Method of achieving color states of lower charged particles in an electrophoretic medium containing at least four types of particles

The method for driving an electrophoretic display using four types of particles with controlled charge and optical properties addresses the issue of dim white states in color displays, enhancing color purity and brightness through specific voltage applications and oscillatory waveforms.

JP2026002987APending Publication Date: 2026-01-08E INK CORP
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Patent Information

Application Number
JP2025179500
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2020-06-05
Filing Date
2025-10-24
Publication Date
2026-01-08

AI Technical Summary

Technical Problem

Existing color display technologies using color filters result in a dim white state, which is unacceptable for displays requiring high brightness and contrast, such as e-book readers, and adding a fourth subpixel for white state compromises other colors.

Method used

A method for driving an electrophoretic display using four types of pigment particles with different optical properties and charge polarities and magnitudes, applying specific drive voltages and durations to achieve high-quality color states, including oscillatory waveforms to enhance color purity and brightness.

Benefits of technology

The method enhances color purity and brightness, achieving high-quality color states in electrophoretic displays by effectively utilizing four types of particles with controlled charge and optical properties, improving display performance.

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Abstract

To provide a suitable method for achieving a color state of lower charged particles in an electrophoretic medium containing at least four types of particles.SOLUTION: A method of driving an electrophoretic medium comprising two pairs of oppositely charged particles. The first pair includes a first type of positive particles and a first type of negative particles, and the second pair consists of a second type of positive particles and a second type of negative particles, wherein the particles of the first pair and the particles of the second pair have different charge magnitudes (identifiable as zeta potentials). In particular, the driving method produces a cleaner optical stack of lower charged particles with less contamination from other particles and more consistent electro-optic performance when the intermediate driving voltage is modified.SELECTED DRAWING: Figure 29
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Description

[Technical Field]

[0001] (Related Applications) This application claims priority to U.S. Provisional Patent Application No. 63 / 035,088, filed June 5, 2020, which is incorporated by reference in its entirety. All patents and publications disclosed herein are incorporated by reference in their entirety. FIELD OF THE INVENTION

[0002] The present invention is directed to a driving method for a color display device including an electrophoretic medium with at least four different particle sets, each particle set having a charge polarity and charge magnitude, and none of the particle sets having the same charge polarity and charge magnitude. Using the method described herein, each pixel can display a high-quality color state of the lower-charged particles. [Background technology]

[0003] To achieve a color display, color filters are often used. The most common approach is to add color filters over the black / white subpixels of a pixelated display to display red, green, and blue. When red is desired, the green and blue subpixels are changed to a black state so that the only color displayed is red. When blue is desired, the green and red subpixels are changed to a black state so that the only color displayed is blue. When green is desired, the red and blue subpixels are changed to a black state so that the only color displayed is green. When a black state is desired, all three subpixels are changed to a black state. When a white state is desired, the three subpixels are changed to red, green, and blue, respectively, resulting in a white state seen by the viewer.

[0004] The biggest disadvantage of such a technique is that the white state is quite dim, since each subpixel has about one-third the reflectance of the desired white state. To compensate for this, a fourth subpixel can be added that can display only black and white states, thereby doubling the white level at the expense of the red, green, or blue levels (each subpixel is only one-quarter the area of ​​the pixel). Even with this approach, the white level is usually substantially less than half the level of a black-and-white display, making it an unacceptable choice for display devices such as e-book readers or displays that require sufficiently readable black-and-white brightness and contrast. Summary of the Invention [Means for solving the problem]

[0005] A first aspect of the present invention is directed to a method of driving a pixel of an electrophoretic display, the electrophoretic display comprising: a first surface on a viewing side; a second surface on a non-viewing side; and an electrophoretic fluid disposed between a first light-transmitting electrode and a second electrode, the electrophoretic fluid comprising a first type of particles, a second type of particles, a third type of particles, and a fourth type of particles, all of which are dispersed in a solvent; (a) The four types of pigment particles have different optical properties, (b) the first type of particles and the third type of particles are positively charged, the first type of particles having a greater magnitude of positive charge than the third type of particles; (c) the second type particles and the fourth type particles are negatively charged, the second type particles having a greater magnitude of negative charge than the fourth particles; The method is: (i) applying a first drive voltage at a first amplitude for a first duration to a pixel of an electrophoretic display to drive the pixel to a color state of the first or second type of particle on the viewing side; (ii) applying a second drive voltage to the pixel of the electrophoretic display for a second period of time, the second drive voltage having an opposite polarity to that of the first drive voltage and a second amplitude less than that of the first amplitude, to drive the pixel on the viewing side from the color state of the first type of particles towards the color state of the fourth type of particles, or from the color state of the second type of particles towards the color state of the third type of particles, and repeating steps (i)-(ii); (iii) applying no drive voltage to the pixel for a third period of time; and (iv) applying a second drive voltage to the pixel of the electrophoretic display for a fourth period of time to drive the pixel on the viewing side from the color state of the first type of particles towards the color state of the fourth type of particles, or from the color state of the second type of particles towards the color state of the third type of particles, and repeating steps (iii)-(iv), wherein a drive voltage having the same polarity as the first drive voltage is not applied between steps (iii) and (iv). Includes.

[0006] In some embodiments, the second period in step (ii) is longer than the first period in step (i). In some embodiments, steps (i) and (ii) are repeated at least 8 times. In some embodiments, steps (iii) and (iv) are repeated at least 8 times. In some embodiments, the amplitude of the second driving voltage is less than 50% of the amplitude of the first driving voltage. In some embodiments, the magnitude of the positive charge of the third particles is less than 50% of the magnitude of the positive charge of the first particles. In some embodiments, the magnitude of the negative charge of the fourth particles is less than 75% of the magnitude of the negative charge of the second particles. In some embodiments, a voltage with an oscillating waveform is applied to the pixel before step (i). In some embodiments, the fourth period in step (iv) is shorter than the second period in step (ii). In some embodiments, a third drive voltage is applied to the pixel of the electrophoretic display between steps (ii) and (iii) for a fifth period of time, the third drive voltage having the same polarity as the second drive voltage and the same magnitude as the first amplitude.

[0007] A second aspect of the present invention is directed to a method of driving a pixel of an electrophoretic display, the electrophoretic display comprising: a first surface on a viewing side; a second surface on a non-viewing side; and an electrophoretic fluid disposed between a first light-transmitting electrode and a second electrode, the electrophoretic fluid comprising a first type of particles, a second type of particles, a third type of particles, and a fourth type of particles, all of which are dispersed in a solvent; (a) The four types of pigment particles have different optical properties, (b) the first type of particles and the third type of particles are positively charged, the first type of particles having a greater magnitude of positive charge than the third type of particles; (c) the second type particles and the fourth type particles are negatively charged, the second type particles having a greater magnitude of negative charge than the fourth particles; The method is: (i) applying a first drive voltage at a first amplitude for a first duration to a pixel of an electrophoretic display to drive the pixel to a color state of the first or second type of particle on the viewing side; (ii) applying a second drive voltage to a pixel of the electrophoretic display for a second period of time, the second drive voltage having an opposite polarity to that of the first drive voltage and a second amplitude less than that of the first amplitude, to drive the pixel on the viewing side from a color state of the first type of particles towards a color state of the fourth type of particles, or from a color state of the second type of particles towards a color state of the third type of particles; (iii) repeating steps (i) and (iii) without applying any drive voltage to the pixel for a third period of time; (iv) applying no drive voltage to the pixel for a fourth time period; (v) applying a second drive voltage to the pixel of the electrophoretic display for a fifth time period to drive the pixel on the viewing side from the color state of the first type of particles towards the color state of the fourth type of particles or from the color state of the second type of particles towards the color state of the third type of particles, and repeating steps (iv)-(v), wherein a drive voltage having the same polarity as the first drive voltage is not applied between steps (iv) and (v); Includes.

