Optical assembly, liquid crystal display panel, and display apparatus
11467450 · 2022-10-11
Assignee
- Beijing Boe Optoelectronics Technology Co., Ltd. (Beijing, CN)
- Beijing BOE Technology Development Co., Ltd. (Beijing, CN)
Inventors
- Xuan Zhong (Beijing, CN)
- Hongliang YUAN (Beijing, CN)
- Jiantao Liu (Beijing, CN)
- Jian Wang (Beijing, CN)
- Donghua ZHANG (Beijing, CN)
Cpc classification
G02F1/133531
PHYSICS
G02F1/13439
PHYSICS
G02F1/133638
PHYSICS
International classification
Abstract
An optical assembly, a liquid crystal display panel, and a display apparatus, the optical assembly including: a quarter-wave plate, a half-wave plate, and a linear polariser stacked in sequence; the direction of the absorption axis of the linear polariser, the direction of the slow axis of the half-wave plate and the quarter-wave plate are all parallel to the linear polariser; a first included angle between the direction of the absorption axis of the linear polariser and a first direction is 90°-100°; a second included angle between the direction of the slow axis of the half-wave plate and the first direction is 107°-114°; a third included angle between the direction of the slow axis of the quarter-wave plate and the first direction is 164°-176°.
Claims
1. A liquid crystal display panel, comprising: an optical assembly and a liquid crystal cell; wherein the optical assembly comprises: a quarter-wave plate, a half-wave plate, and a linear polarizer stacked successively, wherein an absorption axis direction of the linear polarizer, a slow axis direction of the half-wave plate, and a slow axis direction of the quarter-wave plate are all parallel to the linear polarizer; a first included angle between the absorption axis direction of the linear polarizer and a first direction is 90° to 100° , and is obtained by rotating from the first direction to the absorption axis direction of the linear polarizer counterclockwise in a plane parallel to the linear polarizer; wherein the first direction a horizontal direction; a second included angle between the slow axis direction of the half-wave plate and the first direction is 107° to 114° , and is obtained by rotating from the first direction to the slow axis direction of the half-wave plate counterclockwise in a plane parallel to the linear polarizer; and a third included angle between the slow axis direction of the quarter-wave plate and the first direction is 164° to 176° , and is obtained by rotating from the first direction to the slow axis direction of the quarter-wave plate counterclockwise in a plane parallel to the linear polarizer; wherein the liquid crystal cell is on a side of the quarter-wave plate away from the half-wave plate; wherein the liquid crystal cell comprises: a liquid crystal layer containing nematic liquid crystal molecules, wherein an included angle between an initial orientation of the nematic liquid crystal molecules and the slow axis direction of the quarter-wave plate is 0° to 3°.
2. The liquid crystal display panel according to claim 1, wherein a retardation of the liquid crystal layer under a wavelength of 550 nm is 143 nm to 190 nm.
3. The liquid crystal display panel according to claim 2, wherein the retardation of the liquid crystal layer under the wavelength of 550 nm is 170 nm.
4. The liquid crystal display panel according to claim 1, wherein the liquid crystal cell comprises: an array substrate, and a liquid crystal layer, wherein the array substrate is located on a side of the liquid crystal layer away from the optical assembly; and the array substrate comprises a base substrate and a plurality of reflective pixel electrodes on the base substrate, the plurality of reflective pixel electrodes being located between the base substrate and the liquid crystal layer.
5. The liquid crystal display panel according to claim 4, wherein the array substrate further comprises: a resin layer of a concave-convex structure located between the base substrate and the plurality of reflective pixel electrode, wherein the plurality of reflective pixel electrodes structurally conform to the resin layer of the concave-convex structure.
6. The liquid crystal display panel according to claim 5, wherein a slope of the concave-convex structure is 5° to 15°.
7. The liquid crystal display panel according to claim 5, wherein the liquid crystal display panel is a reflective electronically-controlled birefringence liquid crystal display panel.
