Liquid crystal device and method for driving liquid crystal device
By gradually increasing the drive voltage using pulse width modulation, the liquid crystal device addresses transient transmittance differences caused by wiring length variations, achieving consistent performance in static driving.
Patent Information
- Application Number
- JP2021200122
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-12-09
- Publication Date
- 2025-08-28
- Estimated Expiration
- 2041-12-09
AI Technical Summary
Static driving in liquid crystal devices results in temporary differences in transmittance due to variations in wiring length from the driver to each segment electrode, which are exacerbated by higher driving voltages and chiral agents used in automotive applications.
A liquid crystal device design that gradually increases the drive voltage over time, using pulse width modulation to control the effective voltage applied to the liquid crystal layer, thereby minimizing transient differences in transmittance.
The gradual increase in drive voltage suppresses temporary transmittance differences and reduces overshoots, ensuring consistent transmittance across the device, particularly suitable for automotive applications with higher threshold and saturation voltages.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a liquid crystal device and a method for driving a liquid crystal device. [Background technology]
[0002] Static driving is known as one method of driving liquid crystal devices. In this static driving, individual wiring is provided for each segment electrode, and a driver applies a driving voltage to each segment electrode individually. This prevents crosstalk, as occurs when duty driving (time-division driving) is used. This makes it possible to apply a higher driving voltage to each segment electrode, improving response speed and transmittance. On the other hand, static driving has the disadvantage of requiring a large number of wirings. However, in recent years, improvements in packaging technologies such as COG (chip-on-glass) technology and the adoption of multilayer wiring have made the increase in the number of wirings less of a problem. A prior example of a liquid crystal device using static driving is described, for example, in JP 2021-9200 A (Patent Document 1).
[0003] When a static driving liquid crystal device is driven with a higher driving voltage, a temporary difference in transmittance may occur depending on the position of each segment electrode when the driving voltage is applied. Such a difference in transmittance becomes more pronounced as the difference in wiring length from the driver to each segment electrode increases. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Patent Publication No. 2021-9200 Summary of the Invention [Problem to be solved by the invention]
[0005] One of the objectives of a specific aspect of the present disclosure is to suppress a temporary difference in transmittance when a voltage is applied to a liquid crystal device using static driving. [Means for solving the problem]
[0006] [1] A liquid crystal device according to one embodiment of the present disclosure, A pair of electrodes arranged opposite to each other; a liquid crystal layer disposed between the pair of electrodes; a driver that applies a drive voltage to the liquid crystal layer via the pair of electrodes; Including, The driver provides a period in which the driving voltage is gradually increased over time when applying a driving voltage of a predetermined value higher than at least a threshold value of the liquid crystal layer to the pair of electrodes. It is something that the driver provides a period in which the drive voltage is gradually increased over time from 0 volts to a first value that is 10% or more of the predetermined value, and then immediately increases the drive voltage to the predetermined value; It is a liquid crystal device. [2] A method for driving a liquid crystal device according to one aspect of the present disclosure includes: A method for driving a liquid crystal device having a liquid crystal layer disposed between a pair of electrodes, comprising: A driving voltage of a predetermined value higher than at least the threshold value of the liquid crystal layer is applied. Static drive system a period in which the driving voltage is gradually increased over time when the driving voltage is applied to the pair of electrodes; A method for driving a liquid crystal device.
[0007] According to the above configuration, it is possible to suppress a temporary difference in transmittance when a voltage is applied in a liquid crystal device using static driving. [Brief explanation of the drawings]
[0008] [Figure 1] Fig. 1(A) is a schematic diagram showing the configuration of a liquid crystal device, and Fig. 1(B) is a schematic plan view showing the configuration of the liquid crystal device. [Figure 2] FIG. 2 is a waveform diagram for explaining the drive signal supplied by the driver. [Figure 3] 3(A) to 3(E) are diagrams showing examples of waveforms when the effective voltage is gradually increased. [Figure 4]4(A) to 4(E) are diagrams for explaining how the voltage changes when the effective voltage is gradually increased over time. [Figure 5] FIG. 5 is a diagram for explaining the method of applying the effective voltage (grayscale pattern) considered in this embodiment. [Figure 6] FIG. 6(A) is a diagram showing the rise characteristics (change in transmittance over time) when a driving voltage is applied according to the gradation pattern 1 shown in FIG. 5, and FIG. 6(B) is an enlarged view of a portion of FIG. 6(A). [Figure 7] FIG. 7(A) is a diagram showing the rise characteristics (change in transmittance over time) when a drive voltage is applied according to gradation pattern 2 shown in FIG. 5, and FIG. 7(B) is an enlarged view of a portion of FIG. 7(A). [Figure 8] FIG. 8(A) is a diagram showing the rise characteristics (change in transmittance over time) when a drive voltage is applied according to the gradation pattern 3 shown in FIG. 5, and FIG. 8(B) is an enlarged view of a portion of FIG. 8(A). [Figure 9] FIG. 9(A) is a diagram showing the rise characteristics (change in transmittance over