WO2014046771A1 - Stress insensitive liquid crystal display - Google Patents
Stress insensitive liquid crystal display Download PDFInfo
- Publication number
- WO2014046771A1 WO2014046771A1 PCT/US2013/050467 US2013050467W WO2014046771A1 WO 2014046771 A1 WO2014046771 A1 WO 2014046771A1 US 2013050467 W US2013050467 W US 2013050467W WO 2014046771 A1 WO2014046771 A1 WO 2014046771A1
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- WIPO (PCT)
- Prior art keywords
- layer
- display
- liquid crystal
- glass
- polarizer
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
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Classifications
-
- 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
- G02F1/133528—Polarisers
-
- 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
- G02F1/13363—Birefringent elements, e.g. for optical compensation
-
- 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
- G02F1/13356—Structural association of cells with optical devices, e.g. polarisers or reflectors characterised by the placement of the optical elements
- G02F1/133565—Structural association of cells with optical devices, e.g. polarisers or reflectors characterised by the placement of the optical elements inside the LC elements, i.e. between the cell substrates
-
- 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
- G02F1/13363—Birefringent elements, e.g. for optical compensation
- G02F1/133638—Waveplates, i.e. plates with a retardation value of lambda/n
Definitions
- Electronic devices often include displays.
- cellular telephones and portable computers often include displays for presenting information to a user.
- An electronic device may have a housing such as a housing formed from plastic or metal. Components for the
- electronic device such as display components may be mounted in the housing.
- a display it can be challenging to incorporate a display into the housing of an electronic device. Size and weight are often important considerations in designing electronic devices. In some mounting configurations, standoffs, housing walls, display bezels and other structures may press against a display, leading to bending. If care is not taken, optical effects such as stress-induced
- birefringence may cause a display to exhibit undesired light leakage.
- An electronic device may be provided with a display.
- the display may have upper and lower polarizers.
- a color filter layer, a liquid crystal layer, and a thin- film transistor layer may be interposed between the upper and lower polarizers.
- a backlight unit may provide backlight that passes through the layers of the display.
- the color filter layer and thin-film transistor layer may be formed from materials such as glass that are subject to stress-induced birefringence when the display is mounted in a housing for the electronic device.
- Light leakage may be reduced by incorporating one or more internal layers into the display to help ensure that linearly polarized backlight that passes through the display is not undesirably converted into elliptically polarized light.
- the internal layers of the display may include a thin-film polarizer layer that forms a coating on the color filter layer and/or a thin-film polarizer layer that forms a coating on the thin-film-transistor layer.
- the internal layers may include a retarder layer (waveplate) that is formed as a coating on the color filter layer or thin-film-transistor layer.
- the retarder layer may be configured to counteract polarization state changes that are produced by backlight traveling through the liquid crystal layer.
- FIG. 1 is a perspective view of an illustrative electronic device such as a laptop computer with a display in accordance with an embodiment of the present invention.
- FIG. 2 is a perspective view of an illustrative electronic device such as a handheld electronic device with a display in accordance with an embodiment of the present invention.
- FIG. 3 is a perspective view of an illustrative electronic device such as a tablet computer with a display in accordance with an embodiment of the present invention.
- FIG. 4 is a schematic diagram of an illustrative electronic device with a display in accordance with an embodiment of the present invention.
- FIG. 5 is a cross-sectional side view of an illustrative display in accordance with an embodiment of the present invention.
- FIG. 6 is a cross-sectional side view of a display layer such as a layer of glass in a thin-film- transistor layer or color filter layer showing how stress- induced birefringence may be generated upon application of tensile stress to the layer of glass.
- FIG. 7 is a cross-sectional side view of a display layer such as a layer of glass in a thin-film- transistor layer of color filter layer showing how stress- induced birefringence may be generated upon application of compressive stress to the layer of glass.
- FIG. 8 is a cross-sectional side view of a layer of material such as a layer of glass that has been
- FIG. 9 is a cross-sectional side view of a display with layers of glass that have been subjected to bending due to forces imparted by mounting the display in a device housing in accordance with an embodiment of the present invention.
- FIG. 10A is a cross-sectional diagram of display layers in a conventional liquid crystal display.
- FIG. 10B is a Poincare sphere showing how the polarization of backlight may vary when passing through the conventional display layers of FIG. 9A when the layers are subject to stress-induced birefringence.
- FIG. 11A is a cross-sectional diagram of display layers in a liquid crystal display with one or more internal polarization layers to help reduce light leakage due to stress-induced birefringence in accordance with an embodiment of the present invention.
- FIG. 11B is a Poincare sphere showing how the polarization of backlight may vary when passing through the display layers of FIG. 11A in the presence of stress- induced birefringence in some of the layers in accordance with an embodiment of the present invention.
- FIG. 12A is a cross-sectional diagram of display layers in a liquid crystal display with an internal retarder formed as a coating on an inner (lower) surface of a color filter layer in accordance with an embodiment of the present invention.
- FIG. 12B is a Poincare sphere showing how the polarization of backlight may vary when passing through the display layers of FIG. 12A in the presence of stress- induced birefringence in some of the layers in accordance with an embodiment of the present invention.
- FIG. 13A is a cross-sectional diagram of display layers in a liquid crystal display with an internal retarder formed as a coating on an inner (upper) surface of a thin-film transistor layer in accordance with an embodiment of the present invention.
- FIG. 13B is a Poincare sphere showing how the polarization of backlight may vary when passing through the display layers of FIG. 13A in the presence of stress- induced birefringence in some of the layers in accordance with an embodiment of the present invention.
- Electronic devices may include displays.
- the displays may be used to display images to a user.
- FIGS. 1, 2, and 3 Illustrative electronic devices that may be provided with displays are shown in FIGS. 1, 2, and 3.
- FIG. 1 shows how electronic device 10 may have the shape of a laptop computer having upper housing 12A and lower housing 12B with components such as keyboard 16 and touchpad 18.
- Device 10 may have hinge structures 20 that allow upper housing 12A to rotate in directions 22 about rotational axis 24 relative to lower housing 12B.
- Display 14 may be mounted in upper housing 12A.
- Upper housing 12A which may sometimes referred to as a display housing or lid, may be placed in a closed position by rotating upper housing 12A towards lower housing 12B about rotational axis 24.
- FIG. 2 shows how electronic device 10 may be a handheld device such as a cellular telephone, music player, gaming device, navigation unit, or other compact device.
- housing 12 may have opposing front and rear surfaces.
- Display 14 may be mounted on a front face of housing 12.
- Display 14 may, if desired, have a display cover layer or other exterior layer that includes openings for components such as button 26. Openings may also be formed in a display cover layer or other display layer to accommodate a speaker port (see, e.g., speaker port 28 of FIG. 2) .
- FIG. 3 shows how electronic device 10 may be a tablet computer.
- housing 12 may have opposing planar front and rear
- Display 14 may be mounted on the front surface of housing 12. As shown in FIG. 3, display 14 may have a cover layer or other external layer with an opening to accommodate button 26 (as an example) .
- FIGS. 1, 2, and 3 The illustrative configurations for device 10 that are shown in FIGS. 1, 2, and 3 are merely
- electronic device 10 may be a laptop computer, a computer monitor containing an embedded computer, a tablet computer, a cellular telephone, a media player, or other handheld or portable electronic device, a smaller device such as a wrist-watch device, a pendant device, a headphone or earpiece device, or other wearable or miniature device, a television, a computer display that does not contain an embedded computer, a gaming device, a navigation device, an embedded system such as a system in which electronic equipment with a display is mounted in a kiosk or automobile, equipment that implements the
- Housing 12 of device 10 which is sometimes referred to as a case, may be formed of materials such as plastic, glass, ceramics, carbon-fiber composites and other fiber-based composites, metal (e.g., machined aluminum, stainless steel, or other metals) , other materials.
- Device 10 may be formed using a unibody construction in which most or all of housing 12 is formed from a single structural element (e.g., a piece of machined metal or a piece of molded plastic) or may be formed from multiple housing structures (e.g., outer housing structures that have been mounted to internal frame elements or other internal housing structures) .
- a single structural element e.g., a piece of machined metal or a piece of molded plastic
- housing structures e.g., outer housing structures that have been mounted to internal frame elements or other internal housing structures
- Display 14 may be a touch sensitive display that includes a touch sensor or may be insensitive to touch.
- Touch sensors for display 14 may be formed from an array of capacitive touch sensor electrodes, a resistive touch array, touch sensor structures based on acoustic touch, optical touch, or force-based touch technologies, or other suitable touch sensor components.
- Displays for device 10 may, in general, include image pixels formed from light-emitting diodes (LEDs) , organic LEDs (OLEDs) , plasma cells, electrowetting pixels, electrophoretic pixels, liquid crystal display (LCD) components, or other suitable image pixel structures.
- LEDs light-emitting diodes
- OLEDs organic LEDs
- LCD liquid crystal display
- Other types of display technology may be used in device 10 if desired.
