The invention relates to transflective liquid crystal displays, which rely for their operation on reflection of ambient light, and transmission of light from a backlight in the case of a low ambient light level to achieve excellent readability in all lighting conditions.
European Patent Publication No. 0,840,160 A2 describes a Pancharatnam-type achromatic (ie, independent of frequency/colour) reflective liquid crystal display (LCD) using a twisted nematic liquid crystal (LC) layer as part of a switchable achromatic retarder.
British Patent Application No. 9806566.7 describes an improved retarder combination for an achromatic fixed retarder and twisted nematic (TN) LC used in high resolution thin film transistor (HR-TFT) displays, which reduces threshold voltage and chromaticity and improves contrast.
S. Fujiwara et al. “Proceedings of the Fourth International Display Workshops”, Nagoya 1997, (IDW'97), p. 879 describes a reflective LCD using an achromatic fixed retarder between a linear polariser and a twisted nematic LC. This is used in the HR-TFT LCD product produced by Sharp.
Solutions for converting linear polarised light to circular polarised light by a twisted nematic layer with respect to the LC parameters retardation, twist and alignment orientation can be found in Beynon et al., Proceedings of the International Display research Conference, 1997 L34.
U.S. Pat. No. 5,361,151 (Sonehara) describes a transflective LCD comprising a TN-LC layer, an internal or external semi-reflector, and chromatic retardation plates between the LC and the front and rear linear polariser.
U.S. Pat. No. 4,093,356 (J. E. Bigelow) describes a transflective liquid crystal display capable of presenting viewable indicia to an observer positioned at the front thereof,
which is responsive to either reflection of incident ambient light entering into the display from the front thereof, or transmission of light from a source behind the display, and which utilises a reflective display of the type having a nematic liquid crystal host-guest dichroic dye cell backed by a quarterwave plate and partially reflective, partially transmissive transflector member, in conjunct ion with a linear polariser and a second quarterwave plate arranged between the backlighting source and the partially transmissive member.
In such a guest-host cell, the dichroic dye is regarded as a guest in the liquid crystal, because the orientation of the dichroic dye molecules simply follows that of the LC molecules. The dye molecules are generally transparent when viewed along their long axes, and opaque (ie. they absorb visible light) when viewed perpendicular to their long axes, and are hence referred to as dichroic. Consequently, by applying a voltage to the LC cell, the degree of absorption in the cell can be controlled, and the cell is therefore sometimes referred to as operating in an absorption mode.
The rear quarterwave plate is used to compensate for the front quarterwave plate so that linear polarised light impinges on the guest-host liquid crystal (GH-LC).
U.S. Pat. No. 4,315,258 (McKnight et al.) describes a visual display which has an increased readout capability due to its operation in a transflective mode. A source of ambient light and light for radiation through the display from the back together assure the increased readout capability. Previously, ambient light would degrade or wash-out the display making it nearly impossible for monitoring personnel to decipher alphanumeric or pictoral displays due to the decreased contrast. A pair of linear polarizers sandwich a twisted nematic liquid crystal and have their polarisation axes either parallel or mutually orthogonally disposed so that the crystal presents bright or dark areas in response to applied potentials. Because a partially transmitting mirror is interposed between the sandwiched liquid crystal and the radiating light source, the ambient light augments the radiated light to enhance the visual display. It should be understood that, throughout this specification, references to retardation values should be understood as effective retardation values, taking into account the twist angle of the retarder. A twisted birefringent structure (such as a TNLC) has a retardation of thickness×birefringence for a particular wavelength. However, it effects a retardation which is lower or higher depending on the twist angle.
According to a first aspect of the invention there is provided a transflective liquid crystal display comprising a liquid crystal cell disposed between a front substrate and a rear substrate, a front achromatic retarder located in front of the front substrate and a rear polariser located behind the rear substrate, a front retarder located between the front substrate and the front polariser, a rear retarder located between the rear substrate and the rear polariser, a light source located behind the rear polariser, and a partially transparent/partially reflective layer (for example a semi-transparent mirror, transflector) between the liquid crystal layer and said light source.
