1. Field of the Invention
The present invention relates to transflective liquid crystal displays, and more particularly to single cell gap type transflective liquid crystal displays.
2. Description of the Prior Art
Liquid crystal display (LCD) types are divided into three kinds: a transmissive LCD, a reflective LCD, and a transflective LCD. However, the transmissive LCD is a non-effective light converter that merely transmits about 3% to 8% of light from the backlight. Therefore, the transmissive LCD requires a backlight device having high brightness, leading to high power consumption. The reflective LCD uses ambient light for imaging, thus saving power consumption. However, the reflective LCD can be used during the day or in environments where external light exists, but not during the night or under poor ambient lighting.
Therefore, the transflective LCD has been introduced. In general, two main approaches of transflective LCD have been developed: single cell gap (
Light efficiency is proportional to the total retardation change experienced by the incident light traveling in the liquid crystal layer of the device. The total retardation change is a product of 1) birefringence change, Δn, ‘seen’ by the incident light as a result of the reorientation of the liquid crystal molecules upon an applied voltage and 2) total path length traveled by the incident light in the liquid crystal layer.
Since the light passes the LC layer 300 twice in the R region, but only once in the T region, the reflected light R experiences a total retardation change of (Δn)×(2d), twice that of T which is (Δn)×d.
In order to achieve high light efficiency for both R and T modes, the double cell gap approach is often used such that the cell gap in the R region is reduced to d/2, so that the total length traveled by light in the LC layer 300 for T and R regions is the same (
U.S. Patent Publication US2003/0202139A1 discloses a transflective liquid crystal display that requires only a single cell gap. The disclosure in this publication is rather unclear. The abstract of this publication states that instead of reducing the cell gap of the reflective region, it reduces the birefringence change Δn of reflective pixels so that the total retardation change Δnd of the reflective region is equal to that of the transmissive pixels. This is realized by a partial switching of the pixels of approximately 45 degrees which occurs in the reflective pixel region of the single cell gap by applying fringing fields, generated by a discontinuous electrode, to the molecules in the reflective pixel region of the cell gap. It appears that the entire reflective region is provided with a discontinuous electrode in the structure disclosed in this publication. It is unclear how commercially viable would be the disclosed structure.
The present invention is to solve the above-mentioned problem and provide an array substrate for a transflective liquid crystal display device. The array substrate of the present invention can produce a single cell gap transflective liquid crystal display device having substantially equal light efficiency for both reflection and transmission regions.
In one aspect, the present invention discloses a transflective LCD display panel, comprising a pixel array structure in which the transmission region is provided with a transmissive electrode, and the reflective region is provided with a reflective layer that is not subject to a electrical potential (i.e., not function as pixel electrode). In one embodiment, the array substrate of the present invention comprises a substrate; a plurality of scanning lines and data lines on the substrate, crossing each other to define a plurality of pixel regions, the pixel region having a transmission region and a reflective region; a transmissive electrode disposed in the transmission region; and a reflector disposed in the reflection region, not subjected to a voltage.
The transflective liquid crystal display panel of the present invention comprises the array substrate mentioned above, an opposing substrate spaced apart from the array substrate and having a common electrode, and a liquid crystal layer interposed between the transmissive electrode and the common electrode.
The present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings, given by way of illustration only and thus not intended to be limitative of the present invention.
a is a cross-section of a conventional transflective liquid crystal display using a single cell gap.
b shows reflection ratio vs. voltage plot and transmission ratio vs. voltage plot of the device of
a is a cross-section of a conventional transflective liquid crystal display using a double cell gap.
b shows reflection ratio vs. voltage plot and transmission ratio vs. voltage plot of the device of
a is a cross-section taken along line 4-4 of
b is another cross-section taken along line 4-4 of
a is a cross-section taken along line 6-6 of
b is another cross-section taken along line 6-6 of
Scanning lines (SL) extend along an X axis, data lines (DL) extend along a Y axis, and they cross each other to define a plurality of pixel regions. The pixel region includes a transmission region T and a reflection region R.