[0008] In some embodiments, the second period in step (ii) is longer than the first period in step (i). In some embodiments, steps (i)-(iii) are repeated at least 8 times. In some embodiments, steps (iv) and (v) are repeated at least 8 times. In some embodiments, the amplitude of the second driving voltage is less than 50% of the amplitude of the first driving voltage. In some embodiments, the magnitude of the positive charge of the third particles is less than 50% of the magnitude of the positive charge of the first particles. In some embodiments, the magnitude of the negative charge of the fourth particles is less than 75% of the magnitude of the negative charge of the second particles. In some embodiments, a voltage with an oscillating waveform is applied to the pixel before step (i). In some embodiments, the fifth period in step (v) is shorter than the second period in step (ii). In some embodiments, a third drive voltage is applied to the pixel of the electrophoretic display between steps (iii) and (iv) for a sixth period of time, the third drive voltage having the same polarity as the second drive voltage and the same magnitude as the first amplitude.

[0009] A third aspect of the present invention is directed to a method of driving a pixel of an electrophoretic display, the electrophoretic display comprising: a first surface on a viewing side; a second surface on a non-viewing side; and an electrophoretic fluid disposed between a first light-transmitting electrode and a second electrode, the electrophoretic fluid comprising a first type of particles, a second type of particles, a third type of particles, and a fourth type of particles, all of which are dispersed in a solvent; (a) The four types of pigment particles have different optical properties, (b) the first type of particles and the third type of particles are positively charged, the first type of particles having a greater magnitude of positive charge than the third type of particles; (c) the second type particles and the fourth type particles are negatively charged, the second type particles having a greater magnitude of negative charge than the fourth particles; The method is: (i) applying a first drive voltage at a first amplitude for a first duration to a pixel of an electrophoretic display to drive the pixel to a color state of the first or second type of particle on the viewing side; (ii) applying no drive voltage to the pixel for a second period of time; (iii) applying a second drive voltage to a pixel of the electrophoretic display for a third time period, the second drive voltage having a polarity opposite to that of the first drive voltage and a second amplitude less than that of the first amplitude, to drive the pixel on the viewing side from the color state of the first type of particles towards the color state of the fourth type of particles, or from the color state of the second type of particles towards the color state of the third type of particles; (iv) repeating steps (i)-(iv) without applying any drive voltage to the pixel for a fourth period of time; (v) applying no drive voltage to the pixel for a fifth time period; (vi) applying a second drive voltage to the pixel of the electrophoretic display for a sixth time period to drive the pixel on the viewing side from the color state of the first type of particles towards the color state of the fourth type of particles or from the color state of the second type of particles towards the color state of the third type of particles, and repeating steps (v)-(vi), wherein a drive voltage having the same polarity as the first drive voltage is not applied between steps (v) and (vi); Includes.

[0010] In some embodiments, the third period in step (iii) is longer than the first period in step (i). In some embodiments, steps (i)-(iv) are repeated at least eight times. In some embodiments, steps (v) and (vi) are repeated at least eight times. In some embodiments, the amplitude of the second driving voltage is less than 50% of the amplitude of the first driving voltage. In some embodiments, the magnitude of the positive charge of the third particles is less than 50% of the magnitude of the positive charge of the first particles. In some embodiments, the magnitude of the negative charge of the fourth particles is less than 75% of the magnitude of the negative charge of the second particles. In some embodiments, a voltage with an oscillating waveform is applied to the pixel before step (i). In some embodiments, the sixth period in step (vi) is shorter than the third period in step (iii). In some embodiments, a third drive voltage is applied to the pixel of the electrophoretic display for a seventh period between steps (iv) and (v), the third drive voltage having the same polarity as the second drive voltage and the same magnitude as the first amplitude. The present specification also provides, for example, the following items: (Item 1) 1. A method of driving a pixel of an electrophoretic display, the electrophoretic display comprising: a first surface on a viewing side; a second surface on a non-viewing side; and an electrophoretic fluid disposed between a first light-transmitting electrode and a second electrode, the electrophoretic fluid comprising a first type of particles, a second type of particles, a third type of particles, and a fourth type of particles, all of which are dispersed in a solvent; (a) the four types of pigment particles have different optical properties; (b) the first type particles and the third type particles are positively charged, the first type particles having a greater magnitude of positive charge than the third type particles; (c) the second type particles and the fourth type particles are negatively charged, the second type particles having a greater magnitude of negative charge than the fourth type particles; The method comprises: (i) applying a first drive voltage at a first amplitude for a first duration to the pixel of the electrophoretic display to drive the pixel to the color state of the first or second type of particles on the viewing side; (ii) applying a second drive voltage to the pixel of the electrophoretic display for a second period of time, the second drive voltage having an opposite polarity to that of the first drive voltage and a second amplitude less than that of the first amplitude, to drive the pixel on the viewing side from the color state of the first type of particles towards the color state of the fourth type of particles, or from the color state of the second type of particles towards the color state of the third type of particles, and repeating steps (i)-(ii); (iii) applying no drive voltage to the pixel for a third period of time; (iv) applying the second drive voltage to the pixel of the electrophoretic display for a fourth time period to drive the pixel on the viewing side from the color state of the first type of particles towards the color state of the fourth type of particles, or from the color state of the second type of particles towards the color state of the third type of particles, and repeating steps (iii)-(iv); Including, A driving method, wherein a driving voltage having the same polarity as the first driving voltage is not applied between steps (iii) and (iv). (Item 2) 2. The driving method according to item 1, wherein the second period in step (ii) is longer than the first period in step (i). (Item 3) Item 2. The driving method according to item 1, wherein steps (i) and (ii) are repeated at least eight times. (Item 4) Item 1, wherein steps (iii) and (iv) are repeated at least eight times. (Item 5) 2. The driving method according to item 1, wherein the amplitude of the second driving voltage is less than 50% of the amplitude of the first driving voltage. (Item 6) 2. The driving method according to item 1, wherein the magnitude of the positive charge of the third particles is less than 50% of the magnitude of the positive charge of the first particles. (Item 7) 2. The driving method according to item 1, wherein the magnitude of the negative charge of the fourth particles is less than 75% of the magnitude of the negative charge of the second particles. (Item 8) Item 2. The driving method according to item 1, further comprising, before step (i), applying a voltage with an oscillating waveform to the pixel. (Item 9) 2. The driving method according to item 1, wherein the fourth period in step (iv) is shorter than the second period in step (ii). (Item 10) Item 1, further comprising applying a third drive voltage to the pixel of the electrophoretic display for a fifth period between steps (ii) and (iii), the third drive voltage having the same polarity as the second drive voltage and the same magnitude as the first amplitude. (Item 11) 1. A method of driving a pixel of an electrophoretic display, the electrophoretic display comprising: a first surface on a viewing side; a second surface on a non-viewing side; and an electrophoretic fluid disposed between a first light-transmitting electrode and a second electrode, the electrophoretic fluid comprising a first type of particles, a second type of particles, a third type of particles, and a fourth type of particles, all of which are dispersed in a solvent; (a) the four types of pigment particles have different optical properties; (b) the first type particles and the third type particles are positively charged, the first type particles having a greater magnitude of positive charge than the third type particles; (c) the second type particles and the fourth type particles are negatively charged, the second type particles having a greater magnitude of negative charge than the fourth type particles; The method comprises: (i) applying a first drive voltage at a first amplitude for a first duration to the pixel of the electrophoretic display to drive the pixel to the color state of the first or second type of particles on the viewing side; (ii) applying a second drive voltage to the pixel of the electrophoretic display for a second time period, the second drive voltage having an opposite polarity to that of the first drive voltage and a second amplitude less than that of the first amplitude, to drive the pixel on the viewing side from the color state of the first type of particles towards the color state of the fourth type of particles, or from the color state of the second type of particles towards the color state of the third type of particles; (iii) repeating steps (i)-(iii) without applying any drive voltage to the pixel for a third period of time; (iv) applying no drive voltage to the pixel for a fourth time period; (v) applying the second drive voltage to the pixel of the electrophoretic display for a fifth time period to drive the pixel on the viewing side from the color state of the first type of particles towards the color state of the fourth type of particles or from the color state of the second type of particles towards the color state of the third type of particles, and repeating steps (iv)-(v); Including, A driving method, wherein a driving voltage having the same polarity as the first driving voltage is not applied between steps (iv) and (v). (Item 12) Item 12. The driving method according to item 11, wherein the second period in step (ii) is longer than the first period in step (i). (Item 13) Item 12. The driving method according to item 11, wherein steps (i)-(iii) are repeated at least eight times. (Item 14) Item 12. The driving method according to item 11, wherein steps (iv) and (v) are repeated at least eight times. (Item 15) Item 12. The driving method according to Item 11, wherein the amplitude of the second driving voltage is less than 50% of the amplitude of the first driving voltage. (Item 16) Item 12. The driving method according to item 11, wherein the magnitude of the positive charge of the third particles is less than 50% of the magnitude of the positive charge of the first particles. (Item 17) Item 12. The driving method according to item 11, wherein the magnitude of the negative charge of the fourth particles is less than 75% of the magnitude of the negative charge of the second particles. (Item 18) Item 12. The driving method according to item 11, further comprising the step of applying a voltage with an oscillating waveform to the pixel before step (i). (Item 19) Item 12. The driving method according to item 11, wherein the fifth period in step (v) is shorter than the second period in step (ii). (Item 20) Item 12. The driving method of item 11, further comprising, between steps (iii) and (iv), applying a third drive voltage to the pixel of the electrophoretic display for a sixth period of time, the third drive voltage having the same polarity as the second drive voltage and the same magnitude as the first amplitude. [Brief explanation of the drawings]