This allows the display to benefit from backlighting in low ambient light conditions and high contrast while still providing the benefits of an achromatic reflective display.
The front retarder may comprise a front halfwave plate and a front quarterwave plate.
The front quarterwave plate may have a retardation of between 0 nm and 250 nm.
The front halfwave plate may have a retardation of between 200 nm and 360 nm.
The rear retarder may comprise a rear quarterwave plate.
The rear quarterwave plate may have a retardation of between 100 nm and 180 nm, and preferably of substantially 135 nm.
The rear substrate may be provided with a partially reflective and partially transmissive mirror.
The liquid crystal cell may be provided with a rear electrode, which is partially reflective and partially transmissive.
The rear retarder may further comprise a rear halfwave plate.
The rear halfwave plate may have a retardation of between 200 nm and 360 nm.
The rear halfwave plate may be located between the rear quarterwave plate and the rear polariser.
In order to use the same LC profile and thickness and the same operating mode (normally white) for reflective and transmissive modes of operation, the backlight can be manipulated first by a linear polariser followed by a quarter wave plate at 45° to the polarisation or absorption direction.
The invention broadens the usability of reflective LCDs by incorporating a backlight. This is achieved without major alteration to the existing HR-TFT fabrication process. As compared with front lighting systems the contrast ratio of the LCD using a backlight is not reduced. Although the transmission may be only 50% of the ideal value this is not critical to the readability of the LCD as the backlight will only be operated at low ambient light levels. The invention can also operate in normally black mode either in both transmission and reflection or transmission by changing the azimuth angle of both polarisers by 45° in the same direction.
The process flow to manufacture the internal reflector in the HR-TFT requires only one additional step. To secure uniform electric fields the etched window in the aluminium can be sputter-coated with indium tin oxide (ITO) in a self-aligning process. Surplus ITO on the photoresist used to pattern the aluminium mirror can be removed during the photoresist development or removal/strip. Multiple windows can be randomly distributed over the pixel to avoid diffraction.
Alternatively, the reflective layers can be thinned to an extent that it becomes partially transmissive to a predetermined value over the whole or part of the pixel electrode.
According to a second aspect of the invention, there is provided a transflective display comprising a liquid crystal divided into a plurality of pixels, addressing means for addressing each pixel and switching each pixel between different states resulting indifferent levels of transmission of light through the display, a flashing backlight located behind the liquid crystal, and a partially transparent/partially reflective layer (for example a semi-transparent mirror, transflector) between the liquid crystal layer and said flashing backlight for both reflecting ambient light back through the liquid crystal and allowing transmission of light from the backlight through the liquid crystal, wherein each pixel is provided with a light filter, and wherein the backlight comprises a plurality of sequentially flashing light sources.
In one embodiment, of the invention, each light filter is a colour light filter, and said sequentially flashing light sources are of different colours.
Said liquid crystal may be part of an active matrix display.
In one embodiment, the liquid crystal forms a Pi or optically compensated birefringent (OCB) cell.
In a further embodiment, each light source is a light emitting diode (LED).
Each colour filter may provide a varying level of absorption across its area.
Each colour filter may have a transparent region.
This provides the advantage of ensuring that a greater amount of light from each light source can pass through every colour filter.
In this case, said liquid crystal may be provided with a plurality of partially reflective electrodes each having a light transmissive area, and each transmissive area may be optically aligned with a transparent-region of one of said colour filters. The transflective display of the second aspect of the invention may also have any or all of the features of the transflective display of the first aspect of the invention.
The invention will now be more particularly described, by way of example only, with reference to the accompanying drawings, in which:
a shows the results of modelling the LC electrooptic response of the embodiment of
a shows the results of modelling the LC electrooptic response of the embodiment of
The prior art transflective guest-host (GH) LCD 2 shown in
The quarterwave plates (or retarders) 8 and 12 and the linear polariser 6 are formed from stretched polymer films. The GH-LC cell 16 contains a dichroic dye, the molecules of which are oriented by the LC molecules in order to control the degree of absorption of the cell. The cell thus operates in an absorption mode. The GH-LC cell 16 is pixellated, with each pixel being controlled by a pair of electrodes (not shown) in known manner.