The transmissive electrode 14 is disposed on the substrate 10 in the transmission region T. Referring to
Referring to
In this embodiment, negative type liquid crystal is used, the transmissive electrode 14 is subjected to a voltage, but the reflector 12 is not subjected to a voltage (i.e., not function as pixel electrode). Thus, a vertical electric field E1 is generated by the plane of the transmissive electrode 14 in an angle about 90 degree, while a lateral field (fringing field) E2 is generated by the edge of the transmissive electrode 14 in a tilt angle less than 90 degree. Thus, as applying voltage, liquid crystal molecules L1 in the transmission region T are governed by E1 and ice a homogenous orientation, while liquid crystal molecules L2 in the reflection region R are governed by E2 and in a tilt angle. A lower tilt angle results in reduced effective birefringence change Δneff. Thus, the effective birefringence change ΔnReff of liquid crystal in the R region is reduced to less than effective birefringence change ΔnTeff of liquid crystal in the T region.
The width of the transmissive electrode portions 14a, extending along the direction of data lines, shown as Wt can be 1 to 10 μm. The width of the reflector portions 12a, extending along the direction of data lines, shown as Wr can be 1 to 10 μm. In a preferred condition, Wt, Wr, and the cell gap d can be optimally adjusted to achieve the birefringence change in the R region is reduced to Δn/2. Thus, the total retardation change in the R region, (Δn/2)×2×d, becomes equal to that in the T region, Δn×d. As a result, the light efficiency in both R and T regions becomes substantially equal.
In addition, a compensator (not shown) and a polarizer (not shown) can be formed on the outer surfaces of both the upper substrate 20 and the lower substrate 10 respectively. The compensator can be a λ/4 film.
b shows a transflective LCD panel 1, another cross-section taken along line 4-4 of
Scanning lines (SL) extend along an X axis, data lines (DL) extend along a Y axis, and they cross each other to define a plurality of pixel regions. The pixel region includes a transmission region T and a reflective region R.
The transmissive electrode 14 is disposed on the substrate 10 in the transmission region T. Referring to
Similar to descriptions in the first embodiment, referring to
In a preferred condition, the width (Wr) of the reflector portions 12a, the width (Wt) of the transmissive electrode portions 14a, and the cell gap (d) can be optimally adjusted to achieve the birefringence change in the R region is reduced to Δn/2. Thus, the total retardation change in the R region, (Δn/2)×2×d, becomes equal to that in the T region, Δn×d. As a result, the light efficiency in both R and T regions becomes substantially equal.
b is another cross-section taken along line 6-6 of
While the foregoing embodiments show capacitors Cst to be a separate element below the reflector portions 12a, the capacitors Cst may be the same element as the reflector portions 12a. For example, the capacitors Cst may be provided with a reflective surface, and a size that corresponds to the slit between adjacent transmissive electrodes.
Further, the size of the reflector portions 12a need not be exactly the same size as the slits between adjacent transmissive electrode.
Computer Simulation
The optical calculation is performed by liquid crystal MLC-6882, having Δε=−4 and Δn=0.0988. The reflector 12 is aluminum, with width Wr of the reflector portion 12a 4 μm. The transmissive electrode 14 is ITO (indium tin oxide), and the width Wt of the transmissive electrode portions 14a is 4 μm. The cell gap is 4 μm.
In conclusion, in the transflective liquid crystal display of the present invention, the reflector is not an electrode and a lateral field is generated in the reflection region. Thus, the effective birefringence change ΔnReff in the R region is reduced, and the total retardation change in the R region is reduced in turn. As a result, the light efficiency in the R region is reduced to approach, or even optimally reduced to substantially equal, that in the T region. Thus, the transflective LCD of the present invention achieves the maximum light efficiency in both reflection and transmission modes.
The foregoing description of the preferred embodiments of this invention has been presented for purposes of illustration and description. Obvious modifications or variations are possible in light of the above teaching. The embodiments chosen and described provide an excellent illustration of the principles of this invention and its practical application to thereby enable those skilled in the art to utilize the invention in various embodiments and with various modifications as are suited to the particular use contemplated. All such modifications and variations are within the scope of the present invention as determined by the appended claims when interpreted in accordance with the breadth to which they are fairly, legally, and equitably entitled.