invention; Fig. 4 shows an array of such apertures, in section; Fig. 5 shows an embodiment similar to Fig. 4 but with an additional optical element; and Fig. 6 shows a variant of the Fig. 5.embodiment, with a different optical element.
Figure 1 shows the definition of the coordinate system that may be referred to in describing aspects of the invention. An aperture 1 is shown in a flat surface of relatively large area 2 hereafter referred S to as the output plane although of finite thickness along the axis z in the coordinate system shown. The normal to the output plane is along the z direction.
The axis of the aperture 3 is usually, but not necessarily, parallel to the normal to the output plane, depending on the required form of the illumination. The aperture is in a wall of a cavity source which may contain a radiation source or may be injected with electromagnetic radiation to be used in a display device. The radiation may be visible or of the is ultra-violet part of the electromagnetic spectrum. In the case of visible light the images are made up of this light. In the case of the ultra-violet light the images on the screen can then be made up from the excitation of emissive materials such as phosphors, that emit in the visible part of the spectrum. The electromagnetic radiation may in this case be essentially monochromatic, while in the former case it will have a spectral range.
Figure 2 shows the effect of reflection from an inclined surface 6 on the direction of a ray of light.
The taper angle is defined as the angle 7 the reflecting surface makes with the desired direction of collimation, in this case the z-direction. The angle the incident ray makes with this direction 5 is changed to a smaller angle 8 after reflection. For clarity the angles will be given symbols as follows: angle 7 a Ot, angle 5 =- Oi and angle 8 =- 00. It can be shown with simple geometry that the following relation holds for the angle the ray makes with the z-direction in the plane defined by the z-direction and the direction of the ray:
0.= 120,- Oil That is to say, the output angle with respect to the collimation direction (z) is equal to the absolute value of twice the taper angle minus the angle of the ray with respect to the z-direction before reflection.
As an example, a ray incident at 90' with respect to the z-direction being incident on a reflecting surface inclined at 450 to the z-direction will be reflected so that it makes an angle of 0' with respect to the z direction. This is only true in the plane defined by the z-direction and the incident beam, i.e. the plane containing them.
The response of the taper in terms of the angular distribution output from the output orifice is a scalable characteristic of two parameters. The first is the taper angle which is defined in Figure 2 as the angle with respect to the axis of the system made by the sloping walls of the tapered pinholes. The second is the ratio of the area of the input orifice to that of the output orifice, hereafter called the fractional area. The dimensions of the tapered pinhole are defined by the taper angle, the fractional area and the height or distance from the internal orifice to the external.orifice. The optical elements must be tailored for each dimension, however. In terms of manufacturing, this height is responsible for determining the manufacturing process used to make a mould for injection moulding.
For example, if the structure is made to be very small (millimetres) then a reverse.mould, consisting of solid pyramidal tips from which the tapered holes can be moulded, can be formed by diamond tip cutting so as to leave a specularly reflecting surface. In this case an array of pyramidal structures can be formed together by cutting in straight lines across the array area in orthogonal directions.
As another example, if the structure is made of dimensions (centimetres) such that the use of diamond tip cutting is not advantageous then individual pins (e.g. square pins in the simplest case) can be ground so that their ends form the reverse pyramidal shape.
These ends can then be polished until they have optically smooth surfaces. The pins are then assembled into an array which forms the reverse master for the array of tapered pinholes.
In both instances the actual array of tapered pinholes can be formed by injection moulding, for example.
is Figure 3 shows an example of a possible shape for an individual tapered aperture. This will be referred to as a tapered pinhole. In this case both orifices, internal and external, of the pinhole are square, but this need not be the case. Also the taper is-linear here, but it need not be so. Any two-dimensional shape can be used to define the input and output orifices; the design may be a function of the angular distribution required or a manufacturing consideration.