time) when a drive voltage is applied according to gradation pattern 4 shown in FIG. 5, and FIG. 9(B) is an enlarged view of a portion of FIG. 9(A). [Figure 10] FIG. 10(A) is a diagram showing the rise characteristics (change in transmittance over time) when a driving voltage is applied according to the gradation pattern 5 shown in FIG. 5, and FIG. 10(B) is an enlarged view of a portion of FIG. 10(A). [Figure 11] FIG. 11(A) is a diagram showing the rise characteristics (change in transmittance over time) when a driving voltage is applied according to the gradation pattern 6 shown in FIG. 5, and FIG. 11(B) is an enlarged view of a portion of FIG. 11(A). [Figure 12] FIG. 12(A) is a diagram showing the rise characteristics (change in transmittance over time) when a driving voltage is applied according to the gradation pattern 7 shown in FIG. 5, and FIG. 12(B) is an enlarged view of a portion of FIG. 12(A). [Figure 13]FIG. 13(A) is a diagram showing the rise characteristics (change in transmittance over time) when a drive voltage is applied according to the gradation pattern 8 shown in FIG. 5, and FIG. 13(B) is an enlarged view of a portion of FIG. 13(A). [Figure 14] FIG. 14(A) is a diagram showing the rise characteristics (change in transmittance over time) when a drive voltage is applied according to the gradation pattern 9 shown in FIG. 5, and FIG. 14(B) is an enlarged view of a portion of FIG. 14(A). [Figure 15] FIG. 15(A) is a diagram showing the rise characteristics (change in transmittance over time) when a drive voltage is applied according to the gradation pattern 10 shown in FIG. 5, and FIG. 15(B) is an enlarged view of a portion of FIG. 15(A). [Figure 16] FIG. 16 is a diagram showing the rise characteristics (change in transmittance over time) when a drive voltage is applied in the liquid crystal device used for the verification. DETAILED DESCRIPTION OF THE INVENTION
[0009] The inventors of the present application have theoretically and experimentally investigated the cause of temporary differences in transmittance when voltage is applied in a liquid crystal device using static driving. As a result, they have found that differences in the wiring length from the driver that supplies the driving voltage to the pixel (pixel electrode) cause differences in the transient response characteristics immediately after the driving voltage is applied, which is the cause of the temporary differences in transmittance. This will be explained in detail below.
[0010] FIG. 16 shows the rise characteristics (change in transmittance over time) of the liquid crystal device used in the verification when a drive voltage is applied. For verification purposes, the sheet resistance of the transparent conductive film used for the wiring was set to a relatively large value of 30 Ω / sq. to more clearly differentiate the results due to the wiring length. The rise characteristics were measured in both Region A, which is close to the driver 22, and Region B, which is farther away, as shown in FIG. 1B (described later). The basic configuration of the liquid crystal device was the same as that of the embodiment described later, and the device used had a liquid crystal layer with a substantially vertical alignment. As shown in the figure, the change in transmittance was greater in Region A, which is close to the driver 22, than in Region B. Specifically, the transmittance in Region A rose significantly to over 20% in the very initial period (up to 20 ms), then dropped to just under 15%, and then rose again while maintaining a lower transmittance than Region B. On the other hand, the transmittance in Region B rose to just under 15% in the very initial period, then dropped to just under 10%, and then rose again while maintaining a higher transmittance than Region A. After about 800 ms has passed since the application of the driving voltage, there is almost no difference in the transmittance between regions A and B.
[0011] This difference in transmittance change is presumably due to differences in the alignment changes in the liquid crystal layer immediately after voltage application. Specifically, in Region B, the resistance is large and the time constant is high, mainly due to differences in wiring length, so the time required for the drive voltage to rise to a constant value is slightly longer than in Region A. Therefore, the drive voltage rises in a relatively short time in Region A compared to Region B, resulting in a more rapid change in the alignment of the liquid crystal molecules. For example, in a vertically aligned liquid crystal layer, when the liquid crystal molecules tilt toward the substrate surface, they tilt more than their steady state. They then bounce back vertically to correct this, and then tilt back toward their steady state. This phenomenon, in other words, the liquid crystal molecules vibrate more strongly. The difference in the degree of vibration of the liquid crystal molecules between Regions A and B is presumably responsible for the temporary difference in transmittance during the rise characteristics.
[0012] Recently, in liquid crystal devices for automotive applications, for example, there is a trend to set the Ni point (isotropic-nematic phase transition point) of the liquid crystal material higher to expand the operating temperature range, which results in higher threshold voltages and saturation voltages. Furthermore, when a chiral agent is added to the liquid crystal material to suppress color change at high transmittance, the saturation voltage tends to be higher, and therefore the driving voltage tends to be higher. This makes the above-mentioned disadvantages more pronounced.
[0013] From the above results, the inventors of the present application came up with the idea that by gradually (for example, in stages) increasing the drive voltage rather than immediately increasing it significantly, it is possible to suppress the difference in drive voltage (the difference in the rate of increase) during the transition period, and thereby suppress the temporary difference in transmittance due to the vibration of the liquid crystal molecules. Below, an embodiment of a liquid crystal device based on this idea will be described in detail.