[0011] [Figure 1] 1 depicts a display layer comprising an electrophoretic medium including four particle sets, each having a charge polarity and charge magnitude, and none of the particle sets having the same charge polarity and charge magnitude, capable of displaying at least four different color states.

[0012] [Figure 2-1]2A-2F illustrate an exemplary electrophoretic medium including four particle sets, each having a charge polarity and charge magnitude, and none of the particle sets having the same charge polarity and charge magnitude. In FIGS. 2A-2F, the yellow and black particles are oppositely charged, and the white and red particles are oppositely charged. The yellow and black particles have a higher magnitude of charge than the white and red particles. The color sets are arbitrary, and any particular combination of four particles can be used with this system. [Figure 2-2] 2A-2F illustrate an exemplary electrophoretic medium including four particle sets, each having a charge polarity and charge magnitude, and none of the particle sets having the same charge polarity and charge magnitude. In FIGS. 2A-2F, the yellow and black particles are oppositely charged, and the white and red particles are oppositely charged. The yellow and black particles have a higher magnitude of charge than the white and red particles. The color sets are arbitrary, and any particular combination of four particles can be used with this system. [Figure 2-3] 2A-2F illustrate an exemplary electrophoretic medium including four particle sets, each having a charge polarity and charge magnitude, and none of the particle sets having the same charge polarity and charge magnitude. In FIGS. 2A-2F, the yellow and black particles are oppositely charged, and the white and red particles are oppositely charged. The yellow and black particles have a higher magnitude of charge than the white and red particles. The color sets are arbitrary, and any particular combination of four particles can be used with this system.

[0013] [Figure 3] FIG. 3 shows an oscillatory waveform that can be incorporated into the drive method.

[0014] [Figure 4] 4 and 5 illustrate a first driving method of the present invention. [Figure 5] 4 and 5 illustrate a first driving method of the present invention.

[0015] [Figure 6]6 and 9 illustrate a second driving method of the present invention.

[0016] [Figure 7] 7, 8, 10 and 11 show driving sequences utilizing the second driving method of the present invention. [Figure 8] 7, 8, 10 and 11 show driving sequences utilizing the second driving method of the present invention. [Figure 9] 6 and 9 illustrate a second driving method of the present invention. [Figure 10] 7, 8, 10 and 11 show driving sequences utilizing the second driving method of the present invention. [Figure 11] 7, 8, 10 and 11 show driving sequences utilizing the second driving method of the present invention.

[0017] [Figure 12] 12 and 15 illustrate a third driving method of the present invention.

[0018] [Figure 13] 13, 14, 16 and 17 show driving sequences utilizing the third driving method of the present invention. [Figure 14] 13, 14, 16 and 17 show driving sequences utilizing the third driving method of the present invention. [Figure 15] 12 and 15 illustrate a third driving method of the present invention. [Figure 16] 13, 14, 16 and 17 show driving sequences utilizing the third driving method of the present invention. [Figure 17] 13, 14, 16 and 17 show driving sequences utilizing the third driving method of the present invention.

[0019] [Figure 18] 18 and 21 illustrate a fourth driving method of the present invention.

[0020] [Figure 19] 19, 20, 22 and 23 show driving sequences utilizing the fourth driving method of the present invention. [Figure 20] 19, 20, 22 and 23 show driving sequences utilizing the fourth driving method of the present invention. [Figure 21] 18 and 21 illustrate a fourth driving method of the present invention. [Figure 22] 19, 20, 22 and 23 show driving sequences utilizing the fourth driving method of the present invention. [Figure 23] 19, 20, 22 and 23 show driving sequences utilizing the fourth driving method of the present invention.

[0021] [Figure 24] FIG. 24 illustrates additional waveforms that can be used to improve the color state of lower charged particle sets.

[0022] [Figure 25] FIG. 25 illustrates a driving method to achieve a high quality color state for lower charged particles.

[0023] [Figure 26] FIG. 26 illustrates a driving method to achieve a high quality color state for lower charged particles.

[0024] [Figure 27] FIG. 27 illustrates a driving method to achieve a high quality color state for lower charged particles.

[0025] [Figure 28] FIG. 28 illustrates additional waveforms that can be used to improve the color state of lower charged particle sets.

[0026] [Figure 29] FIG. 29 illustrates a driving method to achieve a high quality color state for lower charged particles.

[0027] [Figure 30] FIG. 30 illustrates a driving method to achieve a high quality color state for lower charged particles.

[0028] [Figure 31] FIG. 31 illustrates a driving method to achieve a high quality color state for lower charged particles.

[0029] [Figure 32] FIG. 32 illustrates an improved driving method to achieve a higher quality color state for lower charged particles.

[0030] [Figure 33] FIG. 33 illustrates an improved driving method to achieve higher quality color states for lower charged particles.

[0031] [Figure 34] Figure 34 shows the measured change in electro-optic (EO) performance as a function of voltage for the lower voltage waveforms. The waveforms in Figure 29 (original WF) are compared with those in Figure 33 (improved WF). DETAILED DESCRIPTION OF THE INVENTION

[0032] The electrophoretic fluid of the present invention comprises two pairs of oppositely charged particles: the first pair consisting of a first type of positive particle and a first type of negative particle, and the second pair consisting of a second type of positive particle and a second type of negative particle.

[0033] In two pairs of oppositely charged particles, one pair carries a stronger charge than the other pair. Thus, the four types of particles may also be referred to as highly positive, highly negative, weakly positive, and weakly negative particles.

[0034] As an example shown in Figure 1, black particles (K) and yellow particles (Y) are a first pair of oppositely charged particles, in which the black particles are highly positive and the yellow particles are highly negative. Red particles (R) and white particles (W) are a second pair of oppositely charged particles, in which the red particles are less positive and the white particles are less negative.

[0035] In another example not shown, the black particles may be highly positive, the yellow particles may be low positive, the white particles may be low negative, and the red particles may be highly negative.

[0036] In addition, the color states of the four types of particles can be intentionally mixed. For example, if a better yellow state is desired, since yellow pigments often inherently have a greenish tint, yellow particles and red particles can be used, with both types of particles carrying the same charge polarity, and the yellow particles being more highly charged than the red particles. As a result, in the yellow state, there will be a small amount of red particles mixed with the greenish yellow particles, so that the yellow state has better color purity.

[0037] It should be understood that the scope of the present invention broadly encompasses particles of any color, so long as the four types of particles are visually distinguishable colors.

[0038] Regarding the white particles, they can be formed from inorganic pigments such as TiO2, ZrO2, ZnO, Al2O3, Sb2O3, BaSO4, PbSO4, and the like.

[0039] With regard to the black particles, they may be formed from CI pigment black 26 or 28, etc. (eg, manganese ferrite black spinel or copper chromite black spinel), or carbon black.