- the use of liquid crystal display structures and backlight structures in device 10 is merely illustrative .
- a display cover layer may cover the surface of display 14 or a display layer such as a color filter layer or other portion of a display may be used as the outermost (or nearly outermost) layer in display 14.
- a display cover layer or other outer display layer may be formed from a transparent glass sheet, a clear plastic layer, or other transparent member.
- Touch sensor components such as an array of capacitive touch sensor electrodes formed from transparent materials such as indium tin oxide may be formed on the underside of a display cover layer, may be formed on a separate display layer such as a glass or polymer touch sensor substrate, or may be integrated into other display layers (e.g., substrate layers such as a thin-film
- FIG. 4 A schematic diagram of an illustrative configuration that may be used for electronic device 10 is shown in FIG. 4. As shown in FIG. 4, electronic device 10 may include control circuitry 28. Control circuitry 28 may include storage and processing circuitry for
- Control circuitry 28 may, for example, include storage such as hard disk drive storage, nonvolatile memory (e.g., flash memory or other electrically-programmable-read-only memory
- volatile memory e.g., static or dynamic random-access-memory
- Control circuitry 28 may include processing circuitry based on one or more microprocessors, microcontrollers, digital signal processors, baseband processors, power management units, audio codec chips, application specific integrated circuits, etc.
- Control circuitry 28 may be used to run software on device 10, such as operating system software and application software. Using this software, control circuitry 28 may present information to a user of
- control circuitry 28 When presenting information to a user on display 14, sensor signals and other information may be used by control circuitry 28 in making adjustments to the strength of backlight
- Input-output circuitry 30 may be used to allow data to be supplied to device 10 and to allow data to be provided from device 10 to external devices.
- Input-output circuitry 30 may include communications circuitry 32.
- Communications circuitry 32 may include wired
- Communications circuitry 32 for supporting communications using data ports in device 10.
- Communications circuitry 32 may also include wireless communications circuits
- circuitry for transmitting and receiving wireless radio-frequency signals using antennas.
- Input-output circuitry 30 may also include input-output devices 34.
- a user can control the operation of device 10 by supplying commands through input-output devices 34 and may receive status information and other output from device 10 using the output resources of input- output devices 34.
- Input-output devices 34 may include sensors and status indicators 36 such as an ambient light sensor, a proximity sensor, a temperature sensor, a pressure sensor, a magnetic sensor, an accelerometer, and light-emitting diodes and other components for gathering information about the environment in which device 10 is operating and providing information to a user of device 10 about the status of device 10.
- sensors and status indicators 36 such as an ambient light sensor, a proximity sensor, a temperature sensor, a pressure sensor, a magnetic sensor, an accelerometer, and light-emitting diodes and other components for gathering information about the environment in which device 10 is operating and providing information to a user of device 10 about the status of device 10.
- Audio components 38 may include speakers and tone generators for presenting sound to a user of device 10 and microphones for gathering user audio input.
- Display 14 may be used to present images for a user such as text, video, and still images.
- Sensors 36 may include a touch sensor array that is formed as one of the layers in display 14.
- buttons and other input-output components 40 such as touch pad
- sensors buttons, joysticks, click wheels, scrolling wheels, touch sensors such as sensors 36 in display 14, key pads, keyboards, vibrators, cameras, and other input- output components.
- FIG. 5 A cross-sectional side view of an illustrative configuration that may be used for display 14 of device 10 (e.g., for display 14 of the devices of FIG. 1, FIG. 2, or FIG. 3 or other suitable electronic devices) is shown in FIG. 5.
- display 14 may include backlight structures such as backlight unit 42 for display 14 of device 10 (e.g., for display 14 of the devices of FIG. 1, FIG. 2, or FIG. 3 or other suitable electronic devices) is shown in FIG. 5.
- display 14 may include backlight structures such as backlight unit 42 for
- backlight 44 During operation, backlight 44 travels outwards (vertically upwards in dimension Z in the orientation of FIG. 5) and passes through display pixel structures in display layers 46. This illuminates any images that are being produced by the display pixels for viewing by a user.
- backlight 44 may
- Display layers 46 may be mounted in chassis structures such as a plastic chassis structure and/or a metal chassis structure to form a display module for mounting in housing 12 or display layers 46 may be mounted directly in housing 12 (e.g., by stacking display layers 46 into a recessed portion in housing 12) . Display layers 46 may form a liquid crystal display or may be used in forming displays of other types.
- display layers 46 may include a liquid crystal layer such a liquid crystal layer 52.
- Liquid crystal layer 52 may be
- Layers 56 and 58 may be interposed between lower polarizer layer 60 and upper polarizer layer 54.
- Layers 58 and 56 may be formed from transparent substrate layers such as clear layers of glass or plastic. Layers 56 and 58 may be layers such as a thin-film
- Conductive traces, color filter elements, transistors, and other circuits and structures may be formed on the substrates of layers 58 and 56 (e.g., to form a thin-film transistor layer and/or a color filter layer) .
- Touch sensor e.g., Touch sensor
- Electrodes may also be incorporated into layers such as layers 58 and 56 and/or touch sensor electrodes may be formed on other substrates.
- layer 58 may be a thin-film transistor layer that includes an array of thin-film transistors and associated electrodes
- Layer 56 may be a color filter layer that includes an array of color filter elements for providing display 14 with the ability to display color images.
- layer 58 may be a color filter layer and layer 56 may be a thin-film transistor layer.
- control circuitry 28 e.g., one or more integrated circuit
- circuits such as components 68 on printed circuit 66 of FIG. 5 may be used to generate information to be displayed on display 14 (e.g., display data).
- display 14 e.g., display data
- circuitry 68 may convey information to be displayed using a signal path such as a signal path formed from conductive metal traces in flexible printed circuit 64 (as an example) .
- Display driver integrated circuit 62 may be mounted on thin-film-transistor layer driver ledge 82 or elsewhere in device 10.
- a flexible printed circuit cable such as flexible printed circuit 64 may be used in routing signals between printed circuit 66 and thin-film- transistor layer 60. If desired, display driver
- integrated circuit 62 may be mounted on printed circuit 66 or flexible printed circuit 64.
- Printed circuit 66 may be formed from a rigid printed circuit board (e.g., a layer of fiberglass-filled epoxy) or a flexible printed circuit (e.g., a flexible sheet of polyimide or other flexible polymer layer) .
- Backlight structures 42 may include a light guide plate such as light guide plate 78.
- Light guide plate 78 may be formed from a transparent material such as clear glass or plastic.
- a light source such as light source 72 may generate light 74.
- Light source 72 may be, for example, an array of light-emitting diodes.
- Light 74 from light source 72 may be coupled into edge surface 76 of light guide plate 78 and may be distributed in dimensions X and Y throughout light guide plate 78 due to the principal of total internal
- Light guide plate 78 may include light- scattering features such as pits or bumps. The light- scattering features may be located on an upper surface and/or on an opposing lower surface of light guide plate 78.
- Light 74 that scatters upwards in direction Z from light guide plate 78 may serve as backlight 44 for display 14.
- Light 74 that scatters downwards may be reflected back in the upwards direction by reflector 80.
- Reflector 80 may be formed from a reflective material such as a layer of white plastic or other shiny materials.
- backlight structures 42 may include optical films 70.
- Optical films 70 may include diffuser layers for helping to homogenize backlight 44 and thereby reduce hotspots, compensation films for enhancing off-axis viewing, and brightness enhancement films (also sometimes referred to as turning films) for collimating backlight 44.
- Brightness enhancement films also sometimes referred to as turning films
- Optical films 70 may overlap the other structures in backlight unit 42 such as light guide plate 78 and
- optical films 70 and reflector 80 may have a matching rectangular footprint .
- the layers of display 14 such as thin-film transistor layer 58 and color filter layer 56 (e.g., the glass layers of the display) may be subjected to stresses. Stress may be imparted by bending the layers of display 14 when display 14 is mounted within housing 12 (e.g., using standoffs, housing walls, internal frame structures, display bezels, adhesive, and other mounting and support structures) .
- the optical behavior of the layers of display 14 when bent depends on the type of materials used in forming the display layers.
- the glass layer when a glass layer such as glass layer 92 is subjected to tensile stress by pulling ends 90 of glass layer 92 in is opposing outward directions 94, the glass layer may exhibit birefringence so that the optical axis (extraordinary axis) of the glass runs parallel to the direction of stress (i.e.,
- the ordinary axis of the glass layer may run
- the glass layer when a glass layer such as glass layer 92 is subjected to compressive stress by pushing ends 90 of glass layer 92 in opposing inward directions 96, the glass layer may exhibit birefringence so that the optical axis (extraordinary axis) of the glass runs parallel to the direction of stress (i.e., into the page in the orientation of FIG. 6) .
- the ordinary axis may run perpendicular to the extraordinary axis in the plane of layer 92.