[0014] Fig. 1(A) is a schematic diagram showing the configuration of a liquid crystal device. Fig. 1(B) is a schematic plan view showing the configuration of the liquid crystal device. The liquid crystal device of this embodiment includes a first substrate 11, a second substrate 12, pixel electrodes (individual electrodes) 13, a common electrode (counter electrode) 14, alignment films 15 and 16, a liquid crystal layer 17, polarizers 19 and 20, a controller 21, and a driver 22. In this liquid crystal device, a pixel is formed in each region (partial region) where each pixel electrode 13 and the common electrode 14 face each other with the liquid crystal layer 19 sandwiched therebetween.
[0015] The first substrate 11 and the second substrate 12 are each, for example, rectangular substrates in a plan view, and are arranged with their sides (hereinafter referred to as "one side") closer to the liquid crystal layer 19 facing each other. Each substrate may be a light-transmitting substrate such as a glass substrate or a plastic substrate. Spherical spacers (not shown) made of, for example, a resin film are dispersed between the first substrate 11 and the second substrate 12, and these spherical spacers maintain the gap between the substrates at a desired size (for example, about several μm). Note that instead of the spherical spacers, pillars made of resin or the like may be provided on the first substrate 11 side or the second substrate 12 side and used as spacers.
[0016] Each pixel electrode 13 is provided on one surface of the first substrate 11. Each pixel electrode 13 is formed by appropriately patterning a transparent conductive film such as indium tin oxide (ITO).
[0017] The common electrode 14 is provided on one surface of the second substrate 12. The common electrode 14 is provided integrally with and faces each of the pixel electrodes 13. The common electrode 14 is formed by appropriately patterning a transparent conductive film made of, for example, indium tin oxide (ITO).
[0018] The alignment film 15 is provided on one surface of the first substrate 11 so as to cover each pixel electrode 13. The alignment film 16 is provided on one surface of the second substrate 12 so as to cover the common electrode 14. Each alignment film 15, 16 is intended to determine the alignment state of the liquid crystal layer 17 in its initial state (when no voltage is applied). Each alignment film 15, 16 has been subjected to a uniaxial alignment process, such as rubbing, and has a uniaxial alignment force that determines the alignment of the liquid crystal molecules in the liquid crystal layer 17 along that direction. The direction in which the uniaxial alignment force is exerted is called the easy axis of alignment. The alignment process on each alignment film 15, 16 is set, for example, in an anti-parallel direction. As each alignment film 15, 16, a horizontal alignment film or a vertical alignment film is used as appropriate depending on the operation mode of the liquid crystal layer 17. For example, in this embodiment, vertical alignment films that regulate the pretilt angle of liquid crystal molecules near the interface between each of the alignment films 15 and 16 and the liquid crystal layer 17 to a vertical direction close to 90° (for example, 80° to 89.9°) are used.
[0019] The liquid crystal layer 17 is provided between the first substrate 11 and the second substrate 12. The liquid crystal layer 17 is made of, for example, a nematic liquid crystal material having fluidity. In this embodiment, the liquid crystal layer 17 is made of a liquid crystal material having negative dielectric anisotropy to which a chiral agent has been added. The thickness of the liquid crystal layer 17 can be, for example, about several μm. Note that, depending on the operation mode of the liquid crystal layer 17, a liquid crystal material having positive dielectric anisotropy may be used. As an example, in this embodiment, the dielectric anisotropy Δε is −3.4, the refractive index anisotropy Δn is 0.102, the viscosity (viscosity) is 54.1 mPa·s, and the thickness of the liquid crystal layer 17 is 4 μm.
[0020] The polarizing plate 19 is disposed on the other side of the first substrate 11 (the side not facing the liquid crystal layer 17). Similarly, the polarizing plate 20 is disposed on the other side of the second substrate 12 (the side not facing the liquid crystal layer 17). These polarizing plates 19, 20 are disposed, for example, so that their absorption axes are substantially perpendicular to each other. In this embodiment, the polarizing plates 19, 20 are disposed so as to achieve a normally black mode in which the transmittance of transmitted light is extremely low when no voltage is applied to the liquid crystal layer 17.
[0021] The controller 21 is connected to the driver 22, and generates and supplies to the driver 22 a control signal including image data corresponding to an image to be displayed.
[0022] The driver 22 is connected to the controller 21 and also to each pixel electrode 13 and the common electrode 14, and supplies voltages to each pixel electrode 13 and the common electrode 14 based on control signals from the controller 21. The voltage generated between each pixel electrode 13 and the common electrode 14 and applied to the liquid crystal layer 17 corresponds to the drive voltage.
[0023] 1(B), the driver 22 is disposed on, for example, one surface of the first substrate 11, and is connected to wiring that is connected to each pixel electrode 13 and the common electrode 14 using COG technology. Control signals are supplied from the controller 21 to the driver 22 using, for example, a flexible wiring substrate 23 as shown in the figure. Furthermore, each pixel that corresponds to each pixel electrode 13 is provided in an effective display area 24. For example, the wiring lengths from the driver 22 to the pixel electrodes 13 in areas A and B shown in the figure are different, which can cause the temporary transmittance difference described above.