[0040] The non-white and non-black particles are independent of color, such as red, green, blue, magenta, cyan, or yellow. Pigments for the color particles may include, but are not limited to, CI pigments PR254, PR122, PR149, PG36, PG58, PG7, PB28, PB15:3, PY83, PY138, PY150, PY155, or PY20. These are commonly used organic pigments described in the Color Index Handbook "New Pigment Application Technology" (CMC Publishing Co., Ltd., 1986) and "Printing Ink Technology" (CMC Publishing Co., Ltd., 1984). Specific examples include Clariant Hostaperm Red D3G 70-EDS, Hostaperm Pink E-EDS, PV fast red D3G, Hostaperm red D3G 70, Hostaperm Blue B2G-EDS, Hostaperm Yellow H4G-EDS, Novoperm Yellow HR-70-EDS, Hostaperm Green GNX, BASF Irgazine red L3630, Cinquasia Red L 4100 HD, and Irgazin Red L 3660 HD, Sun Chemical Phthalocyanine Blue, Phthalocyanine Green, Dialilide Yellow, or Dialilide AAOT Yellow.

[0041] The color particles can also be inorganic pigments such as red, green, blue, and yellow. Examples can include, but are not limited to, CI Pigment Blue 28, CI Pigment Green 50, and CI Pigment Yellow 227.

[0042] In addition to color, the four types of particles may have other different optical properties such as optical transmittance, reflectance, luminescence, or pseudocolor (in the sense of changes in reflectance of electromagnetic wavelengths outside the visible range, in the case of displays intended for machine reading).

[0043] The display layer utilizing the display fluid of the present invention has two surfaces: a first surface (13) on the viewing side and a second surface (14) opposite the first surface (13). The display fluid is sandwiched between the two surfaces. On the first surface (13) side is a common electrode (11), which is a transparent electrode layer (e.g., ITO), which extends across the entire top of the display layer. On the second surface (14) side is an electrode layer (12) comprising a plurality of pixel electrodes (12a).

[0044] Pixel electrodes are described in U.S. Patent No. 7,046,228, the contents of which are incorporated herein by reference in their entirety. It should be noted that although active matrix drive with thin film transistor (TFT) backplanes is described with respect to a layer of pixel electrodes, the scope of the present invention encompasses other types of electrode addressing, so long as the electrodes perform the desired function.

[0045] Each space between two vertical dotted lines in Figure 1 represents a pixel. As shown, each pixel has a corresponding pixel electrode. An electric field is generated for a pixel by the potential difference between the voltage applied to the common electrode and the voltage applied to the corresponding pixel electrode.

[0046] The solvent in which the four types of particles are dispersed is clear and colorless, preferably has a low viscosity for high particle mobility, and a dielectric constant in the range of about 2 to about 30, preferably about 2 to about 15. Examples of suitable dielectric solvents are hydrocarbons such as Isopar®, decahydronaphthalene (DECALIN), 5-ethylidene-2-norbornene, fatty oils, paraffin oils, silicone fluids, aromatic hydrocarbons such as toluene, xylene, phenylxylylethane, dodecylbenzene, or alkylnaphthalenes, halogenated solvents such as perfluorodecalin, perfluorotoluene, perfluoroxylene, dichlorobenzotrifluoride, 3,4,5-trichlorobenzotrifluoride, chloropentafluorobenzene, dichlorononane, or pentachlorobenzene, and perfluorinated solvents such as FC-43, FC-70, or FC-5060 from 3M Company (St. Paul, MN), low molecular weight halogen containing polymers such as poly(perfluoropropylene oxide) from TCI America (Portland, Oregon), and Halocarbon from Halocarbon Product Corp. (River Edge, NJ). perfluoropolyalkyl ethers such as Galden Oils from Ausimont or Krytox Oils and Greases K-Fluid Series from DuPont (Delaware), polydimethylsiloxane-based silicone oils from Dow-corning (DC-200).

[0047] In one embodiment, the charge carried by a "low charge" particle may be less than about 50%, preferably about 5% to about 30%, of the charge carried by a "high charge" particle. In another embodiment, a "low charge" particle may be less than about 75%, or about 15% to about 55%, of the charge carried by a "high charge" particle. In further embodiments, the comparison of charge levels as indicated applies to two types of particles having the same charge polarity.

[0048] Charge strength can be measured in terms of zeta potential. In one embodiment, zeta potential is determined using a Colloidal Dynamics AcoustoSizer IIM with a CSPU-100 signal processing unit and an ESA EN# Attn flow-through cell (K:127). Instrument constants, such as the density of the solvent used in the sample, the dielectric constant of the solvent, the speed of sound in the solvent, and the viscosity of the solvent, are all entered prior to testing at the test temperature (25°C). The pigment sample is dispersed in a solvent (typically a hydrocarbon fluid with fewer than 12 carbon atoms) and diluted to 5-10% by weight. The sample also contains a charge control agent (Solsperse 17000®, available from Lubrizol Corporation, a subsidiary of Berkshire Hathaway; "Solsperse" is a registered trademark) with a 1:10 weight ratio of charge control agent to particles. The mass of the diluted sample is determined, and the sample is then loaded into the flow-through cell for zeta potential determination.

[0049] The amplitudes of "highly positive" and "highly negative" particles can be the same or different. Similarly, the amplitudes of "lowly positive" and "lowly negative" particles can be the same or different. However, the zeta potential of a "highly positive" or positive particle with a greater charge strength or magnitude is greater than the zeta potential of a "lowly positive" or positive particle with a lower charge strength or magnitude, and the same logic applies to high-negative and low-negative particles. In the same medium under the same field, a more highly charged particle will have a greater electrophoretic mobility, i.e., a more highly charged particle will traverse the same distance in less time than a lesser charged particle.

[0050] It should also be noted that in the same fluid, two pairs of high- and low-charge particles may have different levels of charge difference: for example, in one pair, the low-positive particle may have a charge strength that is 30% of the charge strength of the high-positive particle, and in another pair, the low-negative particle may have a charge strength that is 50% of the charge strength of the high-negative particle.

[0051] The following examples illustrate display devices utilizing such display fluids. (Example Drive Scheme)

[0052] An exemplary drive scheme using an exemplary four-particle system is demonstrated in Figures 2A-2F. The highly positive particles are black (K), the highly negative particles are yellow (Y), the low positive particles are red (R), and the low negative particles are white (W). In Figure 2A, when a high negative voltage potential difference (e.g., -15V) is applied to the pixel for a long enough period of time, an electric field is generated that pushes the yellow particles (Y) toward the common electrode (21) and pulls the black particles (K) toward the pixel electrode (22a). Because the red (R) and white (W) particles carry a weaker charge, they move slower than the more highly charged black and yellow particles; as a result, they remain in the center of the pixel, and the white particles are above the red particles. In this case, yellow is seen on the viewing side. In Figure 2B, when a high positive voltage potential difference (e.g., +15V) is applied to the pixel for a long enough period of time, an electric field of opposite polarity is generated that causes the particle distribution to be opposite to that shown in Figure 2A, and as a result, black is seen on the viewing side.

[0053] In Figures 2C and 2D, when a lower positive voltage potential difference (e.g., +3V) is applied to the pixel of Figure 2C for a long enough period of time (i.e., driven from the yellow state), an electric field is generated that causes the yellow particles (Y) to move toward the pixel electrode (22a) while the black particles (K) move toward the common electrode (21). However, when they meet at the center of the pixel, they significantly slow down and remain there because the electric field generated by the low driving voltage is not strong enough to overcome the strong attractive force between them. As shown in Figure 2D, the electric field generated by the low driving voltage is sufficient to separate the less charged (lower charged) white and red particles, thereby allowing the less positive red particles (R) to move to the common electrode (21) side (i.e., the viewing side) and the less negative (lower charged) white particles (W) to move to the pixel electrode (22a). As a result, red is seen. Note also in this diagram that there are attractive forces between weaker charged particles (e.g., R) and stronger charged particles of the opposite polarity (e.g., Y). However, these attractive forces are not as strong as those between the two types of stronger charged particles (K and Y), and therefore, they can be overcome by the electric field generated by the low driving voltage. Importantly, this system allows weaker charged particles to be separated from stronger charged particles of the opposite polarity.