- a bent layer of glass such as glass layer 92 of FIG. 8 may exhibit compressive stress along top surface 98 (e.g., near the edge of glass layer 92) and may exhibit tensile stress along lower surface 100.
- glass layer 92 may be characterized by an optical axis such as optical axis 102 that extends into the page of FIG. 8 along upper surface 98 and an optical axis such as optical axis 104 that extends parallel to the page of FIG. 8 along lower surface 100.
- Layers 56 and 58 may be glass layers or layers of other material with optical characteristics of the type described in connection with FIGS. 6, 7, and 8.
- a layer of sealant such as sealant 106 e.g., a bead of adhesive
- Sealant 106 may run around the periphery of display 14 in a rectangular ring and may surround and enclose liquid crystal material 52. The presence of sealant 106 may cause the tensile stress on the lower surface of layer 56 to counteract the
- optical axis 108 of layer 56 near the edge of layer 56 may cause optical axis 110 of layer 58 near the edge of layer 58 (e.g., in edge region ER) to lie in the plane of layer 58 (lying within the page and pointing to the right in the example of FIG. 9) .
- the perpendicular optical axes of layers 58 and 56 may lead to changes in the polarization state of backlight passing through these layers that cause light leakage in conventional displays.
- FIG. 10A is a cross-sectional side view of a conventional display having glass layers that may be subject to stress-induced birefringence.
- the display of FIG. 10A is a liquid crystal display in which liquid crystal layer 116 is sandwiched between thin- film-transistor layer 114 and color filter layer 118.
- the display has upper and lower polarizers located
- a backlight may generate backlight 112 that travels
- backlight 112 may be linearly polarized
- the lower polarizer may impart a linear
- the polarization of light 112 may then be affected by passing from point A to point B through thin-film-transistor layer 114 (which is
- Point 132 represents right-hand circularly polarized light.
- Point 134 represents left- hand circularly polarized light.
- Intermediate points on the Poincare sphere represent various types of
- each of the layers of FIG. 10A and 10B has an optical axis that is aligned in a different direction.
- thin-film transistor layer 114 is characterized by optical axis 122
- color filter layer 118 is characterized by optical axis 124
- liquid crystal layer 116 is characterized by optical axis 120.
- azimuthal angle a of a vector each point P on equatorial line 130 is equal to 26, where ⁇ is equal to an actual physical angle (e.g., an azimuthal angle in real space that is associated with the orientation of an optical axis for a display layer or an angle associated with the polarization of light such as light 112 that is passing through the display) .
- a pair of axes such as thin-film-transistor axis 122 and liquid crystal layer axis 120 that appear to be perpendicular to each other in the Poincare sphere
- FIG. 10B representation of FIG. 10B are, within the real-life coordinate system of the display, oriented at a 45° angle with respect to each other.
- a pair of axes such as thin-film-transistor axis 122 and color filter layer axis 124 that appear to be separated by 180° in the Poincare sphere representation of FIG. 10B are, within the real-life coordinate system of the display, oriented at a 90° angle with respect to each other (i.e., axis 124 is perpendicular to axis 122) .
- the behavior of the polarization of light 112 is affected by the orientation of each optical axis and the thickness of each layer in the display of FIG. 10A. As shown in FIG. 10B, light 112 is initially linearly
- the polarization of light 112 is represented by point B on the Poincare sphere of FIG. 10B (i.e., light 112 is transformed from linearly polarized light to elliptically polarized light due to the stress-induced birefringence of layer 114) .
- the transition from point A to point B along line 140 on the surface of the Poincare sphere is associated with rotation of point A about thin- film-transistor layer optical axis 122 on the surface of the sphere.
- light 112 passes through liquid crystal layer 116.
- Layer 116 causes the polarization of light 112 to move from point B to point C along line 142 on the Poincare sphere of FIG. 10B (rotating about liquid crystal layer optical axis 120) .
- birefringence of layer 118 causes the polarization of light 112 to change from the polarization state
- the polarization state changes associated with lines 144 and 140 would have canceled each other out, resulting in minimal changes to the linear polarization of light 112 (i.e., light 112 would have remain linearly polarized with a polarization state represented by point A and the display would have operated satisfactorily) .
- light 112 at point D is substantially elliptically polarized, rather than being linearly
- FIGS. 11, 12, and 13 Illustrative display configurations with designs that address the shortcomings of conventional displays in handling stress-induced birefringence are shown in FIGS. 11, 12, and 13.
- display 14 may be provided with one or more internal polarizer layers such as layer 146 and/or layer 146' .
- the layers of display 14 that are shown in FIG. 11A may be sandwiched between upper and lower polarizers (not shown in FIG. 11A) such as upper polarizer 54 and lower polarizer 60.
- Layers such as layers 146 and/or layer 146' may be implemented as thin-film coatings on glass substrates.
- internal polarizer 146 may be formed as a thin-film coating on the upper surface of thin-film-transistor layer 58 and internal polarizer 146' may be formed as a thin- film coating on the lower surface of color filter layer 56.
- Examples of thin-film polarizer coatings that may be used for forming polarizers such as polarizers 146 and 146' of FIG. 11A include polymers containing optically anisotropic dyes that are characterized by different absorption coefficients in different lateral dimensions within the plane of display 14. The thickness of the thin-film coatings used in forming the internal
- polarizer (s) for display 14 may be, for example, less than 10 microns, less than 3 microns, less than 2 microns, or less than 1 micron.
- Optical axis 150 of FIG. 11B may be
- Optical axis 152 of FIG. 11B may be associated with the liquid crystal layer 52.
- Optical axis 154 of FIG. 11B may be associated with polarizer layer 146 and may be associated with color filter layer 56, which may exhibit stress-induced
- light 112 is initially linearly polarized (point A) .
- the polarization of light 44 may be represented by point B on the Poincare sphere of FIG. 11B (i.e., light 44 may be transformed from linearly polarized light to elliptically polarized light due to the stress-induced birefringence of layer 58).
- the transition from point A to point B along line 156 on the surface of the Poincare sphere of FIG. 11B is associated with
- linear polarizer layer 146 Due to the presence of linear polarizer layer 146, light 44 in polarization state B' is characterized by linear polarization. As a result, light 44 will be less elliptically polarized (more linearly polarized) upon passing through layers 52 and 56 than in conventional display arrangements. As shown in FIG. 11B, the
- transition of the polarization state of light 44 when traveling from point B' to point C through liquid crystal layer 52 of FIG. 11A may be represented by line 160 and the transition of the polarization state of light 44 when traveling from point C to point D through color filter layer 56 may be represented by line 162.
- light 44 is elliptically polarized at point D, light 44 at point D is more linearly polarized than conventional light D of FIGS. 10A and 10B, thereby reducing light leakage and improving the performance of display 14.
- lower internal polarizer 146 may be supplemented by adding an upper internal polarizer such as polarizer 146' of FIG. 11A.
- Upper polarizer 146' may also be used alone (e.g., instead of lower internal polarizer 146) . Whether polarizer layer 146 is used alone,
- polarizer 146' is used alone, or polarizers 146 and 146' are used together, the presence of internal polarizer material adjacent to liquid crystal layer 52 may help remove the birefringence effects of the glass layers in display 14 such as layer 58, thereby reducing the
- FIG. 12A is a diagram of another illustrative configuration that may be used for the middle layers of display 14 between upper polarizer 54 and lower polarizer 60.
- display 14 may be provided with an internal retarder layer such as retarder layer 178 (sometimes referred to as a wave plate, birefringent layer, or birefringent coating) .
- retarder layer 178 sometimes referred to as a wave plate, birefringent layer, or birefringent coating
- retarder 178 may be configured to be equal and opposite to that of liquid crystal layer 52 (as an example) .
- Internal retarder layers such as retarder layer 178 may be
- the thickness of the thin-film coating used in forming an internal retarder such as retarder 178 for display 14 may be, for example, less than 10 microns, less than 3
- microns less than 2 microns, or less than 1 micron.
- Optical axis 150 of FIG. 12B may represent the optical axis of thin-film-transistor layer 58, which may exhibit stress-induced birefringence.
- Optical axis 152 of FIG. 12B may be associated with liquid crystal layer 52.
- Optical axis 154 of FIG. 12B may represent the optical axis of color filter layer 56, which may exhibit stress-induced birefringence.
- Optical axis 176 of FIG. 12B may be associated with retarder 178 (i.e., retarder 178 may have an optical axis that is perpendicular to the optical axis of liquid crystal layer 52 when measured in degrees ⁇ ) .
- light 112 is initially linearly polarized (point A) .
- the polarization of light 44 may be represented by point B on the Poincare sphere of FIG. 12B (i.e., light 44 may be transformed from linearly polarized light to elliptically polarized light due to the stress-induced birefringence of layer 58).