[0024] 2 is a waveform diagram illustrating the drive signals supplied by the driver. From the top, the waveform labeled COM indicates the voltage supplied to the common electrode 14, and the waveforms labeled SEG0 to SEG4 each indicate an example of the voltage supplied to the pixel electrodes 13.
[0025] The voltage COM applied to the common electrode 14 alternates between the reference potential VSS and a relatively higher potential VR every half period within one period T. Similarly, the voltages SEG0 to SEG4 applied to each pixel electrode 13 alternate between the potential VR and the reference potential VSS.
[0026] Here, with the period of the voltage COM of the common electrode 14 as a reference, the voltage SEG0 is out of phase with the voltage COM by 1 / 2 period, the voltage SEG1 is out of phase with the voltage COM by 1 / 8 period, the voltage SEG2 is out of phase with the voltage COM by 1 / 4 period, the voltage SEG3 is out of phase with the voltage COM by 3 / 8 period, and the voltage SEG4 is in phase with the voltage COM. Note that in practice, the period of the voltage SEG can be shifted in even more stages (for example, 512 stages).
[0027] The waveform labeled St-A indicates the drive voltage generated between the pixel electrode 13 to which the voltage SEG0 is applied and the common electrode 14. As shown in the figure, potentials of +VR and -VR alternate every half period within the period T, and the drive voltage is applied to the liquid crystal layer 17 for the entire period T.
[0028] The waveform labeled St-B indicates the drive voltage generated between the pixel electrode 13 to which the voltage SEG1 is applied and the common electrode 14. As shown in the figure, potentials of +VR and -VR alternate every half period within the period T, and the drive voltage is applied to the liquid crystal layer 17 for 3 / 4 of the period T.
[0029] The waveform labeled St-C indicates the drive voltage generated between the pixel electrode 13 to which the voltage SEG2 is applied and the common electrode 14. As shown in the figure, potentials of +VR and -VR alternate every half period within the period T, and the drive voltage is applied to the liquid crystal layer 17 for half of the period T.
[0030] The waveform labeled St-D indicates the drive voltage generated between the pixel electrode 13 to which the voltage SEG3 is applied and the common electrode 14. As shown in the figure, potentials of +VR and -VR alternate every half period within the period T, and the drive voltage is applied to the liquid crystal layer 17 for 1 / 4 of the period T.
[0031] The waveform labeled St-E indicates the drive voltage generated between the pixel electrode 13 to which the voltage SEG4 is applied and the common electrode 14. As shown in the figure, the potential VSS is always present during the period T, and no voltage is applied to the liquid crystal layer 17 for the entire period T.
[0032] In this way, by setting the length of the period (pulse width) during which voltage is applied to the pixel electrodes 13 in the cycle T in multiple stages, it is possible to variably set the effective value (hereinafter referred to as "effective voltage") of the drive voltage applied to the liquid crystal layer 17 between the pixel electrodes 13 and the common electrode 14, thereby achieving gradation control. In other words, gradation control can be achieved by pulse width modulation. Based on this principle, in this embodiment, the driver 22 controls the magnitude of the effective voltage applied to the liquid crystal layer 17 between each pixel electrode 13 and the common electrode 14. Furthermore, by gradually increasing this pulse width over time, it is also possible to gradually increase the effective voltage over time.
[0033] 3(A) to 3(E) are diagrams showing examples of waveforms when the effective voltage is gradually increased. FIG. 3(A) shows a waveform when the pulse width is very short and therefore the effective voltage is small. As time passes, the pulse width is gradually lengthened as shown in FIGS. 3(B), 3(C), and 3(D), respectively, so that the effective voltage gradually increases in steps. FIG. 3(E) shows a waveform when the pulse width is at its maximum and therefore the effective voltage is at its maximum. In this way, the effective voltage can be gradually increased over time using the pulse width.
[0034] 4(A) to 4(E) are diagrams illustrating voltage changes when the effective voltage is gradually increased over time. Four representative examples are shown here. Specifically, the example shown in FIG. 4(A) illustrates an effective voltage controlled to immediately reach its maximum value at a certain time t0. Note that the term "maximum value" in this specification refers to the maximum value within the rated range that can be set as a driving voltage (the same applies below). This "maximum value" is an example of a predetermined value higher than the threshold value of the liquid crystal layer 17, and refers to the maximum value within the rated range that can be set as a driving voltage. The waveforms shown in FIGS. 4(A) to 4(E) all illustrate the waveforms of the effective voltage when the liquid crystal layer 17 is ultimately driven at a constant predetermined value higher than the threshold value. Of these, the waveform shown in FIG. 4(A) illustrates the case where the effective voltage reaches the predetermined value immediately from time t0. The waveforms shown in FIGS. 4(B) to 4(E) each illustrate the waveforms of the effective voltage when the effective voltage gradually reaches the predetermined value over a certain period of time from time t0. Furthermore, the waveforms shown in Figures 4(B) to 4(E) each include a period during which the effective voltage does not exceed the predetermined value from time t0 until it reaches the predetermined value, but gradually increases toward the predetermined value within a range smaller than the predetermined value.