8. A display apparatus, comprising the liquid crystal display panel of claim 1.
9. The liquid crystal display panel according to claim 1, wherein the first included angle between the absorption axis direction of the linear polarizer and the first direction is 95°; the second included angle between the slow axis direction of the half-wave plate and the first direction is 110°; and the third included angle between the slow axis direction of the quarter-wave plate and the first direction is 170°.
10. The liquid crystal display panel according to claim 1, wherein a retardation of the half-wave plate under a wavelength of 550 nm is 259 nm to 284 nm; and/or a retardation of the quarter-wave plate under a wavelength of 550 nm is 100 nm to 110 nm.
11. The liquid crystal display panel according to claim 10, wherein the retardation of the half-wave plate under the wavelength of 550 nm is 267 nm; and/or the retardation of the quarter-wave plate under the wavelength of 550 nm is 110 nm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(18) To make the objectives, technical solutions, and advantages of embodiments of the disclosure clearer, the technical solutions in the embodiments of the disclosure are described below clearly and completely with reference to the accompanying drawings in the embodiments of the disclosure. Apparently, the described embodiments are merely some but not all of the embodiments of the disclosure. All other embodiments obtained by a person of ordinary skill in the art based on the embodiments of the disclosure without creative efforts shall fall within the protection scope of the disclosure.
(19) Unless otherwise defined, the technical terms or scientific terms used herein should have general meanings understood by people of ordinary skill in the art of the disclosure. The words “firs”, “second” and the like used in the specification and claims of the disclosure do not indicate any order, quantity or importance, but are merely used to distinguish different components. The word “comprise” or “include” or the like means that an element or item appearing before such a word covers listed elements or items appearing after the word and equivalents thereof, and does not exclude other elements or items. The words “inside”, “outside”, “upper”, “lower” and the like are only used to indicate a relative positional relationship. When the absolute position of a described object changes, its relative positional relationship may also change accordingly.
(20) Some implementations of an optical assembly, a liquid crystal display panel, and a display apparatus provided in embodiments of the disclosure are described in detail below with reference to the accompanying drawings.
(21) An optical assembly 100 provided in an embodiment of the disclosure, as shown in
(22) As shown in
(23) a second included angle β between a slow axis direction 1021 of the half-wave plate 102 and the first direction X is 107° to 114°; and
(24) a third included angle γ between a slow axis direction 1011 of the quarter-wave plate 101 and the first direction X is 164° to 176°.
(25) The absorption axis direction 1031 of the linear polarizer, the slow axis direction 1021 of the half-wave plate, the slow axis direction 1011 of the quarter-wave plate, and the first direction X are all parallel to the linear polarizer 103, and are all perpendicular to a thickness direction of the linear polarizer 103.
(26) As used herein, the first included angle α is obtained by rotating from the first direction X to the absorption axis direction 1031 of the linear polarizer 103 counterclockwise in a plane parallel to the linear polarizer; the second included angle β is obtained by rotating from the first direction X to the slow axis direction 1021 of the half-wave plate 102 counterclockwise in a plane parallel to the linear polarizer; and the third included angle γ is obtained by rotating from the first direction X to the slow axis direction 1011 of the quarter-wave plate 101 counterclockwise in a plane parallel to the linear polarizer. In addition, included angles between the first direction X and other directions mentioned herein are also obtained by rotating from the first direction X to the other directions counterclockwise in planes parallel to the linear polarizer.
(27) In some embodiments, the first direction X is the left-right extending direction of the plane shown in
(28) It should be understood that, under the condition that the optical assembly 100 provided in some embodiments of the disclosure is placed on a horizontal plane and the quarter-wave plate 101 is on the horizontal plane, the first direction is a left-right extending direction of the horizontal direction. In the following embodiments, that the first direction is a left-right extending direction of the horizontal direction is used as an example for description.