- the transition from point A to point B along line 156 on the surface of the Poincare sphere of FIG. 12B is associated with
- retarder 178 is represented by the transition from
- line 172 which is associated with rotation about retarder optical axis 176, which is perpendicular to optical axis 152 in ⁇ (i.e., in the layers of display 14), retraces (in reverse direction) the course of line 170, thereby counteracting and neutralizing the polarization state changes associated with passing backlight 44 through liquid crystal layer 52.
- transition of the polarization state of light 44 when traveling from point C to point D through color filter layer 56 may be represented by line 174, which is associated with rotation about color filter optical axis 154. Because transition 172 brings the polarization state of light 44 back to point B from point B' , transition 174 causes the polarization of light 44 to return to its original state (i.e., point D is associated with the same linearly polarized light state as original point A) . As a result, display performance will not be degraded due to an elliptical light polarization state as light 44 exits the upper surface of color filter layer 56.
- the internal retarder (retarder 178') has been formed on the upper surface of thin-film-transistor layer 58, rather than the lower surface of color filter layer 56.
- transition from B' to C returns light 44 to the same polarization state (point C) as the arrangement of FIG. 12A, but does so by following transition line 172' of FIG. 13B (associated with rotation about optical axis 176' of retarder 178') rather than by following transition line 172 of FIG. 12B.
- the optical axis of retarder 178' is parallel to the optical axis of liquid crystal layer 52.
- a display that includes an upper polarizer, a lower polarizer, and a lower polarizer.
- polarizer a liquid crystal layer
- first glass layer interposed between the upper polarizer and the liquid crystal layer
- second glass layer interposed between the lower polarizer and the liquid crystal layer
- an internal polarizer layer located between the first and second glass layers.
- the first glass layer includes a color filter layer.
- the internal polarizer layer includes a thin-film polarizer coating on the color filter layer.
- the second glass layer includes a thin-film-transistor layer.
- the display includes an additional internal polarizer layer that forms a coating on the thin-film-transistor layer and that is located between the thin-film-transistor layer and the liquid crystal layer.
- the second glass layer includes a thin-film-transistor layer.
- the internal polarizer layer includes a thin-film polarizer coating on the thin-film-transistor layer.
- a display that includes an upper polarizer, a lower polarizer, and a lower polarizer.
- the birefringent retarder layer is configured to counteract light polarization state changes associated with passing backlight through the liquid crystal layer.
- the first glass layer includes a color filter layer.
- the birefringent retarder layer includes a coating on the color filter layer.
- the second glass layer includes a thin-film-transistor layer.
- the birefringent retarder layer includes a coating on the thin-film-transistor layer.
- the retarder layer has a first optical axis
- the liquid crystal layer has a second optical axis
- the first optical axis is perpendicular to the second optical axis.
- the retarder layer includes a first optical axis
- the liquid crystal layer includes a second optical axis
- the first optical axis is parallel to the second optical axis.
- the retarder layer includes a coating on the first glass layer .
- the retarder layer includes a coating on the second glass layer .
- a display that includes an upper polarizer, a lower polarizer, and a lower polarizer.
- polarizer a liquid crystal layer
- first transparent layer interposed between the upper polarizer and the liquid crystal layer
- second transparent layer
- a waveplate layer located between the first and second glass layers that is configured to counteract light polarization state changes caused by passing light through the liquid crystal layer.
- the first transparent layer includes a glass color filter layer and the second transparent layer includes a glass thin-film- transistor layer.
- the waveplate layer includes a layer of liquid crystal
- the waveplate layer includes a coating on the glass color filter layer.
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Description
Stress Insensitive Liquid Crystal Display
This application claims priority to United
States patent application No. 13/622,973, filed September 19, 2012, which is hereby incorporated by reference herein in its entirety.
Background
This relates generally to electronic devices, and more particularly, to electronic devices with
displays .
Electronic devices often include displays. For example, cellular telephones and portable computers often include displays for presenting information to a user. An electronic device may have a housing such as a housing formed from plastic or metal. Components for the
electronic device such as display components may be mounted in the housing.
It can be challenging to incorporate a display into the housing of an electronic device. Size and weight
are often important considerations in designing electronic devices. In some mounting configurations, standoffs, housing walls, display bezels and other structures may press against a display, leading to bending. If care is not taken, optical effects such as stress-induced
birefringence may cause a display to exhibit undesired light leakage.
It would therefore be desirable to be able to provide improved displays for electronic devices.
Summary
An electronic device may be provided with a display. The display may have upper and lower polarizers. A color filter layer, a liquid crystal layer, and a thin- film transistor layer may be interposed between the upper and lower polarizers. A backlight unit may provide backlight that passes through the layers of the display.
The color filter layer and thin-film transistor layer may be formed from materials such as glass that are subject to stress-induced birefringence when the display is mounted in a housing for the electronic device. Light leakage may be reduced by incorporating one or more internal layers into the display to help ensure that linearly polarized backlight that passes through the display is not undesirably converted into elliptically polarized light.
The internal layers of the display may include a thin-film polarizer layer that forms a coating on the color filter layer and/or a thin-film polarizer layer that forms a coating on the thin-film-transistor layer. If desired, the internal layers may include a retarder layer (waveplate) that is formed as a coating on the color filter layer or thin-film-transistor layer. The retarder
layer may be configured to counteract polarization state changes that are produced by backlight traveling through the liquid crystal layer.
Further features of the invention, its nature and various advantages will be more apparent from the accompanying drawings and the following detailed
description of the preferred embodiments.
Brief Description of the Drawings
FIG. 1 is a perspective view of an illustrative electronic device such as a laptop computer with a display in accordance with an embodiment of the present invention.
FIG. 2 is a perspective view of an illustrative electronic device such as a handheld electronic device with a display in accordance with an embodiment of the present invention.
FIG. 3 is a perspective view of an illustrative electronic device such as a tablet computer with a display in accordance with an embodiment of the present invention.
FIG. 4 is a schematic diagram of an illustrative electronic device with a display in accordance with an embodiment of the present invention.
FIG. 5 is a cross-sectional side view of an illustrative display in accordance with an embodiment of the present invention.
FIG. 6 is a cross-sectional side view of a display layer such as a layer of glass in a thin-film- transistor layer or color filter layer showing how stress- induced birefringence may be generated upon application of tensile stress to the layer of glass.
FIG. 7 is a cross-sectional side view of a display layer such as a layer of glass in a thin-film- transistor layer of color filter layer showing how stress-
induced birefringence may be generated upon application of compressive stress to the layer of glass.
FIG. 8 is a cross-sectional side view of a layer of material such as a layer of glass that has been
subjected to bending and that exhibits stress-induced birefringence in a display.
FIG. 9 is a cross-sectional side view of a display with layers of glass that have been subjected to bending due to forces imparted by mounting the display in a device housing in accordance with an embodiment of the present invention.
FIG. 10A is a cross-sectional diagram of display layers in a conventional liquid crystal display.
FIG. 10B is a Poincare sphere showing how the polarization of backlight may vary when passing through the conventional display layers of FIG. 9A when the layers are subject to stress-induced birefringence.
FIG. 11A is a cross-sectional diagram of display layers in a liquid crystal display with one or more internal polarization layers to help reduce light leakage due to stress-induced birefringence in accordance with an embodiment of the present invention.
FIG. 11B is a Poincare sphere showing how the polarization of backlight may vary when passing through the display layers of FIG. 11A in the presence of stress- induced birefringence in some of the layers in accordance with an embodiment of the present invention.
FIG. 12A is a cross-sectional diagram of display layers in a liquid crystal display with an internal retarder formed as a coating on an inner (lower) surface of a color filter layer in accordance with an embodiment of the present invention.
FIG. 12B is a Poincare sphere showing how the
polarization of backlight may vary when passing through the display layers of FIG. 12A in the presence of stress- induced birefringence in some of the layers in accordance with an embodiment of the present invention.
FIG. 13A is a cross-sectional diagram of display layers in a liquid crystal display with an internal retarder formed as a coating on an inner (upper) surface of a thin-film transistor layer in accordance with an embodiment of the present invention.
FIG. 13B is a Poincare sphere showing how the polarization of backlight may vary when passing through the display layers of FIG. 13A in the presence of stress- induced birefringence in some of the layers in accordance with an embodiment of the present invention.
Detailed Description
Electronic devices may include displays. The displays may be used to display images to a user.
Illustrative electronic devices that may be provided with displays are shown in FIGS. 1, 2, and 3.
FIG. 1 shows how electronic device 10 may have the shape of a laptop computer having upper housing 12A and lower housing 12B with components such as keyboard 16 and touchpad 18. Device 10 may have hinge structures 20 that allow upper housing 12A to rotate in directions 22 about rotational axis 24 relative to lower housing 12B. Display 14 may be mounted in upper housing 12A. Upper housing 12A, which may sometimes referred to as a display housing or lid, may be placed in a closed position by rotating upper housing 12A towards lower housing 12B about rotational axis 24.