[0035] The example shown in Figure 4(B) shows an example in which the effective voltage, which was 0 volts, gradually increases from time t0 and then reaches its maximum value. As shown by the dotted line, the time required for the effective voltage to reach its maximum value can be increased or decreased as desired. Note that, although the effective voltage actually increases in a stepwise manner when viewed microscopically, for ease of understanding, the effective voltage is shown to increase linearly here (the same applies to Figures 4(C) to 4(E)).
[0036] In the example shown in Figure 4(C), the effective voltage starts at 0 volts and immediately increases to a predetermined value (approximately half the maximum value in the illustrated example) that is smaller than the maximum value at time t0, and then gradually increases over time to reach the maximum value, similar to Figure 4(B) described above. As shown by the dotted line, the time required for the effective voltage to reach the maximum value can be increased or decreased as desired.
[0037] 4(D) shows an example in which the effective voltage, which is 0 V, gradually increases from time t0 to a predetermined value and then immediately reaches its maximum value at a certain time. As shown by the dotted line, the time required for the effective voltage to reach the predetermined value can be increased or decreased as desired.
[0038] The example shown in Figure 4(E) shows the effective voltage gradually increasing over time from time t0, similar to Figure 4(B), and then controlled to a predetermined value smaller than the maximum value (approximately 1 / 3 of the maximum value in the illustrated example). As shown by the dotted line, the time required for the effective voltage to reach the predetermined value can be increased or decreased as desired.
[0039] In this embodiment, an effective voltage controlled to have a waveform shown in any one of FIGS. 4(A) to 4(E) is applied as a drive voltage to the liquid crystal layer 17 between the pixel electrodes 13 and the common electrode 14.
[0040] FIG. 5 is a diagram illustrating the method of applying the effective voltage (grayscale pattern) considered in this embodiment. This diagram shows the pulse width in each grayscale pattern over time after the application of the effective voltage is initiated. As described above, the driving voltage is controlled by the pulse width, so the magnitude of the pulse width indirectly indicates the magnitude of the driving voltage. Note that each value shown in FIG. 5 indicates the magnitude of the effective voltage applied over time from the start of application of the effective voltage, and represents the magnitude of the effective voltage expressed as a ratio (% value) of the above-mentioned predetermined value (the above-mentioned maximum value, as an example) to this.
[0041] FIG. 6(A) is a diagram showing the rise characteristics (change in transmittance over time) when a driving voltage is applied according to the gradation pattern 1 shown in FIG. 5, and FIG. 6(B) is a partially enlarged view of FIG. 6(A). Each diagram was obtained by measuring the transmittance of pixels in the regions A and B shown in FIG. 1(B) above. Gradation pattern 1 is a comparative example, in which the pulse width is immediately set to 100% from time t0, which is the start time of application, thereby immediately increasing the effective voltage to its maximum value (see FIG. 4(A)).
[0042] As shown in Figure 6(A), there is almost no difference in transmittance between the pixels in regions A and B overall. However, as shown in Figure 6(B), during the transition period immediately after voltage application, when the transmittance reaches its highest point of approximately 30%, there is a difference of just over 1% in the transmittance between the pixels in regions A and B. This difference in transmittance is difficult to detect with the human eye when the pixel width or length is small, but it can be perceived as uneven transmittance when, for example, one side of a pixel is 5 mm or longer. It is also clear that oscillations and overshoots in transmittance occur immediately after voltage application.
[0043] FIG. 7(A) shows the rise characteristics (change in transmittance over time) when a driving voltage is applied according to gradation pattern 2 shown in FIG. 5, and FIG. 7(B) is a partially enlarged view of FIG. 7(A). Each figure was obtained by measuring the transmittance of pixels in regions A and B shown in FIG. 1(B). Gradation pattern 2 is a pattern in which the effective voltage gradually increases and then reaches a maximum value by gradually increasing the pulse width over time from time t0, which is the application start time (see FIG. 4(B)). This pattern takes a relatively long time for the effective voltage to reach its maximum value. More specifically, gradation pattern 2 is a pattern in which the effective voltage is gradually increased over a time (1.7 seconds in this example) that is approximately twice the time required for the oscillation in transmittance to converge when gradation pattern 1 is used. Note that the "time required for the oscillation of transmittance to converge when gradation pattern 1 is used" here refers to the time required for the oscillation of transmittance that occurs when the drive voltage is set to a predetermined value (for example, the maximum value) immediately from time t0 using gradation pattern 1, which is a comparative example, to converge sufficiently and reach a steady state, and in the example shown in Fig. 6(A) this is 0.85 seconds. The same applies to gradation patterns 3 to 10 described below.