[0054] In Figures 2E and 2F, when a lower negative voltage potential difference (e.g., -3 V) is applied to the pixel of Figure 2E for a long enough period of time (i.e., driven from the yellow state), an electric field is generated that causes the black particles (K) to move toward the pixel electrode (22a) while the white particles (W) move toward the common electrode (21). When the black and yellow particles meet in the center of the pixel, they slow down significantly and remain there because the electric field generated by the low driving voltage is not strong enough to overcome the strong attractive force between them. As shown in Figure 2F, the electric field generated by the low driving voltage is sufficient to separate the white and red particles, causing the low-negative white particles (W) to move toward the common electrode (i.e., the viewing side) and the low-positive red particles (R) to move toward the pixel electrode. As a result, a white color is seen. Note also that in this figure, there is an attractive force between the weaker charged particles (e.g., W) and the more strongly charged particles of the opposite polarity (e.g., K). However, these attractive forces are not as strong as those between the two types of more strongly charged particles (K and Y), and therefore they can be overcome by the electric field generated by the low driving voltage. In other words, the less strongly charged particles and the more strongly charged particles of opposite polarity can be separated.

[0055] In this example, the black particles (K) carry a high positive charge, the yellow particles (Y) carry a high negative charge, the red (R) particles carry a low positive charge, and the white particles (W) carry a low negative charge, but in practice, the four sets of particles in the electrophoretic medium of the present invention can have high positive, high negative, low positive, and low negative charges of any color. All of these variations are intended to be within the scope of this application.

[0056] Also note that the lower voltage potential difference applied to reach the color state of Figures 2D and 2F can be about 5% to about 50% of the total drive voltage potential difference required to drive the pixel from a high positive particle color state to a low negative particle color state, or vice versa.

[0057] The electrophoretic fluid as described above is filled into the display cells. The display cells may be cup-shaped microcells as described in U.S. Patent No. 6,930,818, the contents of which are incorporated herein by reference in their entirety. The display cells may also be other types of microcontainers, such as microcapsules, microchannels, etc., regardless of their shape or size. All of these are within the scope of the present application.

[0058] To ensure both color brightness and color purity, an oscillatory waveform can be used prior to driving from one color state to another. The oscillatory waveform consists of a pair of opposing drive pulses repeated over many cycles. For example, the oscillatory waveform can consist of a +15V pulse for 20 milliseconds and a -15V pulse for 20 milliseconds, with such a pair of pulses repeated 50 times. The total time of such an oscillatory waveform would be 2,000 milliseconds (see Figure 3). In practice, there can be at least 10 repetitions of the oscillatory pulse (i.e., 10 pairs of positive and negative pulses). A drive sequence can include two or more oscillatory pulses. The oscillatory waveform can be applied regardless of the optical state (black, white, red, or yellow) before the drive voltage is applied. After the oscillatory waveform is applied, the optical state will not be pure white, pure black, pure yellow, or pure red. Instead, the color state will be derived from a mixture of four types of pigment particles.

[0059] Each of the drive pulses in the oscillating waveform, in this example, is applied for no more than 50% (or no more than 30%, 10%, or 5%) of the required drive time from a fully black state to a fully yellow state, or vice versa. For example, if it takes 300 milliseconds to drive a display device from a fully black state to a fully yellow state, or vice versa, the oscillating waveform may consist of positive and negative pulses, each applied for 150 milliseconds or less. In practice, shorter pulses are preferred. The oscillating waveform as described may be used in the drive method of the present invention. [Note that in all of the figures throughout this application, the oscillating waveforms are shortened (i.e., the number of pulses is less than the actual number).]

[0060] In addition, in the context of this application, a high driving voltage (V H1 or V H2 ) is defined as the drive voltage that is sufficient to drive a pixel from a highly positive color state to a highly negative color state, or vice versa (see Figures 2A and 2B). In the present scenario as described, a low drive voltage (V L1 or V L2 ) is defined as the drive voltage that can be sufficient to drive a pixel from a color state with less charged particles to a color state with more charged particles (see Figures 2D and 2F). In general, V L (For example, V L1 or V L2 ) amplitude is V H (For example, V H1 or V H2 ) is less than 50%, or preferably less than 40% of the amplitude of (First driving method:) (Part A:)

[0061] FIG. 4 illustrates a drive scheme for driving a pixel from a yellow state (high negative) to a red state (low positive). The scheme uses a high negative drive voltage (V H2 , e.g., −15V) is applied for a period of t2 to drive the pixel towards the yellow state after the oscillatory waveform. From the yellow state, the pixel is driven to a low positive voltage (VL1 , e.g., +5V) (i.e., driving the pixel from FIG. 2C to FIG. 2D). H2 is applied, the drive period t3 is sufficient to drive the pixel to the yellow state, and V L1 is applied for a period sufficient to drive the pixel from a red state to a yellow state. The drive voltage is preferably applied for a period of t1 before the oscillating waveform to ensure DC balance. The entire waveform of FIG. 4 is DC balanced. The term "DC balanced" is intended throughout this application to mean that the drive voltage applied to the pixel is substantially zero when integrated over a period (e.g., the period of the entire waveform). DC balance can be achieved by balancing each stage of the waveform; i.e., a first positive voltage would be chosen so that integrating over a subsequent negative voltage results in zero or substantially zero. If a stage is then repeated, the voltage integrated over the series of repetitions will also be zero or substantially zero, i.e., "DC balanced." Alternatively, a stage (or stages) of the waveform is not balanced in that integration over this stage results in a positive (or negative) DC offset. However, later stages can be designed not to be balanced in the opposite direction so that the overall waveform is DC balanced. (Part B:)

[0062] Figure 5 illustrates a drive method for driving a pixel from a black state (high positive) to a white state (low negative). The method uses a high positive drive voltage (V H1 , e.g., +15V) is applied for a period of t5 to drive the pixel towards the black state after the oscillatory waveform. From the black state, the pixel is applied with a low negative voltage (V L2 , e.g., −5V) (i.e., driving the pixel from FIG. 2E to FIG. 2F). H1 is applied, the duration is sufficient to drive the pixel to the black state, and the drive period t6 is VL2 5 is applied for a period of time sufficient to drive the pixel from the black state to the white state. The drive voltage is preferably applied for a period of t4 before the oscillating waveform to ensure DC balance. In one embodiment, the entire waveform of FIG. 5 is DC balanced.

[0063] In general, the driving methods of FIGS. 4 and 5 can be summarized as follows.

[0064] 1. A driving method for an electrophoretic display comprising a first surface on a viewing side, a second surface on a non-viewing side, and an electrophoretic fluid sandwiched between a common electrode and a layer of pixel electrodes, the fluid comprising a first type of particles, a second type of particles, a third type of particles, and a fourth type of particles, all of which are dispersed in a solvent or solvent mixture;

[0065] (a) The four types of pigment particles have different optical properties,

[0066] (b) the first type of particles carry a high positive charge and the second type of particles carry a high negative charge;

[0067] (c) the third type of particles carry a low positive charge and the fourth type of particles carry a low negative charge;

[0068] The method involves the following steps:

[0069] (i) applying a first drive voltage to a pixel in an electrophoretic display for a first time period to drive the pixel towards a color state of either the first or second type of particle on the viewing side;

[0070] (ii) applying a second drive voltage to the pixel for a second period of time, the second drive voltage having an opposite polarity to that of the first drive voltage and a second amplitude less than that of the first amplitude, to drive the pixel from the color state of the first type of particles toward the color state of the fourth type of particles, or from the color state of the second type of particles toward the color state of the third type of particles, on the viewing side; Includes. (Second driving method:) (Part A:)

[0071] A second driving method of the present invention is illustrated in Figure 6. This relates to a driving waveform used to replace the driving period t3 of Figure 4.

[0072] In the first step, a high negative drive voltage (V H2 , e.g., −15V) is applied for a period of t7 to push the yellow particles toward the viewing side, followed by a positive drive voltage (+V′) for a period of t8, which pulls down the yellow particles and pushes the red particles toward the viewing side. The amplitude of +V′ is V H (For example, V H1 or V H2 In one embodiment, the amplitude of +V' is lower than that of V H (For example, V H1 or V H2 ) is less than 50% of the amplitude of t8. In one embodiment, t8 is greater than t7. In one embodiment, t7 may be in the range of 20-400 milliseconds, and t8 may be ≥ 200 milliseconds.

