The present invention contains subject matter related to Japanese Patent Application JP 2007-244881 filed in the Japan Patent Office on Sep. 21, 2007, the entire contents of which being incorporated herein by reference.
1. Field of the Invention
The present invention relates to a liquid crystal display device that allows the high-speed response of a liquid crystal through application of an overdrive voltage, a method for driving a liquid crystal display device, and electronic apparatus.
2. Description of the Related Art
In overdrive driving of a liquid crystal display device in a related art, as shown in drawings, the overdrive voltage is controlled depending on the achieving luminance and the luminance level of the previous frame in order to suppress the overshoot and undershoot of the luminance (refer to e.g. Japanese Patent No. 3346843).
If suppression of the overshoot and undershoot through adjustment of the application voltage is intended in such a related art, the acceleration effect by the voltage is not so expected in the case in which the voltage level difference is small, such as the case of response between intermediate grayscales or response to a low grayscale, because the overdrive voltage determines the effective voltage in this case. Specifically, in the case of transition from low grayscale luminance to low grayscale luminance, it is impossible to apply a high overdrive voltage, which causes the limit to enhancement in the speed of luminance transition between intermediate grayscales.
The present invention is made in order to address such a problem. According to an embodiment of the present invention, there is provided a liquid crystal display device that carries out image displaying through application of a voltage dependent upon an image to a liquid crystal in units of a certain period. In this liquid crystal display device, in the case of applying an overdrive voltage higher than a voltage for displaying of the image to the liquid crystal before application of the voltage, the application period of the overdrive voltage is set shorter than the certain period.
By thus adjusting the pulse width for the application of the overdrive voltage, the effective voltage can be adjusted in such a way that the acceleration voltage necessary at the time of the response of liquid crystal molecules is ensured, which allows the response of the liquid crystal molecules at higher speed.
In this embodiment of the present invention, in addition to the above-described configuration, the application period of the overdrive voltage may be adjusted depending on the grayscale level of the image, or the application period and the voltage value of the overdrive voltage may be adjusted depending on the grayscale level of the image.
Furthermore, in this embodiment of the present invention, a first overdrive voltage and a second overdrive voltage that have different polarities may be used as the overdrive voltage.
By thus adjusting the application period and the voltage value of the overdrive voltage, the effective voltage can be adjusted in such a way that the acceleration voltage necessary at the time of the response of liquid crystal molecules is ensured, which allows the response of the liquid crystal molecules at higher speed.
According to another embodiment of the present invention, there is provided a method for driving a liquid crystal display device that carries out image displaying through application of a voltage dependent upon an image to a liquid crystal in units of a certain period. The method includes the step of, in the case of applying an overdrive voltage higher than a voltage for displaying of the image to the liquid crystal before application of the voltage, applying the overdrive voltage for an application period shorter than the certain period.
By thus adjusting the pulse width for the application of the overdrive voltage, the effective voltage can be adjusted in such a way that the acceleration voltage necessary at the time of the response of liquid crystal molecules is ensured, which allows the response of the liquid crystal molecules at higher speed.
According to yet another embodiment of the present invention, there is provided electronic apparatus including a liquid crystal display device that carries out image displaying through application of a voltage dependent upon an image to a liquid crystal in units of a certain period. In this electronic apparatus, in the case of applying an overdrive voltage higher than a voltage for displaying of the image by the liquid crystal display device to the liquid crystal before application of the voltage, the application period of the overdrive voltage is set shorter than the certain period.
By thus adjusting the pulse width for the application of the overdrive voltage to the liquid crystal in the liquid crystal display device, the effective voltage can be adjusted in such a way that the acceleration voltage necessary at the time of the response of liquid crystal molecules is ensured, which allows the response of the liquid crystal molecules at higher speed.
Thus, according to the embodiments of the present invention, the response speed of the liquid crystal can be sufficiently enhanced even in the case in which the voltage level difference is small, such as the case of response between intermediate grayscales.
An embodiment of the present invention will be described below based on the drawings.
Besides this LCD 10, the liquid crystal display device includes a frame memory 11 that stores an image signal, and a look up table (LUT) 12 consulted for setting the signal (voltage) for liquid crystal driving. In addition, the liquid crystal display device includes a signal comparator 13 and a signal operation unit 14 for arithmetic operation of the voltage that is to be supplied to the LCD 10.
A feature of the liquid crystal display device of the present embodiment is as follows. Specifically, for realization of the high-speed response of the liquid crystal through application of the overdrive voltage, the overdrive voltage is applied for an application period shorter than the certain period of image displaying in order to allow adjustment of the effective voltage while ensuring the acceleration voltage necessary at the time of the response of the liquid crystal molecules. In the present embodiment, for easy understanding, the one-frame period is employed as the certain period, during which the voltage for image displaying is applied to the liquid crystal.