[0044] As shown in Figure 7(A), there is almost no difference in transmittance between the pixels in regions A and B overall, and as shown in Figure 7(B), there is no difference in transmittance between the pixels in regions A and B even during the transition period immediately after voltage application. No overshoot occurs. However, the response time, which is the time it takes to reach the specified transmittance (approximately 21% in this example), is long at approximately 1.7 seconds.
[0045] FIG. 8(A) is a diagram showing the rise characteristics (change in transmittance over time) when a driving voltage is applied according to gradation pattern 3 shown in FIG. 5, and FIG. 8(B) is a partially enlarged view of FIG. 8(A). Each diagram was obtained by measuring the transmittance of pixels in regions A and B shown in FIG. 1(B) above. Gradation pattern 3 is a pattern in which the effective voltage gradually increases and then reaches a maximum value by gradually increasing the pulse width over time from time t0, which is the application start time (see FIG. 4(B)). However, gradation pattern 3 is a pattern in which the effective voltage gradually increases over a shorter period of time than gradation pattern 2. More specifically, gradation pattern 3 is a pattern in which the effective voltage is gradually increased over the same period of time (approximately 0.85 seconds in this example) as the period of time required for the oscillation in transmittance to converge when gradation pattern 1 is used.
[0046] As shown in Figure 8(A), there is almost no difference in transmittance between the pixels in regions A and B overall, and as shown in Figure 8(B), there is no difference in transmittance between the pixels in regions A and B even during the transition period immediately after voltage application. No overshoot occurs. However, the response time is relatively long at approximately 0.85 seconds, although it is shorter than that of gradation pattern 2.
[0047] FIG. 9(A) shows the rise characteristics (change in transmittance over time) when a driving voltage is applied according to gradation pattern 4 shown in FIG. 5, and FIG. 9(B) is a partially enlarged view of FIG. 9(A). Each figure was obtained by measuring the transmittance of pixels in regions A and B shown in FIG. 1(B). Gradation pattern 4 sets the pulse width to approximately 50% immediately after time t0, which is the start time of the application, and then gradually increases the pulse width over time, causing the effective voltage to rapidly increase to approximately 50% of the maximum value and then gradually increase to the maximum value (see FIG. 4(C)). More specifically, gradation pattern 4 immediately increases the effective voltage to a predetermined value smaller than the maximum value, and then gradually increases the effective voltage over the same time (0.85 seconds in this example) as the time required for the transmittance oscillation to converge when gradation pattern 1 is used.
[0048] As shown in Figure 9(A), there is almost no difference in transmittance between the pixels in regions A and B overall. As shown in Figure 9(B), there is also no difference in transmittance between the pixels in regions A and B even during the transition period immediately after voltage application. The response time is also very short, at approximately 0.05 seconds. Note that an overshoot phenomenon is observed during the transition period. The results of gradation pattern 4 suggest that it is more effective to immediately increase the effective voltage to a predetermined value less than the maximum value (for example, 50% or less), and then gradually increase it to the maximum value. This gradation pattern is particularly suitable for applications where overshoot is not a significant problem.
[0049] FIG. 10(A) shows the rise characteristics (change in transmittance over time) when a driving voltage is applied according to gradation pattern 5 shown in FIG. 5, and FIG. 10(B) is a partially enlarged view of FIG. 10(A). Each figure was obtained by measuring the transmittance of pixels in regions A and B shown in FIG. 1(B). Gradation pattern 5 is a pattern in which the effective voltage gradually increases and then reaches its maximum value by gradually increasing the pulse width over time from time t0, which is the application start time (see FIG. 4(B)). Gradation pattern 5 is a pattern in which the effective voltage gradually increases to its maximum value over a shorter period of time than gradation pattern 3. More specifically, gradation pattern 5 is a pattern in which the effective voltage gradually increases to its maximum value over a period of approximately half the time required for the transmittance oscillation to converge when gradation pattern 1 is used (approximately 0.42 seconds in this example).
[0050] As shown in Figure 10(A), there is almost no difference in transmittance between the pixels in regions A and B overall, and as shown in Figure 10(B), there is no difference in transmittance between the pixels in regions A and B even during the transition period immediately after voltage application. The response time is also relatively short, at approximately 0.4 seconds. No overshoot occurs.
[0051] FIG. 11(A) shows the rise characteristics (change in transmittance over time) when a driving voltage is applied according to gradation pattern 6 shown in FIG. 5, and FIG. 11(B) is a partially enlarged view of FIG. 11(A). Each figure was obtained by measuring the transmittance of pixels in regions A and B shown in FIG. 1(B). Gradation pattern 6 gradually increases the pulse width over a certain period starting from time t0, and then maximizes the pulse width at a certain time. This causes the effective voltage to gradually increase and then immediately reach its maximum value at a certain time (see FIG. 4(D)). More specifically, gradation pattern 6 gradually increases the effective voltage to a predetermined value (50% of the maximum value) over the same time (approximately 0.85 seconds in this example) as the time required for the transmittance oscillation to converge when gradation pattern 1 is used, and then the effective voltage reaches its maximum value.