The area of the external orifice 10 is greater than that of the internal orifice 9. Four specularly reflective sides 6, which need not be inclined by the same amount, form the tapered pinhole. In the diagram they are shown as equivalent, for simplicity. Most of the beams entering the input orifice 9 at an angle with respect to the tapered pinhole.axis 3 greater than the taper angle will undergo reflection at the side and be re-directed towards the axis 3. Note that some rays will impinge upon more than one face in the tapered aperture. This results in more than one reflection towards the axis of the aperture. In the case of the square tapered aperture the changes in the angular extent due to reflection off adjacent walls results in an improvement in the collimation angle in two orthogonal directions.
Figure 4 shows a cavity backlight 11 with tapered holes 12 as an illustration of the two possibilities for a ray travelling significantly off-axis. In one case the ray is reflected from the side of the taper and has its angle changed accordingly, as at 13. In the other case the ray does not enter an aperture 14 but is reflected and then diffusely reflected 15 from a rear plate 30; the diffuse nature of the reflection is illustrated by a random selection of the possible paths the ray will take. The ray will now arrive at the output plane Z a second time and has a finite is probability of entering an aperture. The fraction of light that will escape through the tapered pinholes is a function of the size or area of the input orifices 9 and the reflectivity of the interior of the cavity.
Figure 5 shows how an additional optical element 17 can improve the collimation of the output from the tapered pinholes by refraction or diffraction. Rays output from the tapered pinholes can be further re directed 16 using refractive lenses or diffractive holograms/structures, which can be incorporated in a transparent plate forming the optical element 17.
An example of a suitable optical element is a simple plano-convex lens (i.e. one of an array of lenses) which is situated after a tapered pinhole. The curvature of the lens would be such that those rays which make the highest angle with the z-axis at the output orifice are re-directed towards the z-axis by the action of the refraction at the interface between the convex surface of the lens and air. Those rays which are already highly collimated when they reach the lens surface must not be deviated from their path to such anextent that they leave the lens surface at an angle with respect to the z-axis that is not within the desired angular distribution.
The nature of the optical element will vary for different dimensions of tapered pinhole. An illustration of this is as follows: if a plano-convex lens with second radius of curvature of x millimetres is suitable for use with a tapered pinhole of output aperture 0 f Y2 MM2, then this does not mean that the same lens design would be suitable for a tapered pinhole of (2y) 2 MM2. A very obvious example is given if the new taper output orifice dimension is such that the lens radius of curvature is such that the lens does not span the orifice. In any event it should be noted that non-circular apertures cannot be perfectly covered by lenses.
In order to maximise the radiation-collecting ability of the lens system it is possible to have a bi convex lens which is made from two convex surfaces which share the same substrate but on opposing sides of the substrate. In this case one of the surfaces can be allowed to curve into the tapered aperture at the output orifice. This allows a more varied optimisation of the lens than the simple plano-convex case.
Figure 6 shows the use of a different optical element, namely a dielectric stack 18. Here a ray 20 with an angle not within an acceptable angular range with respect to the angle it makes with the z-direction can be selectively reflected 19 using the dielectric interference stack 18. Such a stack works best with a radiation source with a restricted range of wavelengths, which makes it possible to achieve the interference conditions for a range of angles. If the angular distribution required of the rays with respect to the z-direction is that all rays make an angle which is less than 0, then the rays which are not within this distribution can be selectively reflected and recycled 9_ 21.
Recycling inside the cavity is a function of the reflectivity of the walls of the cavity, the fraction of the total area constituted by the apertures, or rather by the inlet orifices, the total area of the wall of the cavity that has no apertures and the flux of radiation inside the cavity. The ratio of the total flux inside the cavity to that which exits via the apertures can be shown to be approximately:
(Do nan x pr OT 1 - pr(l - nan) where (p. = the flux escaping the cavity, I)T the total flux in the cavity, n the number of apertures, an the area of each aperture, and p, = the reflectivity of the cavity walls.
The efficiency of the system can be maximised once the required angular distribution has been chosen. In all cases as high a reflectivity for the cavity walls as is possible is required. It should be noted that increasing the number of lamps or other radiation sources within the cavity itself decreases efficiency, since the material of the lamps may absorb the light emitted by itself or other lamps. The above equation assumes that there is no loss mechanism associated with the radiation impinging onto the surfaces of any radiation sources within the cavity after reflection from the cavity walls.