The flow of a signal in the overdrive driving in the liquid crystal display device shown in
Specifically, the pulse widths of the overdrive voltage corresponding to the differences between frames of the image signal are registered in the LUT 12 in advance. The difference between the image signal S(t−1) of a predetermined frame stored in the frame memory 11 and the image signal S(t) of the next frame as an input signal is calculated by the signal comparator 13, and the pulse width of the overdrive voltage corresponding to this difference is set through reference to the LUT 12. Subsequently, the set overdrive voltage is superimposed on the image signal S(t) by the signal operation unit 14, so that the LCD 10 is driven by the resulting signal.
With reference to
In the example shown in
In the example shown in
Moreover, in the above-described example, a one-frame period is divided and the overdrive pulse is applied in the one-frame period. Alternatively, the overdrive pulse may be applied in the period between the frame periods (in the vertical blanking period).
<Comparison with Related Art>
The overdrive driving of the present embodiment will be described below based on comparison with a related art.
However, as shown in
Specifically, if suppression of overshoot and undershoot through adjustment of the application voltage is intended like the related-art overdrive driving, the acceleration effect by the voltage is not so expected in the case in which the voltage level difference is small, such as the case of response between intermediate grayscales or response to a low grayscale, because the overdrive voltage determines the effective voltage in this case. This causes the limit to improvement in the response speed.
On the other hand, in the driving in which the pulse width of the overdrive voltage is adjusted like the present embodiment, overshoot and undershoot can be suppressed by shortening the pulse width even when the value of the overdrive voltage is high. Furthermore, the effective voltage can be adjusted in such a way that the acceleration voltage necessary at the time of the response of liquid crystal molecules is ensured, which allows the response of the liquid crystal molecules at higher speed.
In addition, in the present embodiment, besides the adjustment of the pulse width of the overdrive voltage dependent upon the grayscale level of an image, the voltage value of the overdrive voltage can also be adjusted depending on the grayscale level. That is, it is also possible to carry out adjustment based on both the pulse width and the voltage value.
Experimental examples for confirmation of the effect of the overdrive driving of the present embodiment will be described below. In the examples, experiments were carried out by use of liquid crystal cells each obtained by performing anti-parallel rubbing treatment for vertical alignment layers and enclosing a liquid crystal material of a negative dielectric into a simple liquid crystal cell.
Initially, the response waveform when an overdrive voltage is applied without any particular adjustment is shown in
In the next experimental example, the level (voltage value) of the overdrive voltage was adjusted. Specifically, the overdrive voltage was adjusted to 2.5 V with respect to the final achieving voltage of 1.9 V to thereby suppress the overshoot phenomenon. This example is shown in
Next, the results of the overdrive driving of the present embodiment will be shown below. As Working example 1, the overdrive voltage was changed from 2.5 V of the related-art system to 3.8 V, and the overdrive pulse application period was changed from 16 msec of the related art to 4.8 msec. Thereby, the response speed could be improved to 2 msec without overshoot. The drive waveform and the transmittance response waveform of this example are shown in
In Working example 2, as two overdrive voltages of different polarities, a first overdrive voltage of 3.9 V was applied for 4 msec and a second overdrive voltage (overdrive correction voltage) of 2 V was applied for 4 msec. Thereby, the response speed could be improved to 1.9 msec without overshoot similarly. The drive waveform and the transmittance response waveform of this example are shown in
In this manner, a method of suppressing overshoot and undershoot through adjustment of the overdrive voltage is not employed, but the overdrive voltage is kept at constant and the application period of the overdrive voltage is adjusted to thereby suppress overshoot and undershoot. This allows improvement in the response speed on the lower-grayscale side particularly.
The liquid crystal display device according to the present embodiment encompasses also a module-shape device with a sealed structure like that shown in
This transparent sealing substrate 2006 may be provided with a color filer, protective film, light-shielding film, and so on. The substrate 2002 as the display module on which the display area 2002a is formed may be provided with a flexible printed board 2023 for external inputting/outputting of signals and so on to/from the display area 2002a (pixel array part).
The above-described liquid crystal display device according to the present embodiment can be applied to various kinds of electronic apparatus shown in
It should be noted that the liquid crystal display device of the present embodiment can be applied also to products other than the above-described application examples.
It should be understood by those skilled in the art that various modifications, combinations, sub-combinations and alternations may occur depending on design requirements and other factors insofar as they are within the scope of the appended claims or the equivalent thereof.
Number | Date | Country | Kind |
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2007-244881 | Sep 2007 | JP | national |