FIG. 2 shows how electronic device 10 may be a handheld device such as a cellular telephone, music
player, gaming device, navigation unit, or other compact device. In this type of configuration for device 10, housing 12 may have opposing front and rear surfaces.
Display 14 may be mounted on a front face of housing 12. Display 14 may, if desired, have a display cover layer or other exterior layer that includes openings for components such as button 26. Openings may also be formed in a display cover layer or other display layer to accommodate a speaker port (see, e.g., speaker port 28 of FIG. 2) .
FIG. 3 shows how electronic device 10 may be a tablet computer. In electronic device 10 of FIG. 3, housing 12 may have opposing planar front and rear
surfaces. Display 14 may be mounted on the front surface of housing 12. As shown in FIG. 3, display 14 may have a cover layer or other external layer with an opening to accommodate button 26 (as an example) .
The illustrative configurations for device 10 that are shown in FIGS. 1, 2, and 3 are merely
illustrative. In general, electronic device 10 may be a laptop computer, a computer monitor containing an embedded computer, a tablet computer, a cellular telephone, a media player, or other handheld or portable electronic device, a smaller device such as a wrist-watch device, a pendant device, a headphone or earpiece device, or other wearable or miniature device, a television, a computer display that does not contain an embedded computer, a gaming device, a navigation device, an embedded system such as a system in which electronic equipment with a display is mounted in a kiosk or automobile, equipment that implements the
functionality of two or more of these devices, or other electronic equipment.
Housing 12 of device 10, which is sometimes referred to as a case, may be formed of materials such as
plastic, glass, ceramics, carbon-fiber composites and other fiber-based composites, metal (e.g., machined aluminum, stainless steel, or other metals) , other
materials, or a combination of these materials. Device 10 may be formed using a unibody construction in which most or all of housing 12 is formed from a single structural element (e.g., a piece of machined metal or a piece of molded plastic) or may be formed from multiple housing structures (e.g., outer housing structures that have been mounted to internal frame elements or other internal housing structures) .
Display 14 may be a touch sensitive display that includes a touch sensor or may be insensitive to touch. Touch sensors for display 14 may be formed from an array of capacitive touch sensor electrodes, a resistive touch array, touch sensor structures based on acoustic touch, optical touch, or force-based touch technologies, or other suitable touch sensor components.
Displays for device 10 may, in general, include image pixels formed from light-emitting diodes (LEDs) , organic LEDs (OLEDs) , plasma cells, electrowetting pixels, electrophoretic pixels, liquid crystal display (LCD) components, or other suitable image pixel structures. In some situations, it may be desirable to use LCD components to form display 14, so configurations for display 14 in which display 14 is a liquid crystal display are sometimes described herein as an example. It may also be desirable to provide displays such as display 14 with backlight structures, so configurations for display 14 that include a backlight unit may sometimes be described herein as an example. Other types of display technology may be used in device 10 if desired. The use of liquid crystal display structures and backlight structures in device 10 is merely
illustrative .
A display cover layer may cover the surface of display 14 or a display layer such as a color filter layer or other portion of a display may be used as the outermost (or nearly outermost) layer in display 14. A display cover layer or other outer display layer may be formed from a transparent glass sheet, a clear plastic layer, or other transparent member.
Touch sensor components such as an array of capacitive touch sensor electrodes formed from transparent materials such as indium tin oxide may be formed on the underside of a display cover layer, may be formed on a separate display layer such as a glass or polymer touch sensor substrate, or may be integrated into other display layers (e.g., substrate layers such as a thin-film
transistor layer) .
A schematic diagram of an illustrative configuration that may be used for electronic device 10 is shown in FIG. 4. As shown in FIG. 4, electronic device 10 may include control circuitry 28. Control circuitry 28 may include storage and processing circuitry for
controlling the operation of device 10. Control circuitry 28 may, for example, include storage such as hard disk drive storage, nonvolatile memory (e.g., flash memory or other electrically-programmable-read-only memory
configured to form a solid state drive) , volatile memory (e.g., static or dynamic random-access-memory), etc.
Control circuitry 28 may include processing circuitry based on one or more microprocessors, microcontrollers, digital signal processors, baseband processors, power management units, audio codec chips, application specific integrated circuits, etc.
Control circuitry 28 may be used to run software
on device 10, such as operating system software and application software. Using this software, control circuitry 28 may present information to a user of
electronic device 10 on display 14. When presenting information to a user on display 14, sensor signals and other information may be used by control circuitry 28 in making adjustments to the strength of backlight
illumination that is used for display 14.
Input-output circuitry 30 may be used to allow data to be supplied to device 10 and to allow data to be provided from device 10 to external devices. Input-output circuitry 30 may include communications circuitry 32.
Communications circuitry 32 may include wired
communications circuitry for supporting communications using data ports in device 10. Communications circuitry 32 may also include wireless communications circuits
(e.g., circuitry for transmitting and receiving wireless radio-frequency signals using antennas) .
Input-output circuitry 30 may also include input-output devices 34. A user can control the operation of device 10 by supplying commands through input-output devices 34 and may receive status information and other output from device 10 using the output resources of input- output devices 34.
Input-output devices 34 may include sensors and status indicators 36 such as an ambient light sensor, a proximity sensor, a temperature sensor, a pressure sensor, a magnetic sensor, an accelerometer, and light-emitting diodes and other components for gathering information about the environment in which device 10 is operating and providing information to a user of device 10 about the status of device 10.
Audio components 38 may include speakers and
tone generators for presenting sound to a user of device 10 and microphones for gathering user audio input.
Display 14 may be used to present images for a user such as text, video, and still images. Sensors 36 may include a touch sensor array that is formed as one of the layers in display 14.
User input may be gathered using buttons and other input-output components 40 such as touch pad
sensors, buttons, joysticks, click wheels, scrolling wheels, touch sensors such as sensors 36 in display 14, key pads, keyboards, vibrators, cameras, and other input- output components.
A cross-sectional side view of an illustrative configuration that may be used for display 14 of device 10 (e.g., for display 14 of the devices of FIG. 1, FIG. 2, or FIG. 3 or other suitable electronic devices) is shown in FIG. 5. As shown in FIG. 5, display 14 may include backlight structures such as backlight unit 42 for
producing backlight 44. During operation, backlight 44 travels outwards (vertically upwards in dimension Z in the orientation of FIG. 5) and passes through display pixel structures in display layers 46. This illuminates any images that are being produced by the display pixels for viewing by a user. For example, backlight 44 may
illuminate images on display layers 46 that are being viewed by viewer 48 in direction 50.
Display layers 46 may be mounted in chassis structures such as a plastic chassis structure and/or a metal chassis structure to form a display module for mounting in housing 12 or display layers 46 may be mounted directly in housing 12 (e.g., by stacking display layers 46 into a recessed portion in housing 12) . Display layers 46 may form a liquid crystal display or may be used in
forming displays of other types.
In a configuration in which display layers 46 are used in forming a liquid crystal display, display layers 46 may include a liquid crystal layer such a liquid crystal layer 52. Liquid crystal layer 52 may be
sandwiched between display layers such as display layers 58 and 56. Layers 56 and 58 may be interposed between lower polarizer layer 60 and upper polarizer layer 54.
Layers 58 and 56 may be formed from transparent substrate layers such as clear layers of glass or plastic. Layers 56 and 58 may be layers such as a thin-film
transistor layer and/or a color filter layer. Conductive traces, color filter elements, transistors, and other circuits and structures may be formed on the substrates of layers 58 and 56 (e.g., to form a thin-film transistor layer and/or a color filter layer) . Touch sensor
electrodes may also be incorporated into layers such as layers 58 and 56 and/or touch sensor electrodes may be formed on other substrates.
With one illustrative configuration, layer 58 may be a thin-film transistor layer that includes an array of thin-film transistors and associated electrodes
(display pixel electrodes) for applying electric fields to liquid crystal layer 52 and thereby displaying images on display 14. Layer 56 may be a color filter layer that includes an array of color filter elements for providing display 14 with the ability to display color images. If desired, layer 58 may be a color filter layer and layer 56 may be a thin-film transistor layer.
During operation of display 14 in device 10, control circuitry 28 (e.g., one or more integrated
circuits such as components 68 on printed circuit 66 of FIG. 5) may be used to generate information to be
displayed on display 14 (e.g., display data). The
information to be displayed may be conveyed from circuitry 68 to display driver integrated circuit 62 using a signal path such as a signal path formed from conductive metal traces in flexible printed circuit 64 (as an example) .
Display driver integrated circuit 62 may be mounted on thin-film-transistor layer driver ledge 82 or elsewhere in device 10. A flexible printed circuit cable such as flexible printed circuit 64 may be used in routing signals between printed circuit 66 and thin-film- transistor layer 60. If desired, display driver
integrated circuit 62 may be mounted on printed circuit 66 or flexible printed circuit 64. Printed circuit 66 may be formed from a rigid printed circuit board (e.g., a layer of fiberglass-filled epoxy) or a flexible printed circuit (e.g., a flexible sheet of polyimide or other flexible polymer layer) .