(29) In the optical assembly 100 provided in some embodiments of the disclosure, after passing through the linear polarizer 103, incident light is converted to first linearly polarized light, wherein the first included angle α between the absorption axis direction 1031 of the linear polarizer 103 and the first direction X is 90° to 100°, and an included angle between the polarization direction of the first linearly polarized light and the first direction X is 0° to 10′; after passing through the half-wave plate 102, the first linearly polarized light is converted to second linearly polarized light, wherein the second included angle β between the slow axis direction of the half-wave plate 102 and the first direction is 107° to 114°, and an included angle between the polarization direction of the second linearly polarized light and the first direction X is 34° to 48′; and the third included angle γ between the slow axis direction 1011 of the quarter-wave plate 101 and the first direction X is 164° to 176°. It can be learned that, an included angle between the polarization direction of the second linearly polarized light and the slow axis direction 1011 of the quarter-wave plate 101 is about 45°, such that after passing through the quarter-wave plate 101, the second linearly polarized light can be converted to circularly polarized light. Based on similar principles, circularly polarized light of the same rotation direction can be converted to linearly polarized light whose polarization direction is approximately parallel to the transmission axis of the linear polarizer 103, thereby opening an optical path. Therefore, due to the cooperation of the half-wave plate and the quarter-wave plate, the linear-circular conversion rate of the incident light can be improved effectively, thereby improving the luminance and contrast of a display apparatus including the optical assembly.
(30) Optionally, to improve the linear-circular conversion rate of incident light, in the above-mentioned optical assembly 100 provided in the embodiment of the disclosure, the first included angle α between the absorption axis direction 1031 of the linear polarizer 103 and first direction X is 95®;
(31) the second included angle β between the slow axis direction 1021 of the half-wave plate 102 and the first direction X is 110°; and
(32) the third included angle γ between the slow axis direction 1011 of the quarter-wave plate 101 and the first direction X is 170°.
(33) In related technologies, both the quarter-wave plate 101 and the half-wave plate 102 have reverse wavelength dispersion characteristics in the visible light range, such that the quarter-wave plate and the half-wave plate cannot provide ideal phase compensation for optical equalization in different wavebands in visible light. Therefore, during mutual conversion between linearly polarized light and circularly polarized light, conversion efficiency of visible light varies with wavebands, resulting in low luminance (low reflectivity), low contrast, color deviation (yellowish and/or greenish), and other problems of an all-reflection LCD screen. Based on this, to improve the phase compensation effects of light of different wavebands in the visible light range, in the optical assembly 100 provided in the embodiment of the disclosure, the retardation of the half-wave plate 102 under the wavelength of 550 nm is 259 nm to 284 nm; and
(34) the retardation of the quarter-wave plate 101 under the wavelength of 550 nm is 100 nm to 110 nm.
(35) Optionally, to improve the phase compensation effects of light of different wavebands in the visible light range, in the above-mentioned optical assembly 100 provided in the embodiment of the disclosure, the retardation of the half-wave plate 102 under the wavelength of 550 nm is 267 nm for example, and
(36) the retardation of the quarter-wave plate 101 under the wavelength of 550 nm is 110 nm.
(37) Optionally, in the above-mentioned optical assembly provided in some embodiments of the disclosure, the relationship between the thickness do of the half-wave plate 102 and its retardation R.sub.0 under the wavelength of 550 nm is:
R.sub.0=(n.sub.x0−n.sub.y0)*d.sub.0
(38) where n.sub.x0 and n.sub.y0 are the refractive indexes of light of wavelength of 550 nm in two different directions (for example, the slow axis direction and the fast axis direction) on the half-wave plate 102.
(39) Optionally, in the above-mentioned optical assembly provided in the embodiment of the disclosure, the relationship between the thickness d.sub.1 of the quarter-wave plate 101 and its retardation R.sub.1 under the wavelength of 550 nm is: R.sub.1=(n.sub.x1−n.sub.y1)*d.sub.1
(40) where n.sub.x1 and n.sub.y1 are refractive indexes of light of the wavelength of 550 nm in two different directions (for example, the slow axis and the fast axis) of the quarter-wave plate 101.