[0073] The waveform of FIG. 6 is repeated for at least two cycles (N≧2), preferably at least four cycles, and more preferably at least eight cycles. The red color becomes more intense after each drive cycle, as measured using a handheld spectrophotometer. As described, a drive waveform such as that shown in FIG. 6 can be used to replace the drive period t3 of FIG. 4 (see FIG. 7). In other words, the drive sequence can be an oscillating waveform, followed by driving toward the yellow state for a period of t2, and then applying the waveform of FIG. 6. In another embodiment, the step of driving to the yellow state for a period of t2 can be eliminated entirely, in which case an oscillating waveform is applied before applying the waveform of FIG. 6 (see FIG. 8). In one embodiment, the entire waveform of FIG. 7 is DC-balanced. In another embodiment, the entire waveform of FIG. 8 is DC-balanced. (Part B:)

[0074] Similarly, Figure 9 illustrates the drive waveforms used to replace the drive period t6 in Figure 5. In the first step, a high positive drive voltage (V H1 A negative driving voltage (-V') is applied for a period of t9 to push the black particles toward the viewing side, followed by a negative driving voltage (-V') for a period of t10, which pulls down the black particles and pushes the white particles toward the viewing side. The amplitude of -V' is V H (For example, V H1 or V H2 In one embodiment, the amplitude of -V' is lower than that of V H (For example, V H1 or V H2) is less than 50% of the amplitude of the waveform of FIG. 9. In one embodiment, t10 is greater than t9. In one embodiment, t9 can be in the range of 20 to 400 milliseconds, and t10≧200 milliseconds. The waveform of FIG. 9 is repeated for at least two cycles (N≧2), preferably at least four cycles, and more preferably at least eight cycles. The white color becomes more intense after each drive cycle. As described, a drive waveform such as that shown in FIG. 9 can be used to replace the drive period t6 of FIG. 5 (see FIG. 10). In other words, the drive sequence can be an oscillating waveform, followed by driving to a black state for a period of t5, and then applying the waveform of FIG. 9. In another embodiment, the step of driving to a black state for a period of t5 can be eliminated, in which case an oscillating waveform is applied before applying the waveform of FIG. 9 (see FIG. 11). In one embodiment, the entire waveform of FIG. 10 is DC balanced. In another embodiment, the entire waveform of FIG. 11 is DC balanced.

[0075] This second driving method, represented in FIGS. 6-11, can be summarized as follows.

[0076] 1. A driving method for an electrophoretic display comprising a first surface on a viewing side, a second surface on a non-viewing side, and an electrophoretic fluid sandwiched between a common electrode and a layer of pixel electrodes, the fluid comprising a first type of particles, a second type of particles, a third type of particles, and a fourth type of particles, all of which are dispersed in a solvent or solvent mixture;

[0077] (a) The four types of pigment particles have different optical properties,

[0078] (b) the first type of particles carry a high positive charge and the second type of particles carry a high negative charge;

[0079] (c) the third type of particles carry a low positive charge and the fourth type of particles carry a low negative charge;

[0080] The method involves the following steps:

[0081] (i) applying a first drive voltage to a pixel in an electrophoretic display for a first time period to drive the pixel towards a color state of either the first or second type of particle on the viewing side;

[0082] (ii) applying a second drive voltage to the pixel for a second period of time, the second period of time being longer than the first period of time, the second drive voltage having an opposite polarity to that of the first drive voltage, and the second drive voltage having a lower amplitude than that of the first drive voltage, to drive the pixel from the color state of the first type of particles towards the color state of the fourth type of particles, or from the color state of the second type of particles towards the color state of the third type of particles, on the viewing side;

[0083] repeating steps (i) and (ii); Includes.

[0084] In one embodiment, the amplitude of the second drive voltage is less than 50% of the amplitude of the first drive voltage. In one embodiment, steps (i) and (ii) are repeated at least twice, preferably at least four times, and more preferably at least eight times. In one embodiment, the method further includes an oscillating waveform before step (i). In one embodiment, the method further includes, after the oscillating waveform but prior to step (i), driving the pixel to a color state of the first or second type of particle. (Third driving method:) (Part A:)

[0085] A third driving method of the present invention is illustrated in FIG. 12. It relates to an alternative to the driving waveform of FIG. 6, which can be used to replace the driving period t3 of FIG. 4. In this alternative waveform, a waiting period t13 is added. During the waiting period, no driving voltage is applied. The entire waveform of FIG. 12 is also repeated at least twice (N≧2), preferably at least four times, and more preferably at least eight times. The waveform of FIG. 12 is designed to release charge imbalances stored in dielectric layers and / or at interfaces between different material layers within an electrophoretic display device, particularly when the dielectric layers have high resistance, for example, at low temperatures. (This charge accumulation is also known as remnant voltage.) In the context of this application, the term “low temperature” refers to temperatures below about 10° C., e.g., 0° C. or colder, e.g., −5° C. or colder, e.g., −10° C. or colder, e.g., −20° C. or colder.

[0086] The waiting time would allow unwanted charge stored in the dielectric layer to dissipate, allowing the short pulse (t11) for driving the pixel toward the yellow state and the longer pulse (t12) for driving the pixel toward the red state to be more efficient. As a result, this alternative driving method would result in better separation of low-charged pigment particles from higher-charged ones. In addition, because there is more time for the stored charge in the dielectric layer to dissipate, there is less drift in the final optical state of the display.

[0087] Periods t11 and t12 are similar to t7 and t8, respectively, in FIG. 6 . In other words, t12 is longer than t11. The waiting time (t13) can be in the range of 5 to 5,000 milliseconds, depending on the resistance of the dielectric layer. As described, a drive waveform such as that shown in FIG. 12 can also be used to replace the drive period t3 in FIG. 4 (see FIG. 13 ). In other words, the drive sequence can be an oscillating waveform, followed by driving to the yellow state for a period of t2, and then applying the waveform of FIG. 12 . In another embodiment, the step of driving to the yellow state for a period of t2 can be eliminated, in which case an oscillating waveform is applied before applying the waveform of FIG. 12 (see FIG. 14 ). In one embodiment, the entire waveform of FIG. 13 is DC-balanced. In another embodiment, the entire waveform of FIG. 14 is DC-balanced. (Part B:)

[0088] FIG. 15 illustrates an alternative to the drive waveform of FIG. 9, which can be used to replace the drive period t6 of FIG. 5. In this alternative waveform, a wait time t16 is added. During the wait time, no drive voltage is applied. The entire waveform of FIG. 15 is also repeated at least twice (N≧2), preferably at least four times, and more preferably at least eight times. Like the waveform of FIG. 12, the waveform of FIG. 15 is also designed to release charge imbalances stored in the dielectric layer and / or at the interface between different material layers within an electrophoretic display device. As mentioned above, the wait time likely allows unwanted charge stored in the dielectric layer to dissipate, making the short pulse (t14) for driving pixels toward a black state and the longer pulse (t15) for driving pixels toward a white state more efficient. Periods t14 and t15 are similar to t9 and t10, respectively, of FIG. 9. In other words, t15 is greater than t14. The wait time (t16) can also be in the range of 5 to 5,000 milliseconds, depending on the resistance of the dielectric layer. As described, a drive waveform such as that shown in FIG. 15 can also be used to replace the drive period t6 of FIG. 5 (see FIG. 16). In other words, the drive sequence can be an oscillating waveform, followed by driving to the black state for a period of t5, and then applying the waveform of FIG. 15. In another embodiment, the step of driving to the black state for a period of t5 can be eliminated, in which case an oscillating waveform is applied before applying the waveform of FIG. 15 (see FIG. 17). In one embodiment, the entire waveform of FIG. 16 is DC-balanced. In another embodiment, the entire waveform of FIG. 17 is DC-balanced.

[0089] The third driving method, depicted in FIGS. 12-17, can be summarized as follows.