Backlight structures 42 may include a light guide plate such as light guide plate 78. Light guide plate 78 may be formed from a transparent material such as clear glass or plastic. During operation of backlight structures 42, a light source such as light source 72 may generate light 74. Light source 72 may be, for example, an array of light-emitting diodes.
Light 74 from light source 72 may be coupled into edge surface 76 of light guide plate 78 and may be distributed in dimensions X and Y throughout light guide plate 78 due to the principal of total internal
reflection. Light guide plate 78 may include light- scattering features such as pits or bumps. The light- scattering features may be located on an upper surface and/or on an opposing lower surface of light guide plate 78.
Light 74 that scatters upwards in direction Z from light guide plate 78 may serve as backlight 44 for display 14. Light 74 that scatters downwards may be reflected back in the upwards direction by reflector 80. Reflector 80 may be formed from a reflective material such as a layer of white plastic or other shiny materials.
To enhance backlight performance for backlight structures 42, backlight structures 42 may include optical films 70. Optical films 70 may include diffuser layers for helping to homogenize backlight 44 and thereby reduce hotspots, compensation films for enhancing off-axis viewing, and brightness enhancement films (also sometimes referred to as turning films) for collimating backlight 44. Optical films 70 may overlap the other structures in backlight unit 42 such as light guide plate 78 and
reflector 80. For example, if light guide plate 78 has a rectangular footprint in the X-Y plane of FIG. 5, optical films 70 and reflector 80 may have a matching rectangular footprint .
When display 14 is mounted in a housing, the layers of display 14 such as thin-film transistor layer 58 and color filter layer 56 (e.g., the glass layers of the display) may be subjected to stresses. Stress may be imparted by bending the layers of display 14 when display 14 is mounted within housing 12 (e.g., using standoffs, housing walls, internal frame structures, display bezels, adhesive, and other mounting and support structures) . The optical behavior of the layers of display 14 when bent depends on the type of materials used in forming the display layers.
As shown in FIG. 6, when a glass layer such as glass layer 92 is subjected to tensile stress by pulling ends 90 of glass layer 92 in is opposing outward
directions 94, the glass layer may exhibit birefringence so that the optical axis (extraordinary axis) of the glass runs parallel to the direction of stress (i.e.,
horizontally within the page in the orientation of FIG. 6) . The ordinary axis of the glass layer may run
perpendicular to the optical axis in the plane of glass layer 92.
As shown in FIG. 7, when a glass layer such as glass layer 92 is subjected to compressive stress by pushing ends 90 of glass layer 92 in opposing inward directions 96, the glass layer may exhibit birefringence so that the optical axis (extraordinary axis) of the glass runs parallel to the direction of stress (i.e., into the page in the orientation of FIG. 6) . The ordinary axis may run perpendicular to the extraordinary axis in the plane of layer 92.
A bent layer of glass such as glass layer 92 of FIG. 8 may exhibit compressive stress along top surface 98 (e.g., near the edge of glass layer 92) and may exhibit tensile stress along lower surface 100. As a result, glass layer 92 may be characterized by an optical axis such as optical axis 102 that extends into the page of FIG. 8 along upper surface 98 and an optical axis such as optical axis 104 that extends parallel to the page of FIG. 8 along lower surface 100.
As shown in FIG. 9, when the layers of display 14 such as color filter layer 56 and thin-film-transistor layer 58 are mounted in device housing 12, these layers may become bent (e.g., from forces introduced when
mounting display 14 in housing 12) . The bending of layers 56 and 58 may give rise to stress-induced birefringence. If care is not taken, this birefringence can adversely affect the performance of a display by causing light
leakage when the display is viewed by a user.
Layers 56 and 58 may be glass layers or layers of other material with optical characteristics of the type described in connection with FIGS. 6, 7, and 8. A layer of sealant such as sealant 106 (e.g., a bead of adhesive) may be interposed between color filter layer 56 and thin- film-transistor layer 58. Sealant 106 may run around the periphery of display 14 in a rectangular ring and may surround and enclose liquid crystal material 52. The presence of sealant 106 may cause the tensile stress on the lower surface of layer 56 to counteract the
compressive stress on the upper surface of layer 58. This compensation of stresses may cause optical axis 108 of layer 56 near the edge of layer 56 (e.g., in edge region ER) to point into the page of FIG. 9 and may cause optical axis 110 of layer 58 near the edge of layer 58 (e.g., in edge region ER) to lie in the plane of layer 58 (lying within the page and pointing to the right in the example of FIG. 9) . The perpendicular optical axes of layers 58 and 56 (particularly prevalent in edge regions ER) may lead to changes in the polarization state of backlight passing through these layers that cause light leakage in conventional displays.
FIG. 10A is a cross-sectional side view of a conventional display having glass layers that may be subject to stress-induced birefringence. As shown in FIG. 10, the display of FIG. 10A is a liquid crystal display in which liquid crystal layer 116 is sandwiched between thin- film-transistor layer 114 and color filter layer 118. The display has upper and lower polarizers located
respectively above and below the layers of FIG. 10. A backlight may generate backlight 112 that travels
vertically upwards through the display in direction Z.
Upon passing through the lower polarizer (i.e., at point A of FIG. 10), backlight 112 may be linearly polarized
(i.e., the lower polarizer may impart a linear
polarization on backlight 112) . The polarization of light 112 may then be affected by passing from point A to point B through thin-film-transistor layer 114 (which is
exhibiting stress-induced birefringence) , by passing from point B to point C through liquid crystal 116 (which is birefringent ) , and by passing from point C to point D through color filter layer 118 (which is exhibiting stress-induced birefringence) . The upper and lower polarizers in the display do not typically exhibit stress- induced birefringence and are not shown in FIG. 10A.
The polarization state of backlight 112 as backlight 112 travels through the layers of the
conventional display of FIG. 10A is illustrated in the Poincare sphere of FIG. 10B. In a Poincare sphere, linear polarization states are represented by points on
equatorial line 130. Point 132 represents right-hand circularly polarized light. Point 134 represents left- hand circularly polarized light. Intermediate points on the Poincare sphere represent various types of
elliptically polarized light.
Each of the layers of FIG. 10A and 10B has an optical axis that is aligned in a different direction. In the Poincare sphere representation of FIG. 10B, thin-film transistor layer 114 is characterized by optical axis 122, color filter layer 118 is characterized by optical axis 124, and liquid crystal layer 116 is characterized by optical axis 120. On the Poincare sphere, azimuthal angle a of a vector each point P on equatorial line 130 is equal to 26, where Θ is equal to an actual physical angle (e.g., an azimuthal angle in real space that is associated with
the orientation of an optical axis for a display layer or an angle associated with the polarization of light such as light 112 that is passing through the display) . As a result, a pair of axes such as thin-film-transistor axis 122 and liquid crystal layer axis 120 that appear to be perpendicular to each other in the Poincare sphere
representation of FIG. 10B are, within the real-life coordinate system of the display, oriented at a 45° angle with respect to each other. Similarly, a pair of axes such as thin-film-transistor axis 122 and color filter layer axis 124 that appear to be separated by 180° in the Poincare sphere representation of FIG. 10B are, within the real-life coordinate system of the display, oriented at a 90° angle with respect to each other (i.e., axis 124 is perpendicular to axis 122) .
The behavior of the polarization of light 112 is affected by the orientation of each optical axis and the thickness of each layer in the display of FIG. 10A. As shown in FIG. 10B, light 112 is initially linearly
polarized (point A) . Following passage through layer 114, the polarization of light 112 is represented by point B on the Poincare sphere of FIG. 10B (i.e., light 112 is transformed from linearly polarized light to elliptically polarized light due to the stress-induced birefringence of layer 114) . Visually, the transition from point A to point B along line 140 on the surface of the Poincare sphere is associated with rotation of point A about thin- film-transistor layer optical axis 122 on the surface of the sphere. Following passage of light 112 through layer 114, light 112 passes through liquid crystal layer 116. Layer 116 causes the polarization of light 112 to move from point B to point C along line 142 on the Poincare sphere of FIG. 10B (rotating about liquid crystal layer
optical axis 120) .
After traveling through liquid crystal layer 116, light 112 passes through layer 118. The
birefringence of layer 118 causes the polarization of light 112 to change from the polarization state
represented by point C to the polarization state
represented by point D along line 144 of the Poincare sphere of FIG. 10B (rotating about color filter layer optical axis 124) .
If liquid crystal layer 116 had not been
present, the polarization state changes associated with lines 144 and 140 would have canceled each other out, resulting in minimal changes to the linear polarization of light 112 (i.e., light 112 would have remain linearly polarized with a polarization state represented by point A and the display would have operated satisfactorily) .