(41) It should be noted that, in the above-mentioned optical assembly provided in some embodiments of the disclosure, as shown in
(42) Based on the same inventive concept, an embodiment of the disclosure provides a liquid crystal display panel. As shown in
(43) Optionally, in the above-mentioned liquid crystal display panel provided in some embodiments of the disclosure, as shown in
(44) Optionally, in the above-mentioned liquid crystal display panel provided in some embodiments of the disclosure, as shown in
(45) In related technologies, the liquid crystal layer 201 has a reverse wavelength dispersion effect in the visible light range, so that the liquid crystal layer 201 cannot implement ideal phase compensation on light of different wavebands in the visible light range. Based on this, to improve the phase compensation effect of light of different wavebands in the visible light range, in the above-mentioned liquid crystal display panel provided in the embodiment of the disclosure, the retardation of the liquid crystal layer 201 under the wavelength of 550 nm is 143 nm to 190 nm.
(46) Optionally, to improve the phase compensation effect of light of different wavebands in the visible light range, in the above-mentioned liquid crystal display panel provided in the embodiment of the disclosure, the retardation of the liquid crystal layer 201 under the wavelength of 550 nm is 170 nm.
(47) Optionally, in the above-mentioned optical assembly provided in some embodiments of the disclosure, the relationship between the thickness d.sub.2 of the liquid crystal layer 201 and the retardation R2 of the liquid crystal layer 201 under the wavelength of 550 nm is:
R.sub.2=(n.sub.x2−n.sub.y2)*d.sub.2
where n.sub.x2 and n.sub.y2 are refractive indexes of light of wavelength of 550 nm in two different directions (for example, o-light direction and e-light direction) of the liquid crystal layer 201.
(48) To better understand the technical solution of the liquid crystal display panel provided in embodiments of the disclosure, parameter setting solutions of the quarter-wave plate 101, half-wave plate 102, and nematic liquid crystal molecules 2011 are described below in detail.
(49) Based on the basic principle of polarization, after passing through the half-wave plate 102, linearly polarized light is still linearly polarized light, but the polarization direction is rotated by 2Ψ, where Ψ is an included angle between the linearly polarized light and the slow axis direction 1021 of the half-wave plate 102. When passing through the quarter-wave plate 101, if an included angle between the polarization direction of the linearly polarized light and the slow axis direction 1011 of the quarter-wave plate 101 is 45°, the linearly polarized light can be converted to circularly polarized light. Combinations of angles between the slow axes of the half-wave plate 102 and the quarter-wave plate 101 under each condition in Table 1 are designed based on the foregoing two basic principles. The results are shown in
(50) Optionally, 212 in Table 1 indicates the second included angle β between the slow axis direction 1021 of the half-wave plate 102 and the first direction λ; λ/4 indicates the third included angle γ between the slow axis direction 1021 of the quarter-wave plate 101 and the first direction X; and CR indicates the contrast of the liquid crystal display panel. Table 1 is designed under such a condition: the first included angle α between the absorption axis 1301 of the linear polarizer 103 and the first direction X (a direction perpendicular to the thickness direction of the polarizer 103) is 95°, the retardation of the half-wave plate 102 under the wavelength of 550 nm is 267 nm, the retardation of the quarter-wave plate 101 under the wavelength of 550 nm is 108 nm, the initial orientation of the nematic liquid crystal molecules 2011 is the same as the slow axis direction of the quarter-wave plate 101, and the retardation of the liquid crystal layer 201 containing the nematic liquid crystal molecules 2011 under the wavelength of 550 nm is 153 nm.