[0090] 1. A driving method for an electrophoretic display comprising a first surface on a viewing side, a second surface on a non-viewing side, and an electrophoretic fluid sandwiched between a common electrode and a layer of pixel electrodes, the fluid comprising a first type of particles, a second type of particles, a third type of particles, and a fourth type of particles, all of which are dispersed in a solvent or solvent mixture;

[0091] (a) The four types of pigment particles have different optical properties,

[0092] (b) the first type of particles carry a high positive charge and the second type of particles carry a high negative charge;

[0093] (c) the third type of particles carry a low positive charge and the fourth type of particles carry a low negative charge;

[0094] The method involves the following steps:

[0095] (i) applying a first drive voltage to a pixel in an electrophoretic display for a first time period to drive the pixel towards a color state of either the first type or the second type of particle on the viewing side;

[0096] (ii) applying a second drive voltage to the pixel for a second period of time, the second period of time being longer than the first period of time, the second drive voltage having an opposite polarity to that of the first drive voltage, and the second drive voltage having a lower amplitude than that of the first drive voltage, to drive the pixel from the color state of the first type of particles towards the color state of the fourth type of particles, or from the color state of the second type of particles towards the color state of the third type of particles, on the viewing side;

[0097] (iii) applying no drive voltage to the pixel for a third period of time;

[0098] Repeating steps (i)-(iii); Includes.

[0099] In one embodiment, the amplitude of the second driving voltage is less than 50% of the amplitude of the first driving voltage. In one embodiment, steps (i), (ii), and (iii) are repeated at least twice, preferably at least four times, and more preferably at least eight times. In one embodiment, the method further includes an oscillating waveform before step (i). In one embodiment, the method further includes a step of driving the first or second type of particles to a full color state after the oscillating waveform but prior to step (i). It should be noted that the length of any of the driving periods referenced herein may be temperature dependent. (Fourth driving method:) (Part A:)

[0100] A fourth driving method of the present invention is illustrated in Figure 18. It relates to a driving waveform that can be used to replace the driving period t3 in Figure 4. In the first step, a high negative driving voltage (V H2 , e.g., −15V) is applied to the pixel for a period of t17, followed by a waiting period of t18. After the waiting period, a positive drive voltage (+V), e.g., V H1 or V H2A driving voltage (less than 50% of the driving voltage) is applied to the pixel for a period of t19, followed by a second waiting period of t20. The waveform of FIG. 18 is repeated at least twice, preferably at least four times, and more preferably at least eight times. The term "waiting period," as explained above, refers to a period during which no driving voltage is applied. In the waveform of FIG. 18, the first waiting period t18 is very short, while the second waiting period t20 is longer. The period of t17 is also shorter than the period of t19. For example, t17 may be in the range of 20 to 200 milliseconds, t18 may be less than 100 milliseconds, t19 may be in the range of 100 to 200 milliseconds, and t20 may be less than 1,000 milliseconds. FIG. 19 is a combination of FIG. 4 and FIG. 18. In FIG. 4, the yellow state is displayed during the period t2. As a general rule, the better the yellow state during this period, the better the red state that will ultimately be displayed. In one embodiment, the step of driving to the yellow state for a period of t2 may be eliminated, in which case an oscillating waveform is applied (see FIG. 20) before applying the waveform of FIG. 18. In one embodiment, the entire waveform of FIG. 19 is DC balanced. In another embodiment, the entire waveform of FIG. 20 is DC balanced. (Part B:)

[0101] FIG. 21 illustrates a drive waveform that can be used to replace the drive period t6 of FIG. 5. In the first step, a high positive drive voltage (V H1 , e.g., +15V) is applied to the pixel for a period of t21, followed by a waiting period of t22. After the waiting period, a negative drive voltage (-V), e.g., V H1 or V H2A first voltage (less than 50% of the first voltage) is applied to the pixel for a period of t23, followed by a second waiting period of t24. The waveform of FIG. 21 can also be repeated at least twice, preferably at least four times, and more preferably at least eight times. In the waveform of FIG. 21, the first waiting period t22 is very short, while the second waiting period t24 is longer. The duration of t21 is also shorter than the duration of t23. For example, t21 can be in the range of 20-200 milliseconds, t22 can be less than 100 milliseconds, t23 can be in the range of 100-200 milliseconds, and t24 can be less than 1,000 milliseconds. FIG. 22 is a combination of FIG. 5 and FIG. 21. In FIG. 5, the black state is displayed during the period t5. As a general rule, the better the black state during this period, the better the white state that will ultimately be displayed. In one embodiment, the step of driving to the black state for a period of t5 can be eliminated, in which case an oscillating waveform is applied (see FIG. 23) before applying the waveform of FIG. 21. In one embodiment, the entire waveform of FIG. 22 is DC balanced. In another embodiment, the entire waveform of FIG. 23 is DC balanced.

[0102] The fourth driving method illustrated in FIGS. 18-23 can be summarized as follows.

[0103] 1. A driving method for an electrophoretic display comprising a first surface on a viewing side, a second surface on a non-viewing side, and an electrophoretic fluid sandwiched between a common electrode and a layer of pixel electrodes, the fluid comprising a first type of particles, a second type of particles, a third type of particles, and a fourth type of particles, all of which are dispersed in a solvent or solvent mixture;

[0104] (a) The four types of pigment particles have different optical properties,

[0105] (b) the first type of particles carry a high positive charge and the second type of particles carry a high negative charge;

[0106] (c) a third type of particle carries a low positive charge and a fourth type of particle carries a low negative charge;

[0107] The method involves the following steps:

[0108] (i) applying a first drive voltage to a pixel in an electrophoretic display for a first time period to drive the pixel towards a color state of either the first type or the second type of particle on the viewing side;

[0109] (ii) applying no drive voltage to the pixel for a second period of time;

[0110] (iii) applying a second drive voltage to the pixel for a third period of time, the third period of time being longer than the first period of time, the second drive voltage having an opposite polarity to that of the first drive voltage, and the second drive voltage having a lower amplitude than that of the first drive voltage, to drive the pixel from the color state of the first type of particles towards the color state of the fourth type of particles, or from the color state of the second type of particles towards the color state of the third type of particles, on the viewing side;

[0111] (iv) applying no drive voltage to the pixel for a fourth time period;

[0112] Repeating steps (i)-(iv); Includes.

[0113] In one embodiment, the amplitude of the second driving voltage is less than 50% of the amplitude of the first driving voltage. In one embodiment, steps (i)-(iv) are repeated at least twice, preferably at least four times, and more preferably at least eight times. In one embodiment, the method further includes an oscillating waveform before step (i). In one embodiment, the method further includes a step of driving the pixel to the color state of the first or second type of particle after the oscillating waveform but prior to step (i). This driving method is not only particularly effective at low temperatures, but it can also provide the display device with better tolerance to structural variations caused during the manufacturing of the display device. Therefore, its usefulness is not limited to low-temperature driving. (Suffix pulse for lower charged particle states)

[0114] Various push-pull waveforms in the above drive schemes can be used to achieve good red and white states, e.g., lower charged particle optical states. Generally, these waveforms provide high brightness and are robust to environmental changes, such as temperature fluctuations and the spectrum of incident light. However, in some applications, such as digital signage, color variations in the final image are unacceptable to consumers. For example, the white waveform in FIG. 10 may leave a slight yellowish cast in the white state, which consumers find objectionable, especially when the display is adjacent to a bright or white bezel.

[0115] To some extent, the final state color of the lower charged particles can be improved by using a slightly increased magnitude of voltage (V'), for example, in FIG. 10. For the white state, a larger V' increases the L * This will boost V', making the final state appear whiter. However, an increase in V' may also increase the amount of yellow that remains, which can lead to b * This will result in an increase in

[0116] We have found that by adding a series of pulses after the push-pull waveform, * It has been found that it is possible to address lower charged particles using a voltage V" lower than the voltage V' that would achieve * Higher L without a complete increase in * The goal is to achieve a value (in the white state) of 0.01%. This final state is typically more appealing to consumers because it is more "purer" in color for the lower charged particles.