Because of the presence of liquid crystal layer 116 and the associated transition of the polarization state of light 112 from point B to point C, however, light 112 at point D (i.e., light 112 exiting the upper surface of color filter layer 118 of FIG. 10A) is substantially elliptically polarized, rather than being linearly
polarized as desired. When this elliptically polarized light passes through the upper polarizer, the fact that the light is not linearly polarized as expected allows some of the light to leak out from the upper surface of the display through the upper polarizer, even when the electric field being applied to liquid crystal layer 116 is attempting to display a black display pixel. Display performance in conventional displays is therefore limited by the inability of conventional displays to
satisfactorily display black images in the presence of stress-induced birefringence in the layers of the display.
Illustrative display configurations with designs that address the shortcomings of conventional displays in handling stress-induced birefringence are shown in FIGS. 11, 12, and 13.
As shown in the example of FIG. 11A, display 14 may be provided with one or more internal polarizer layers such as layer 146 and/or layer 146' . The layers of display 14 that are shown in FIG. 11A may be sandwiched between upper and lower polarizers (not shown in FIG. 11A) such as upper polarizer 54 and lower polarizer 60. Layers such as layers 146 and/or layer 146' may be implemented as thin-film coatings on glass substrates. For example, internal polarizer 146 may be formed as a thin-film coating on the upper surface of thin-film-transistor layer 58 and internal polarizer 146' may be formed as a thin- film coating on the lower surface of color filter layer 56. Examples of thin-film polarizer coatings that may be used for forming polarizers such as polarizers 146 and 146' of FIG. 11A include polymers containing optically anisotropic dyes that are characterized by different absorption coefficients in different lateral dimensions within the plane of display 14. The thickness of the thin-film coatings used in forming the internal
polarizer (s) for display 14 may be, for example, less than 10 microns, less than 3 microns, less than 2 microns, or less than 1 micron.
The behavior of the polarization of display backlight such as light 44 is affected by the orientation of each optical axis and the thickness of each layer in display 14. Optical axis 150 of FIG. 11B may be
associated with thin-film-transistor layer 58, which may exhibit stress-induced birefringence. Optical axis 152 of FIG. 11B may be associated with the liquid crystal layer
52. Optical axis 154 of FIG. 11B may be associated with polarizer layer 146 and may be associated with color filter layer 56, which may exhibit stress-induced
birefringence .
As shown in FIG. 11B, light 112 is initially linearly polarized (point A) . Following passage through thin-film-transistor layer 58, the polarization of light 44 may be represented by point B on the Poincare sphere of FIG. 11B (i.e., light 44 may be transformed from linearly polarized light to elliptically polarized light due to the stress-induced birefringence of layer 58). The transition from point A to point B along line 156 on the surface of the Poincare sphere of FIG. 11B is associated with
rotation about thin-film-transistor layer optical axis 150. Following passage of light 44 through layer 58, light 44 may pass through polarizer layer 146 to point B' . The transition of the polarization state of light 44 when traveling from point B to B' through polarizer layer 146 of FIG. 11A is represented by the transition from
elliptically polarized polarization state B to linearly polarized polarization state B' in FIG. 11B along line 158.
Due to the presence of linear polarizer layer 146, light 44 in polarization state B' is characterized by linear polarization. As a result, light 44 will be less elliptically polarized (more linearly polarized) upon passing through layers 52 and 56 than in conventional display arrangements. As shown in FIG. 11B, the
transition of the polarization state of light 44 when traveling from point B' to point C through liquid crystal layer 52 of FIG. 11A may be represented by line 160 and the transition of the polarization state of light 44 when traveling from point C to point D through color filter
layer 56 may be represented by line 162. Although light 44 is elliptically polarized at point D, light 44 at point D is more linearly polarized than conventional light D of FIGS. 10A and 10B, thereby reducing light leakage and improving the performance of display 14.
If desired, lower internal polarizer 146 may be supplemented by adding an upper internal polarizer such as polarizer 146' of FIG. 11A. Upper polarizer 146' may also be used alone (e.g., instead of lower internal polarizer 146) . Whether polarizer layer 146 is used alone,
polarizer 146' is used alone, or polarizers 146 and 146' are used together, the presence of internal polarizer material adjacent to liquid crystal layer 52 may help remove the birefringence effects of the glass layers in display 14 such as layer 58, thereby reducing the
ellipticity of the polarized light exiting layer 56 and improving display performance.
FIG. 12A is a diagram of another illustrative configuration that may be used for the middle layers of display 14 between upper polarizer 54 and lower polarizer 60. As shown in the example of FIG. 12A, display 14 may be provided with an internal retarder layer such as retarder layer 178 (sometimes referred to as a wave plate, birefringent layer, or birefringent coating) . The
polarization change that is imposed on light 44 by
retarder 178 may be configured to be equal and opposite to that of liquid crystal layer 52 (as an example) . Internal retarder layers such as retarder layer 178 may be
implemented as a coating on the lower surface of color filter layer 56 (e.g., a thin-film coating of a liquid crystal polymer or other birefringent material) . The thickness of the thin-film coating used in forming an internal retarder such as retarder 178 for display 14 may
be, for example, less than 10 microns, less than 3
microns, less than 2 microns, or less than 1 micron.
The behavior of the polarization of display backlight such as light 44 is affected by the orientation of each optical axis and the thickness of each layer in display 14. Optical axis 150 of FIG. 12B may represent the optical axis of thin-film-transistor layer 58, which may exhibit stress-induced birefringence. Optical axis 152 of FIG. 12B may be associated with liquid crystal layer 52. Optical axis 154 of FIG. 12B may represent the optical axis of color filter layer 56, which may exhibit stress-induced birefringence. Optical axis 176 of FIG. 12B may be associated with retarder 178 (i.e., retarder 178 may have an optical axis that is perpendicular to the optical axis of liquid crystal layer 52 when measured in degrees Θ) .
As shown in FIG. 12B, light 112 is initially linearly polarized (point A) . Following passage through thin-film-transistor layer 58, the polarization of light 44 may be represented by point B on the Poincare sphere of FIG. 12B (i.e., light 44 may be transformed from linearly polarized light to elliptically polarized light due to the stress-induced birefringence of layer 58). The transition from point A to point B along line 156 on the surface of the Poincare sphere of FIG. 12B is associated with
rotation about thin-film-transistor layer optical axis 150. Following passage of light 44 through layer 58, light 44 may pass through liquid crystal layer 52 to point B' . The transition of the polarization state of light 44 when traveling from point B to B' through liquid crystal layer 52 of FIG. 12A is represented by the transition from elliptically polarized polarization state B to
elliptically polarized polarization state B' in FIG. 12B
along line 170.
Due to the presence of birefringent retarder 178, the polarization state of light 44 returns to state B as light passes through retarder 178 from point B' to C of FIG. 12A, effectively reversing the polarization
transition associated with passing through liquid crystal layer 52. The transition of the polarization state of light 44 when traveling from point B' to C through
retarder 178 is represented by the transition from
elliptically polarized polarization state B' to
elliptically polarized polarization state C. As shown in FIG. 12B, line 172, which is associated with rotation about retarder optical axis 176, which is perpendicular to optical axis 152 in Θ (i.e., in the layers of display 14), retraces (in reverse direction) the course of line 170, thereby counteracting and neutralizing the polarization state changes associated with passing backlight 44 through liquid crystal layer 52.
Following passage of light 44 through retarder 178, light 44 passes through color filter layer 56. As shown in FIG. 12B, the transition of the polarization state of light 44 when traveling from point C to point D through color filter layer 56 may be represented by line 174, which is associated with rotation about color filter optical axis 154. Because transition 172 brings the polarization state of light 44 back to point B from point B' , transition 174 causes the polarization of light 44 to return to its original state (i.e., point D is associated with the same linearly polarized light state as original point A) . As a result, display performance will not be degraded due to an elliptical light polarization state as light 44 exits the upper surface of color filter layer 56.
In the illustrative configuration of FIG. 13A,
the internal retarder (retarder 178') has been formed on the upper surface of thin-film-transistor layer 58, rather than the lower surface of color filter layer 56. With this type of arrangement, the polarization state
transition from B' to C returns light 44 to the same polarization state (point C) as the arrangement of FIG. 12A, but does so by following transition line 172' of FIG. 13B (associated with rotation about optical axis 176' of retarder 178') rather than by following transition line 172 of FIG. 12B. In the configuration of FIG. 12A, the optical axis of retarder 178 is perpendicular to the optical axis of liquid crystal layer 52 (i.e., separated by =180° and θ=90°) . In the configuration of FIG. 13A, the optical axis of retarder 178' is parallel to the optical axis of liquid crystal layer 52.
In accordance with an embodiment, a display is provided that includes an upper polarizer, a lower
polarizer, a liquid crystal layer, a first glass layer interposed between the upper polarizer and the liquid crystal layer, a second glass layer interposed between the lower polarizer and the liquid crystal layer, and an internal polarizer layer located between the first and second glass layers.
In accordance with another embodiment, the first glass layer includes a color filter layer.