(51) TABLE-US-00001 TABLE 1 λ/2 (°) λ/4 (°) Reflectivity CR 0 −50 31.9% 109 10 −30 30.2% 30 20 −10 28.5% 14 30 10 26.9% 9 40 30 25.9% 7 50 50 25.5% 6 60 70 25.9% 7 70 90 26.9% 9 80 110 28.5% 14 90 130 30.2% 30 100 150 31.9% 109 102 154 32.2% 134 104 158 32.4% 224 106 162 32.7% 326 107 164 32.8% 391 108 166 32.9% 455 110 170 33.1% 527 112 174 33.3% 501 113 176 33.4% 452 114 178 33.5% 395 120 190 33.9% 174 130 210 34.2% 79 140 230 34.3% 63 150 250 34.2% 79
(52) With reference to Table 1 and
(53) Further, the retardation of the half-wave plate 102 is designed, as shown in Table 2 and
(54) With reference to Table 2 and
(55) TABLE-US-00002 TABLE 2 λ/2 retardation (nm) Reflectivity CR 203 33.8% 12 211 34.1% 17 219 34.3% 26 227 34.4% 43 235 34.4% 83 243 34.3% 193 251 34.1% 359 259 33.7% 469 267 33.1% 527 275 32.5% 517 284 31.7% 408 292 30.7% 293
(56) Further, the retardation of the quarter-wave plate 101 is designed, as shown in Table 3 and
(57) With reference to Table 3 and
(58) TABLE-US-00003 TABLE 3 λ/4 retardation (nm) Reflectivity CR 80 26.3% 377 85 27.9% 400 90 29.3% 476 100 31.8% 501 110 33.5% 539 120 34.4% 278 130 34.4% 38 140 33.6% 13 150 32.0% 7 160 29.7% 4
(59) Based on the display principle of a normal-white reflective electronically-controlled birefringence liquid crystal display panel, when the liquid crystal cell 200 is powered off, the nematic liquid crystal molecules 2011 are arranged in an initial orientation. In this case, refractive indexes of the liquid crystal layer 201 containing the nematic liquid crystal molecules 2011 in two directions in the liquid crystal display panel are different, so the liquid crystal cell 200 has a birefringence effect, and can be used together with the quarter-wave plate 101 to perform circular polarization-linear polarization conversion on incident light and/or reflected light, thereby opening an optical path. When the liquid crystal cell 200 is powered on, the nematic liquid crystal molecules 2011 are erect. In this case, refractive indexes of the nematic liquid crystal molecules 2011 in two directions in the liquid crystal display panel are the same, so the liquid crystal cell 200 does not have the birefringence effect, and cannot perform circular polarization-linear polarization conversion on incident light and/or reflected light, thereby closing an optical path. Therefore, the initial orientation of the nematic liquid crystal molecules 2011 is tightly related to the slow axis direction of the quarter-wave plate 101. Based on this, difference between the initial orientation of the nematic liquid crystal molecules 2011 and the slow axis direction 1011 of the quarter-wave plate 101 is designed, as shown in Table 4 and
(60) Optionally, LC initial orientation angle in Table 4 indicates an included angle between the initial orientation of the nematic liquid crystal molecules 2011 and the first direction X, CR indicates the contrast of the liquid crystal display panel. Table 4 is designed under such a condition: the first included angle α between the absorption axis direction 1031 of the linear polarizer 103 and the first direction X (a direction perpendicular to the thickness direction of the polarizer 103) is 95°, the second included angle β between the slow axis direction 1021 of the half-wave plate 102 and the first direction is 110°, the retardation of the half-wave plate 102 under the wavelength of 550 nm is 267 nm, the third included angle γ between the slow axis direction 1011 of the quarter-wave plate 101 and the first direction X is 170°, the retardation of the quarter-wave plate 101 under the wavelength of 550 nm is 108 nm, and the retardation of the nematic liquid crystal molecules 2011 under the wavelength of 550 nm is 153 nm.