[0052] As shown in Figure 11(A), there is almost no difference in transmittance between the pixels in regions A and B overall, and as shown in Figure 11(B), there is no difference in transmittance between the pixels in regions A and B even during the transition period immediately after voltage application. The response time is relatively long, at approximately 0.87 seconds. No overshoot occurs.
[0053] FIG. 12(A) shows the rise characteristics (change in transmittance over time) when a drive voltage is applied according to the gradation pattern 7 shown in FIG. 5 , and FIG. 12(B) is a partially enlarged view of FIG. 12(A). Each figure was obtained by measuring the transmittance of pixels in the regions A and B shown in FIG. 1(B). Gradation pattern 7 gradually increases the pulse width over a certain period starting from time t0, and then maximizes the pulse width at a certain time. This causes the effective voltage to gradually increase and then immediately reach its maximum value at a certain time (see FIG. 4(D)). Gradation pattern 7 has a shorter period of time during which the effective voltage is gradually increased than gradation pattern 6. More specifically, gradation pattern 7 gradually increases the effective voltage to a predetermined value (25% of the maximum value) over approximately half the time required for the transmittance to converge when gradation pattern 1 is used (approximately 0.42 seconds in this example), and then maximizes the effective voltage.
[0054] As shown in Figure 12(A), there is almost no difference in transmittance between the pixels in regions A and B overall, and as shown in Figure 12(B), there is no difference in transmittance between the pixels in regions A and B even during the transition period immediately after voltage application. The response time is also relatively short at approximately 0.47 seconds, and no overshoot occurs.
[0055] FIG. 13(A) shows the rise characteristics (change in transmittance over time) when a drive voltage is applied according to gradation pattern 8 shown in FIG. 5 , and FIG. 13(B) is a partially enlarged view of FIG. 13(A). Each figure was obtained by measuring the transmittance of pixels in regions A and B shown in FIG. 1(B). Gradation pattern 8 gradually increases the pulse width over a certain period starting from time t0, and then maximizes the pulse width at a certain time. This causes the effective voltage to gradually increase and then immediately reach its maximum value at a certain time (see FIG. 4(D)). Gradation pattern 8 has a shorter period of time during which the effective voltage is gradually increased than gradation pattern 7. More specifically, gradation pattern 8 gradually increases the effective voltage to a predetermined value (12% of the maximum value) over approximately one-quarter of the time required for the transmittance to converge when gradation pattern 1 is used (approximately 0.22 seconds in this example), and then maximizes the effective voltage.
[0056] As shown in Figure 13(A), there is almost no difference in transmittance between the pixels in regions A and B overall, and as shown in Figure 13(B), there is no difference in transmittance between the pixels in regions A and B even during the transition period immediately after voltage application. The response time is also relatively short, at approximately 0.33 seconds. Note that an overshoot phenomenon is observed during the transition period, but whether this is a problem or not depends on the application. Based on the results of gradation pattern 8, it can be said that it is more effective to gradually increase the effective voltage to a predetermined value smaller than the maximum value (for example, 10% or more) and then increase it to the maximum value.
[0057] FIG. 14(A) shows the rise characteristics (change in transmittance over time) when a driving voltage is applied according to gradation pattern 9 shown in FIG. 5 , and FIG. 14(B) is a partially enlarged view of FIG. 14(A). Each figure was obtained by measuring the transmittance of pixels in regions A and B shown in FIG. 1(B). Gradation pattern 9 gradually increases the pulse width over a certain period starting from time t0, and then reduces the pulse width to approximately 25% at a certain time. This gradually increases the effective voltage, which then immediately drops to approximately one-quarter of its maximum value at a certain time (see FIG. 4(E)). More specifically, gradation pattern 9 gradually increases the effective voltage to a predetermined value (25% of the maximum value) over approximately one-quarter of the time required for the transmittance oscillation to converge when gradation pattern 1 is used (approximately 0.22 seconds in this example), and then maintains the effective voltage at that predetermined value.
[0058] As shown in Figure 14(A), there is almost no difference in transmittance between the pixels in regions A and B overall, and as shown in Figure 14(B), there is no difference in transmittance between the pixels in regions A and B even during the transition period immediately after voltage application. The response time is also relatively short at approximately 0.24 seconds. No overshoot occurs. The results of gradation pattern 9 show that gradually increasing the effective voltage is effective even when changing the transmittance to intermediate tones.
[0059] FIG. 15(A) shows the rise characteristics (change in transmittance over time) when a driving voltage is applied according to the gradation pattern 10 shown in FIG. 5, and FIG. 15(B) is a partially enlarged view of FIG. 15(A). Each figure was obtained by measuring the transmittance of pixels in the regions A and B shown in FIG. 1(B). Gradation pattern 10 gradually increases the pulse width over a certain period starting from time t0, and then maximizes the pulse width at a certain time. This causes the effective voltage to gradually increase and then immediately reach its maximum value at a certain time (see FIG. 4(D)). Gradation pattern 10 has a shorter period of time during which the effective voltage is gradually increased than gradation pattern 8. More specifically, gradation pattern 10 gradually increases the effective voltage to a predetermined value (25% of the maximum value) over a period of approximately 1 / 8 of the time required for the oscillation in transmittance to converge when gradation pattern 1 is used (approximately 0.11 seconds in this example), and then increases the effective voltage to its maximum value.