In accordance with another embodiment, the internal polarizer layer includes a thin-film polarizer coating on the color filter layer.
In accordance with another embodiment, the second glass layer includes a thin-film-transistor layer.
In accordance with another embodiment, the display includes an additional internal polarizer layer that forms a coating on the thin-film-transistor layer and
that is located between the thin-film-transistor layer and the liquid crystal layer.
In accordance with another embodiment, the second glass layer includes a thin-film-transistor layer.
In accordance with another embodiment, the internal polarizer layer includes a thin-film polarizer coating on the thin-film-transistor layer.
In accordance with an embodiment, a display is provided that includes an upper polarizer, a lower
polarizer, a liquid crystal layer, a first glass layer interposed between the upper polarizer and the liquid crystal layer, a second glass layer interposed between the lower polarizer and the liquid crystal layer, and a birefringent retarder layer located between the first and second glass layers, the birefringent retarder layer is configured to counteract light polarization state changes associated with passing backlight through the liquid crystal layer.
In accordance with another embodiment, the first glass layer includes a color filter layer.
In accordance with another embodiment, the birefringent retarder layer includes a coating on the color filter layer.
In accordance with another embodiment, the second glass layer includes a thin-film-transistor layer.
In accordance with another embodiment, the birefringent retarder layer includes a coating on the thin-film-transistor layer.
In accordance with another embodiment, the retarder layer has a first optical axis, the liquid crystal layer has a second optical axis, and the first optical axis is perpendicular to the second optical axis.
In accordance with another embodiment, the
retarder layer includes a first optical axis, the liquid crystal layer includes a second optical axis, and the first optical axis is parallel to the second optical axis.
In accordance with another embodiment, the retarder layer includes a coating on the first glass layer .
In accordance with another embodiment, the retarder layer includes a coating on the second glass layer .
In accordance with an embodiment, a display is provided that includes an upper polarizer, a lower
polarizer, a liquid crystal layer, a first transparent layer interposed between the upper polarizer and the liquid crystal layer, a second transparent layer
interposed between the lower polarizer and the liquid crystal layer, and a waveplate layer located between the first and second glass layers that is configured to counteract light polarization state changes caused by passing light through the liquid crystal layer.
In accordance with another embodiment, the first transparent layer includes a glass color filter layer and the second transparent layer includes a glass thin-film- transistor layer.
In accordance with another embodiment, the waveplate layer includes a layer of liquid crystal
polymer .
In accordance with another embodiment, the waveplate layer includes a coating on the glass color filter layer.
The foregoing is merely illustrative of the principles of this invention and various modifications can be made by those skilled in the art without departing from the scope and spirit of the invention.
Claims
1. A display, comprising:
an upper polarizer;
a lower polarizer;
a liquid crystal layer;
a first glass layer interposed between the upper polarizer and the liquid crystal layer;
a second glass layer interposed between the lower polarizer and the liquid crystal layer; and
an internal polarizer layer located between the first and second glass layers.
2. The display defined in claim 1 wherein the first glass layer comprises a color filter layer.
3. The display defined in claim 2 wherein the internal polarizer layer comprises a thin-film polarizer coating on the color filter layer.
4. The display defined in claim 3 wherein the second glass layer comprises a thin-film-transistor layer.
5. The display defined in claim 4 further comprising an additional internal polarizer layer that forms a coating on the thin-film-transistor layer and that is located between the thin-film-transistor layer and the liquid crystal layer.
6. The display defined in claim 1 wherein the second glass layer comprises a thin-film-transistor layer.
7. The display defined in claim 6 wherein the internal polarizer layer comprises a thin-film polarizer
coating on the thin-film-transistor layer.
8. A display, comprising:
an upper polarizer;
a lower polarizer;
a liquid crystal layer;
a first glass layer interposed between the upper polarizer and the liquid crystal layer;
a second glass layer interposed between the lower polarizer and the liquid crystal layer; and
a birefringent retarder layer located between the first and second glass layers, wherein the birefringent retarder layer is configured to counteract light polarization state changes associated with passing backlight through the liquid crystal layer.
9. The display defined in claim 8 wherein the first glass layer comprises a color filter layer.
10. The display defined in claim 9 wherein the birefringent retarder layer comprises a coating on the color filter layer.
11. The display defined in claim 8 wherein the second glass layer comprises a thin-film-transistor layer.
12. The display defined in claim 11 wherein the birefringent retarder layer comprises a coating on the thin-film-transistor layer.
13. The display defined in claim 8 wherein the retarder layer has a first optical axis, wherein the liquid crystal layer has a second optical axis, and
wherein the first optical axis is perpendicular to the second optical axis.
14. The display defined in claim 8 wherein the retarder layer comprises a first optical axis, wherein the liquid crystal layer comprises a second optical axis, and wherein the first optical axis is parallel to the second optical axis.
15. The display defined in claim 8 wherein the retarder layer comprises a coating on the first glass layer .
16. The display defined in claim 8 wherein the retarder layer comprises a coating on the second glass layer .
17. A display, comprising:
an upper polarizer;
a lower polarizer;
a liquid crystal layer;
a first transparent layer interposed between the upper polarizer and the liquid crystal layer;
a second transparent layer interposed between the lower polarizer and the liquid crystal layer; and
a waveplate layer located between the first and second glass layers that is configured to counteract light polarization state changes caused by passing light through the liquid crystal layer.
The display defined in claim 17 wherein the
first transparent layer comprises a glass color filter layer and wherein the second transparent layer comprises a glass thin-film-transistor layer.
19. The display defined in claim 18 wherein the waveplate layer comprises a layer of liquid crystal polymer .
20. The display defined in claim 18 wherein the waveplate layer comprises a coating on the glass color filter layer.
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US13/622,973 | 2012-09-19 | ||
| US13/622,973 US20140078448A1 (en) | 2012-09-19 | 2012-09-19 | Stress Insensitive Liquid Crystal Display |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2014046771A1 true WO2014046771A1 (en) | 2014-03-27 |
Family
ID=48857022
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2013/050467 Ceased WO2014046771A1 (en) | 2012-09-19 | 2013-07-15 | Stress insensitive liquid crystal display |
Country Status (2)
| Country | Link |
|---|---|
| US (1) | US20140078448A1 (en) |
| WO (1) | WO2014046771A1 (en) |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP0952478A1 (en) * | 1998-04-24 | 1999-10-27 | OIS Optical Imaging Systems, Inc. | Liquid crystal display with internal polarizer and method of making same |
| US20050140839A1 (en) * | 2003-12-30 | 2005-06-30 | Hyung Ki Hong | Liquid crystal display device |
| EP2077463A1 (en) * | 2007-12-27 | 2009-07-08 | TPO Displays Corp. | LCD with improved contrast ratio and apparatus comprising such a LCD |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2002139624A (en) * | 2000-11-06 | 2002-05-17 | Nitto Denko Corp | Optical element, lighting device and liquid crystal display device |
| ATE404617T1 (en) * | 2003-04-08 | 2008-08-15 | Merck Patent Gmbh | OPTICAL FILM IN A LIQUID CRYSTAL DISPLAY |
| CN100397186C (en) * | 2004-09-16 | 2008-06-25 | 东芝松下显示技术有限公司 | Liquid crystal display element |
| JP4883521B2 (en) * | 2006-03-07 | 2012-02-22 | Nltテクノロジー株式会社 | Transflective liquid crystal display device |
| JP4884829B2 (en) * | 2006-05-10 | 2012-02-29 | 株式会社 日立ディスプレイズ | Liquid crystal display |
| JP4494380B2 (en) * | 2006-09-29 | 2010-06-30 | 株式会社 日立ディスプレイズ | Liquid crystal display |
| JP4421639B2 (en) * | 2007-08-03 | 2010-02-24 | 株式会社 日立ディスプレイズ | Liquid crystal display |
| JPWO2009028572A1 (en) * | 2007-08-31 | 2010-12-02 | 旭硝子株式会社 | Method for producing liquid crystal polymer laminate |
| JP5576238B2 (en) * | 2010-10-25 | 2014-08-20 | 京セラディスプレイ株式会社 | Liquid crystal display |
-
2012
- 2012-09-19 US US13/622,973 patent/US20140078448A1/en not_active Abandoned
-
2013
- 2013-07-15 WO PCT/US2013/050467 patent/WO2014046771A1/en not_active Ceased
Patent Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP0952478A1 (en) * | 1998-04-24 | 1999-10-27 | OIS Optical Imaging Systems, Inc. | Liquid crystal display with internal polarizer and method of making same |
| US20050140839A1 (en) * | 2003-12-30 | 2005-06-30 | Hyung Ki Hong | Liquid crystal display device |
| EP2077463A1 (en) * | 2007-12-27 | 2009-07-08 | TPO Displays Corp. | LCD with improved contrast ratio and apparatus comprising such a LCD |
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| US20140078448A1 (en) | 2014-03-20 |
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