[0117] In particular, a series of suffix pulses ("wait-pull" pulses), generally illustrated in Figures 24 and 28, can be used to refine the final state of the lower-charged particle states by providing lower-charged color states with less contamination by the higher-charged particles. Again, these lower-charged particle states are described as red and white, respectively, but it is understood that the color states are arbitrary and the lower-charged particles can be any color, e.g., red, orange, yellow, green, blue, purple, brown, black, white, magenta, or cyan. Furthermore, the lower-charged particles can be reflective, absorbing, scattering, or partially transparent.

[0118] A red suffix pulse sequence is illustrated in Figure 24, which includes a drive impulse having a voltage -V' for duration t26, followed by a wait period of t25, after which the sequence is repeated. The duration of t25 is longer than the duration of t26. Typical ranges for the wait period t25 are 20 ms to 5,000 ms, while the drive period t26 is 20 ms to 3,000 ms. Such a waveform may be repeated at least twice (N' > 2), preferably at least four times, and more preferably at least eight times.

[0119] A corresponding white suffix pulse sequence is illustrated in FIG. 28 and includes a drive impulse having a voltage +V' for a period t28, followed by a wait period of t27, after which the sequence is repeated. The duration of t27 is longer than the duration of t28. Typical ranges for the wait period t27 are 20 ms to 5,000 ms, while the drive period t28 is 20 ms to 3,000 ms. Such a waveform may be repeated at least two times (N'≧2), preferably at least four times, and more preferably at least eight times. As previously mentioned, the amplitudes of the drive voltages -V' and V" are V H (For example, V H1 or V H2 ) can be less than 50% or less of the amplitude of V″. Note also that the amplitude of V′ can be the same as or different from the amplitude of V″.

[0120] The suffix pulse is combined with a push-pull waveform, for example, as previously described in Figures 4-23. The resulting red state waveforms are shown in Figures 25-27, which correspond to the addition of Figure 24 to Figures 8, 14, and 20, respectively, although the suffix pulse of Figure 24 can also be added to any of the red state waveforms described herein, including, but not limited to, Figures 7, 13, and 19. In the same manner, the white state suffix pulse of Figure 28 can be added to the white state waveforms of Figures 11, 17, and 23, respectively, resulting in the new white state waveforms of Figures 29-31. Again, the suffix pulse of Figure 28 can also be added to any of the white state waveforms described herein, including, but not limited to, Figures 10, 16, and 22. In one embodiment, the waveforms of Figures 24 and 28 are DC balanced. In another embodiment, the waveforms of Figures 24 and 28 are not DC-balanced, but are adjusted with preceding waveforms (e.g., Figures 4-23) so that the entire waveforms of Figures 25-27 and 29-31 are DC-balanced. It should be understood that V' and V" are somewhat arbitrary. Both V' and V" are less than VH1 or VH2, and are typically less than 50% of VH1 or VH2. V" is typically less than V'; however, V' and V" can be the same, depending on the final color condition (e.g., red vs. white) and end use.

[0121] Experimentally, it has been determined that new waveforms including suffix pulses can drive the final optical state of lower charged particles to more saturated color states with less contamination from higher charged particles. For example, when driving to a white state, the final state L * is the same as the push-pull waveform (shows the same brightness) when used alone, but the waveforms of Figures 11, 17, and 23, for example, have a smaller b *In other words, the same white brightness is achieved with less contaminating yellow pigment using a waveform with a suffix pulse. The same results were found for the red state achieved with the combination of push-pull and suffix waveforms in Figures 25-27. For the red state, the push-pull / suffix red waveform provides a higher L * On the other hand, the same b * Maintaining the suffix pulse indicates less black pigment in the resulting red state. In both cases, the improvement in the final color state using the improved waveform (i.e., including the suffix pulse) is visible to the naked eye as opposed to a waveform without the suffix pulse (e.g., a push-pull waveform alone). (Reverse push pulse for improved particle separation)

[0122] The suffix pulses described above with respect to FIGS. 24-31 improve the electro-optical properties of the lower charged particle optical states, but also reduce the overall electro-optical performance, particularly the L * The values ​​are observed to undergo a larger drift, with a smaller change in drive voltage when a suffix pulse is added to the waveform, e.g., compared to when the suffix pulse is not included. This is particularly evident when observing the white state when the white particles are lower charged and negative (see Figure 34, discussed below). The mechanism responsible for this drift is not entirely clear, but it is speculated that some of the desired low-charge particles are complexing with particles of the opposite charge. The amount of complexation may be related to the L for the white state, e.g., when many of the white particles are complexed with red or black particles. *is highly voltage-dependent, as V decreases. Drift can be a problem in instances where the drive voltage for low-charged pulses must be increased due to changes in the ambient operating environment. For example, in colder conditions, it may be necessary to increase the drive voltage (V' and V") of the lower-charged pulses. However, drift in the optical state can result in unexpected colors when dithering is used to achieve intermediate colors, such as a combination of white in one pixel and red in an adjacent pixel.

[0123] It has been found that the variability in the measured electro-optical state can be improved with the addition of a "reverse push" pulse between the string of address push-pull pulses and the suffix pulse. While not experimentally proven, it is speculated that this sharp pulse may help break up the complexes, thereby allowing the suffix pulse to produce clean, less charged particles at the viewing surface. The pulses are known as reverse push pulses because they are similar in shape to the initial push-pull drive pulse but have the opposite polarity. Such a reverse push pulse (e.g., for the red state) is shown in Figure 32 (width t30, drive voltage VH1) and is positioned between the end of the address push-pull waveform and the beginning of the suffix voltage. Width t30 is typically similar to t7, but it can be longer or shorter. The pulse height is the highest drive voltage of the same polarity as the pull pulse, i.e., t8 in Figure 32. The wait times (t29 and t31) between the final address pulse, the reverse push pulse, and the suffix pulse are somewhat arbitrary and can be adjusted (for example) to align the suffix pulse with other pulses on nearby pixels.

[0124] The corresponding reverse push pulse for other, less charged particles (e.g., for the white state) is shown in Figure 33 (width t33, drive voltage VH2). Again, width t33 is typically similar to t9, but can be longer or shorter. The pulse height is the highest drive voltage of the same polarity as the pull pulse, i.e., t10 in Figure 33. The wait times (t32 and t34) between the final address pulse, the reverse push pulse, and the suffix pulse are somewhat arbitrary. (Example)

[0125] A four-particle electrophoretic medium of the type described above with respect to Figures 2A-2F was prepared and placed in a microcell, for example, as described in U.S. Patent No. 6,930,818. The top electrode was an ITO-coated PET light-transmitting film, and the bottom electrode was a simple carbon electrode. The resulting display was attached to a variable voltage driver. Using the waveforms of Figures 29 and 33, L * and b * The changes in color were evaluated using an electro-optical measurement bench including a spectrophotometer. See "Optical measurement standards for reflective e-paper to predict colors displayed in ambient illumination environments," Color Research & Application, 43, 6, (907-921), (2018) (D. Hertel). All measurements were performed at room temperature.

[0126] Figure 34 shows the L of the white state test pattern on the display when V” ranges from -4V to -13V. * and b * As can be seen in Figure 34, the waveform of Figure 29 (original WF - dark line) shows a measurement of L over a "typical" V" voltage range (indicated by the dashed box). * and b * This results in significant variations in values. * and 67L *The difference between b and b is obvious even to an untrained observer. It is worth noting that the preferred white state is at a b of about 0.5. * value, and the waveform in Figure 29 shows this desired b * Very far from the result.

[0127] In contrast, by including a reverse push pulse, L * and b * The variation in b is remarkably stabilized over the typical operating range (dashed box). * The values ​​are in the approximate range of 0.5 over the full range, L * is 66-67, which is less noticeable to the viewer. Thus, the improved waveform of Figure 33 improves the consistency of the optical state over the typical voltage range used for lower voltage pulses.

[0128] While the present invention has been described with reference to specific embodiments thereof, it should be understood by those skilled in the art that various changes may be made and equivalents may be substituted without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular situation, material, composition of matter, process, process step or steps, to the objective and scope of the present invention. All such modifications are intended to be within the scope of the claims appended hereto.

Claims

[Claim 1] A driving method, etc., as described in the drawings.