The cavity wall or walls can be made by a moulding process. For instance, the wall containing the apertures can be injection-moulded in a plastics material and the aperture walls rendered specularly reflective, e.g. by metal coating, while the interior surface is made diffusely reflective, or specularly reflective with a diffusing element within the cavity, e.g. the radiation sources, or.a combination of specularly and diffusely reflective.
In summary, in the examples of the invention as described a cavity source of diffuse radiation has at least one aperture, but preferably more, in a wall of finite thickness, called the output plane. The apertures are distributed over the plane. The purpose of the apertures is to direct the radiation in a preferred direction. They can do this in conjun6tion with another optical element. However, the apertures themselves direct the radiation towards a chosen direction by reflection. To this end, the sides of the is apertures are not parallel to this direction but are at an angle to it. That is to say, the holes in the output plane are tapered in that the radiation enters into an aperture which becomes increasingly large as the thickness of the output plane is traversed. The radiation that is not incident on an aperture is diffusely reflected inside the cavity in such a way that there it is a possibility that it will subsequently enter one of the apertures. This selection and reflection process will determine the efficiency of the radiation output from the system with respect to that put into it or generated inside the cavity.
After each tapered aperture there may exist a refractive optic such as a lens that collects the radiation from the tapered pinhole and further re directs it into an angular distribution that is more restricted than that from the tapered pinhole alone.
Alternatively, an optic can be placed after the output apertures that selects an angular range for reflection and another for transmission. Radiation that is reflected is sent back into the cavity and is recycled.
Alternatively, or in addition, an optic can be placed before the apertures, i.e. on the side of the output wall which faces the radiation sources, that angularly selects the radiation arriving at the input orifice and only allows to pass those rays which will be collimated to an acceptable degree after passing through the apertures. An example of such an optic would be a dielectric interference stack of layers, as described for instance in WO 98/49585.
Furthermore the cavity walls could be made selectively reflective so that they preferentially reflect certain wavelength ranges emitted by the radiation source. This could be advantageous where, say, the radiation is to be substantially monochromatic. An example would be the suppression of the green light inherent in all mercury-discharge lamps, maintaining the near-UV radiation.
The tapered apertures, and indeed the cavity itself, are shown in the embodiments as being empty, i.e. filled with air or other gas. However, they could be filled with a solid or liquid material of suitable optical properties.
The collimator was conceived for use with visible or UV light and in particular with displays, but it could in principle be used for other electromagnetic wavelengths or even for other radiation, such as ultrasound.
Claims (12)
- Claims:A radiation source comprising a wall defining a reflective cavity (11) for enclosing a radiation generator, or the radiation emitted by such a generator, and a set of apertures (12) in the wall. in which the apertures taper through the thickness of the wall, forming channels that increase in area from the interior to the exterior of the cavity.
- 2. A source according to claim 1, in which the cross-section of the apertures is of uniform shape along their depth.is
- 3. A source according to claim 2, in which the aperture section is square or rectangular.
- 4. A source according to any preceding claim, in which the walls taper at between 150 and 650.
- A source according to any preceding claim and further including an optical element which further re directs the radiation in a preferred direction by refraction or diffraction.
- 6. A source according to claim 5, in which the optical element (17, 18) is located on the outside of the cavity wall.
- 7. A source according to claim 5 or 6, in which the optical element is continuous over the wall area containing the apertures.
- 8. A source according to claim 7, in which the optical element is a dielectric stack (18) which uses constructive and destructive interference for a limited range of wavelengths to select the radiation that is transmitted and that which is reflected.
- 9. A source according to any preceding claim and containing a narrow-band light generator of FWHM about 15g in the blue or near-UV wavelength region.
- 10. A source according to any preceding claim, in which the inner walls of the cavity preferentially reflect light of predetermined wavelengths.
- 11. A source according to claims 9 and 10, in which the said predetermined wavelengths correspond to the said narrow band of the radiation. is
- 12. A liquidcrystal display using a light source as claimed in any preceding claim.