[0060] As shown in Figure 15(A), there is almost no difference in transmittance between the pixels in regions A and B overall, and as shown in Figure 15(B), there is no difference in transmittance between the pixels in regions A and B even during the transition period immediately after voltage application. The response time is also very short at approximately 0.15 seconds, and no overshoot occurs.
[0061] According to the above-described embodiment, it is possible to suppress a temporary difference in transmittance when a voltage is applied to a liquid crystal device using static driving. In particular, by setting the period during which the drive voltage is gradually increased over time to be between 1 / 8 and 2 times the time required for the oscillation in transmittance to converge when the drive voltage is set to the predetermined value immediately after the start of application (grayscale pattern 1), it is possible to suppress a temporary difference in transmittance when a voltage is applied to a liquid crystal device using static driving.
[0062] The present disclosure is not limited to the above-described embodiment, and various modifications can be made within the scope of the present disclosure. For example, in the above-described embodiment, the magnitude of the effective voltage is controlled using pulse width modulation, but the magnitude of the effective voltage may be controlled by increasing or decreasing the potential itself applied to each pixel electrode 13 by the driver 22.
[0063] Furthermore, although the above embodiment does not describe in detail the configuration of the wiring connecting each pixel electrode 13, common electrode 14, and driver 22, various known configurations can be adopted for the wiring. For example, the wiring may be arranged in an area (e.g., an inter-electrode area) where no pixel electrodes 13 are provided on one surface of the first substrate 11 on which the driver 22 is arranged, or the wiring may be arranged on one surface of the first substrate 11 below each pixel electrode 13 with an insulating film interposed therebetween. In the latter case, the wiring and each pixel electrode 13 may be connected via a through-hole appropriately provided in the insulating film.
[0064] Furthermore, in the above-described embodiment, image display use is given as an example of the use of the liquid crystal device, but the use of the liquid crystal device is not limited to this. [Explanation of symbols]
[0065] 11: first substrate, 12: second substrate, 13: pixel electrode, 14: common electrode, 15, 16: alignment film, 17: liquid crystal layer, 19, 20: polarizing plate, 21: controller, 22: driver, 23: flexible wiring board, 24: effective display area
Claims
1. A pair of electrodes arranged opposite to each other; a liquid crystal layer disposed between the pair of electrodes; a driver that applies a drive voltage to the liquid crystal layer via the pair of electrodes; Including, the driver, when applying a driving voltage of a predetermined value higher than at least a threshold value of the liquid crystal layer to the pair of electrodes, provides a period in which the driving voltage is gradually increased over time, the driver provides a period in which the drive voltage is gradually increased over time from 0 volts to a first value that is 10% or more of the predetermined value, and then immediately increases the drive voltage to the predetermined value; Liquid crystal device.
2. A pair of electrodes arranged opposite to each other; a liquid crystal layer disposed between the pair of electrodes; a driver that applies a drive voltage to the liquid crystal layer via the pair of electrodes; Including, the driver, when applying a driving voltage of a predetermined value higher than at least a threshold value of the liquid crystal layer to the pair of electrodes, provides a period in which the driving voltage is gradually increased over time, the driver immediately increases the driving voltage to a second value that is 50% or less of the predetermined value, and then provides a period in which the driving voltage is gradually increased over time to the predetermined value. Liquid crystal device.
3. A pair of electrodes arranged opposite to each other; a liquid crystal layer disposed between the pair of electrodes; a driver that applies a drive voltage to the liquid crystal layer via the pair of electrodes; Including, the driver, when applying a driving voltage of a predetermined value higher than at least a threshold value of the liquid crystal layer to the pair of electrodes, provides a period in which the driving voltage is gradually increased over time, the driver supplies the driving voltage to the pair of electrodes by a static driving method; Liquid crystal device.
4. the driver variably sets the magnitude of the drive voltage by pulse width modulation; The liquid crystal device according to any one of claims 1 to 3.
5. the predetermined value is a maximum value within a rated range that can be set as the drive voltage; The liquid crystal device according to any one of claims 1 to 4.
6. the driver sets the period during which the drive voltage is gradually increased over time to be between 1 / 8 and 2 times longer than the time required for the oscillation of transmittance to converge when the drive voltage is immediately set to the predetermined value after the start of application. The liquid crystal device according to any one of claims 1 to 5.
7. A method for driving a liquid crystal device having a liquid crystal layer disposed between a pair of electrodes, comprising: a period in which the driving voltage is gradually increased over time when a driving voltage having a predetermined value higher than at least a threshold value of the liquid crystal layer is applied to the pair of electrodes by a static driving method; A method for driving a liquid crystal device.
Citation Information
Patent Citations
Light control device, image pickup device and their driving method
JP2001142047A
Liquid crystal element and luminaire
JP2021009200A