The display 2 is viewed from the position of the viewer 20. The light reaching the viewer 20 from the display is a combination of light from the light source 4 and (usually white) ambient light reflected by the partially reflective mirror 10. It is for this reason that the display is referred to as transflective, because it operates on the basis of both transmission and reflection.
The first embodiment of the invention, shown in
The arrangement of components of the display 28 from the front polariser 46 to the rear substrate 36 (inclusive) is known from the Fujiwara reference mentioned above, except that the rear substrate 36 of the display 28 is provided with a partially reflecting (and partially transmitting) mirror (not shown separately) instead of a fully reflecting mirror.
director would have in the absence of any surface pretilt. Also, the SD0 is equivalent to (SD0±π). The twist of the LC layer nay be between 30° and 100°, preferably between 60° and 80°.
The two transparent parallel substrates 36 and 40 are each coated on the inside surfaces 52 and 54 with a patterned conductor/electrode (not shown) for addressing the LC cell 38, with the rear electrode being patterned and partially transparent and partially reflecting. The ratio of transmission to reflection of the rear conductor/electrode nay be 1:1 or any other pre-determined value according to the designated purpose of the transflective display 28. The electrodes are coated with alignment means and hold the nematic LC cell 38 continuously switchable between an effective retardation in the reflecting bright state of 80 nm to 200 nm, and preferably 135 nm, and in the dark state of 50 nm to 0 nm, and preferably close to 0 nm. The nematic LC may be twisted by surface alignment and/or chiral doping.
The outer sides of the substrates 36 and 40 are clad by the transparent retardation films 34, 42 and 44. The front halfwave retarder 44 has a retardation dΔn of substantially 270 nm and the front quarterwave retarder 42 has a retardation dΔn of substantially 133 nm, where d represents the thickness of the retarder film, and Δn represents the difference between the two refractive indices of the retarder film, The front quarterwave retarder 42 has Its slow axis substantially parallel or normal to the bisetrix (ie. half the angle) of the (twist or) surface alignment directions of the nematic LC cell 38. (The angle −75° for the quarterwave retarder shown in
The bisetrix, or bisector, as used herein is the direction which bisects the smaller included angle between two directions. The bisetrix is also perpendicular to the optical axis of the device.
When no voltage is applied, both the transmission and reflection are high, and the display thus operates in a “normally white mode”. The rear quarterwave plate 34 is necessary in order to ensure that the transmission curve 56 is the correct way around. Without the quarterwave plate 34 the transmission curve 56 would be low at zero volts and high at 5 volts. It will be seen from
a shows the results of modelling the LC electrooptic response of the embodiment of
rear halfwave plate and rear quarterwave plate improves the achromaticity of the transmission mode.
The effective retardation of the nematic LC cell 38 is continuously switchable between about 135 nm and 0 nm in the same way as in the embodiment of
The front and rear quarterwave plates 42 and 64 have their slow axes substantially normal to the bisetrix of the surface director orientations of the nematic LC cell 38. The two front retarders 42 and 44, and the two rear retarders 62 and 64, each form an achromatic combination retarder. The front achromatic combination retarder is modified to compensate for the residual retardation of the LC cell at finite voltages. The retardation of quarterwave plate 42 is increased when the slow axis of each quarterwave plate is normal to the bisetrix of the SDOs of the nematic LC cell 38. Alternatively, if the slow axes of the quarterwave plates 42 and 64 are parallel to the bisetrix of the SDOs of the nematic LC cell 38, the retardation of quarterwave plate 42 needs to be decreased. The retardation films can again be of Nitto's NRZ range.
This improvement comes about because the increased thickness of the quarterwave plate 42 compensates for the residual retardation caused by the fact that those liquid crystal molecules in the LC cell 38 which lie close to the alignment layers (not shown separately) remain “fixed” in posit ion when the LC cell 38 is switched by application of an external voltage.
a uses the same reference numbers as
a uses the same reference numbers as
In any of the embodiments of the invention the partially reflective (and partially transmissive) mirror (not shown separately) provided on the rear substrate 36 can be either a minor containing a number of gaps or holes, or a continuous mirror which is transparent to a predetermined value of say between 10% and 90%.