Priority Applications (3)
Application Number | Priority Date | Filing Date | Title |
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GB0001139A GB2358512A (en) | 2000-01-18 | 2000-01-18 | Production of a collimated beam |
AU2001226913A AU2001226913A1 (en) | 2000-01-18 | 2001-01-18 | Radiation source producing a collimated beam |
PCT/GB2001/000179 WO2001053744A1 (en) | 2000-01-18 | 2001-01-18 | Radiation source producing a collimated beam |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
GB0001139A GB2358512A (en) | 2000-01-18 | 2000-01-18 | Production of a collimated beam |
Publications (2)
Publication Number | Publication Date |
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GB0001139D0 GB0001139D0 (en) | 2000-03-08 |
GB2358512A true GB2358512A (en) | 2001-07-25 |
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Application Number | Title | Priority Date | Filing Date |
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GB0001139A Withdrawn GB2358512A (en) | 2000-01-18 | 2000-01-18 | Production of a collimated beam |
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AU (1) | AU2001226913A1 (en) |
GB (1) | GB2358512A (en) |
WO (1) | WO2001053744A1 (en) |
Cited By (3)
Publication number | Priority date | Publication date | Assignee | Title |
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WO2003065112A2 (en) * | 2002-02-01 | 2003-08-07 | Samsung Electronics Co., Ltd. | Liquid crystal display device |
WO2003067319A1 (en) * | 2002-02-04 | 2003-08-14 | Bioneer Corporation | Dnas which encode rna polymerase beta-subunit gene of legionella species, primers specific to the dnas and discrimination method for legionella species by using the same |
EP2875278A4 (en) * | 2012-07-20 | 2015-09-23 | Sharp Kk | Lighting device and method for providing light |
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Publication number | Priority date | Publication date | Assignee | Title |
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EP1520189A1 (en) * | 2002-06-28 | 2005-04-06 | Koninklijke Philips Electronics N.V. | Light-collimating system |
WO2004003603A1 (en) * | 2002-06-28 | 2004-01-08 | Koninklijke Philips Electronics N.V. | Light-collimating system |
US7413317B2 (en) | 2004-06-02 | 2008-08-19 | 3M Innovative Properties Company | Polarized UV exposure system |
KR20080074535A (en) * | 2007-02-09 | 2008-08-13 | 삼성전자주식회사 | Collimator for backlight unit and lcd using the same |
WO2013046081A1 (en) * | 2011-09-27 | 2013-04-04 | Koninklijke Philips Electronics N.V. | A lighting system for emitting a shaped light beam and a luminaire |
US20160330435A1 (en) * | 2013-12-31 | 2016-11-10 | Empire Technology Development Llc | Three-dimensional display device using fluorescent material |
CN107102473A (en) * | 2017-05-22 | 2017-08-29 | 青岛海信电器股份有限公司 | A kind of backlight module and liquid crystal display device |
CN109445173B (en) * | 2019-01-02 | 2021-01-22 | 京东方科技集团股份有限公司 | Peep-proof film, manufacturing method thereof and display module |
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WO2003065112A2 (en) * | 2002-02-01 | 2003-08-07 | Samsung Electronics Co., Ltd. | Liquid crystal display device |
WO2003065112A3 (en) * | 2002-02-01 | 2003-11-13 | Samsung Electronics Co Ltd | Liquid crystal display device |
US7324178B2 (en) | 2002-02-01 | 2008-01-29 | Samsung Electronics Co., Ltd. | Liquid crystal display device having a light path changing means having a porous film with a plurality of pores |
WO2003067319A1 (en) * | 2002-02-04 | 2003-08-14 | Bioneer Corporation | Dnas which encode rna polymerase beta-subunit gene of legionella species, primers specific to the dnas and discrimination method for legionella species by using the same |
EP2875278A4 (en) * | 2012-07-20 | 2015-09-23 | Sharp Kk | Lighting device and method for providing light |
Also Published As
Publication number | Publication date |
---|---|
WO2001053744A1 (en) | 2001-07-26 |
GB0001139D0 (en) | 2000-03-08 |
AU2001226913A1 (en) | 2001-07-31 |
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