In any embodiment the red, green and blue voltage levels can be individually adjusted for transmission, transflective or reflection modes. The transmission/reflection against voltage curve is wavelength dependent and can be different between the reflective and the transmissive mode. Hence data voltages must be adjusted according to the mode used.
Each micro colour filter 82 can have areas of different absorption to achieve the best colour balance/saturation for transmission and reflection modes.
The invention can use LC modes switching substantially in the plane of the LC cell, so-called in-plane switching modes, found for example in ferroelectric, antiferroelectric and some nematic LC modes. The invention can also use out-of-plane switching modes, and is not limited to twisted nematics. For example, surface switching LC modes can be used.
Retardation values, twist angles, and other orientation angles given for the embodiments described above are examples only.
Embodiments of a second aspect of the invention will now be described.
The angles which the slow axes of the retarders 62, 108, 112 and 44 make with respect to the absorption axes of the two polarisers 32 and 46 (defined as 0 degrees) are—indicated in
The embodiment of
It is possible to address the pixels of the Pi cell 110 in different ways. In the simplest case, when the green LED 104 is flashed, only the pixels with green micro colour filters 82 are switched on, and the other pixels are switched off (le, to a zero transmission state).
However, if the micro colour filters 82 are sufficiently wide band, then each colour filter 82 will let through some light of each other colour. For example, the green filters which let through some red and blue light. In this case, it is possible to make use of all of die pixels for all of the coloured LEDs, provided that the transmission characteristics of the micro colour filters 82 are taken into account when addressing the pixels. In this way it is possible to increase both the light throughput and the resolution of the display, because when the green LED 104 is flashed, for example, light can pass through pixels having micro colour filters 82 of any colour.
It is still necessary to retain the micro colour filters 82 to allow the LCD to operate in a reflective mode when the ambient light level is sufficiently high, and therefore reduce the power consumption of the device.
A difficulty with the earlier embodiments (
The light throughput and high resolution capability in the transmissive mode can be Improved in the following way. Instead of coating each micro colour filter 82 continuously and evenly over the pixel area, each micro colour filter 82 can be provided with a transparent region, and the remainder of the area of the micro colour filter 82 can be made more absorbing (ie. more narrow band). For example, for the green micro colour filters 82, the remainder of the micro colour filter 82 can be made more green, so that in the reflective mode no change is perceived by the observer 20 because the transparent region is compensated for by the “more green” region. The same can be done for the red and blue micro colour filters 82. An advantage is achieved in the transmission mode because the transparent regions transmit light of any colour, and thus every micro colour filter 82 is better adapted to transmit light from any of the coloured LEDs 102, 104 and 106.
If the liquid crystal is provided with partially reflecting electrodes having transmissive areas, the transmissive areas can be optically aligned with said transparent regions. A black and white (greyscales) embodiment is also possible, which does not use differently coloured filters and backlights.
It should be appreciated that whilst the second aspect of the invention, relating to a time sequential transflective display using differently coloured flashing backlights can be used in conjunction with the first aspect of the invention, it is not so limited. In particular, the second aspect of the invention can be used with any transflective display.
Number | Date | Country | Kind |
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9820516.4 | Sep 1998 | GB | national |
This application is a continuation of U.S. patent application Ser. No. 12/243,555 filed on Oct. 1, 2008, which is a continuation U.S. patent application Ser. No. 09/787,954 filed Jun. 25, 2001, which is a §371 of International Application No. PCT/JP99/05210 filed Sep. 22, 1999, which claims priority to GB 9820516.4 filed Sep. 22, 1998, the entire disclosures of which are incorporated herein by reference.
Number | Date | Country | |
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Parent | 12243555 | Oct 2008 | US |
Child | 12406983 | US | |
Parent | 09787594 | Jun 2001 | US |
Child | 12243555 | US |