(61) TABLE-US-00004 TABLE 4 LC initial orientation angle (°) Reflectivity CR 0 33.5% 62 20 34.6% 12 40 33.7% 6 60 30.7% 4 80 29.1% 3 100 31.0% 4 120 33.9% 6 140 34.4% 14 160 33.3% 95 164 33.2% 232 165 33.2% 301 166 33.1% 390 167 33.1% 490 168 33.1% 570 169 33.1% 586 170 33.1% 527 171 33.1% 505 172 33.2% 492 173 33.2% 482 174 33.2% 200 175 33.2% 157 176 33.3% 126
(62) With reference to Table 4 and
(63) Further, the retardation of the liquid crystal layer 201 containing the nematic liquid crystal molecules 2011 is designed, as shown in Table 5 and
(64) TABLE-US-00005 TABLE 5 LC retardation (nm) Reflectivity CR 109 21.7% 348 115 24.2% 385 122 26.5% 419 129 28.6% 451 136 30.4% 481 143 31.9% 507 149 33.1% 527 156 34.0% 544 163 34.4% 554 170 34.5% 556 177 34.1% 548 183 33.4% 540 190 32.4% 521 197 30.8% 499 204 29.5% 472
(65) With reference to Table 5 and
(66) Optionally, in the above-mentioned liquid crystal display panel provided in some embodiments of the disclosure, the liquid crystal cell 200 includes an array substrate 210, as shown in
(67) Complying with the structure of the resin layer 206, the reflective pixel electrodes 205 have the same concave-convex structures as that of the resin layer 206, so that diffuse reflection of incident light occurs on the reflective pixel electrodes 205, thereby enlarging the viewing angle range.
(68) At present, the evaluation method of the reflective liquid crystal display panel is mainly to evaluate reflectivity and contrast of the reflective liquid crystal display panel under a main viewing angle (the angle between the main viewing angle and direction a is −5° to +5°) in such a manner: incident light enters the reflective liquid crystal display panel at an angle of 30°, as shown in
(69) According to the law of refraction, the following formula is obtained:
(70)
(71) where θ.sub.1 indicates the incidence angle of light and is 30°; θ.sub.2 indicates the refraction of light in the liquid crystal display panel; n.sub.cell indicates the refractive index of the liquid crystal display panel and is about 1.5; and n.sub.air indicates the refractive index of air and is 1. Therefore, the refraction angle θ.sub.2 is arcsin (⅓).
(72) In addition, according to the law of reflection, the following formula is obtained:
(73)
(74) where θ.sub.3 indicates the incidence angle of light on the concave-convex structure, θ.sub.4 indicates the reflection angle of light on the concave-convex structure, and θ.sub.5 indicates the slope angle of light on the concave-convex structure.
(75) Based on this, in the above-mentioned liquid crystal display panel provided in some embodiments of the disclosure, the slope of the concave-convex structure can be set to 5° to 15°, thereby improving the luminance of the liquid crystal display panel from the main viewing angle, and enlarging the viewing angle range.
(76) Optionally, the above-mentioned liquid crystal display panel provided in the embodiment of the disclosure structurally includes a second base substrate 204, a transistor layer, a resin layer 206 of a concave-convex structure, a reflective pixel electrode 205, a second orientation layer 203, a liquid crystal layer 201 containing nematic liquid crystal molecules 2011, a first orientation layer 202, a common electrode layer 208, a first base substrate 207, a quarter-wave plate 101, a half-wave plate 102, and a linear polarizer 103 from the bottom up in sequence. In addition, the liquid crystal display panel further includes components that are known to people skilled in the art, such as light filters. This is not limited therein.
(77) Optionally, the resin layer of the concave-convex structure can be prepared in the following manner: first, coat a layer of resin on an array substrate in a spin-coating method for a certain thickness; then place a light shield having concave-convex (bump) patterns on the resin; and perform exposure, developing, and etching. Moreover, reflective pixel electrodes 205 of concave-convex structures can be formed on the resin layer through deposition of reflective metal.
(78) The working principle of the above-mentioned liquid crystal display panel provided in some embodiments of the disclosure is as follows.
(79) As shown in
(80) As shown in
(81) The following uses a set of comparative experiments to show that the above-mentioned liquid crystal display panel provided in the embodiment of the disclosure has relatively high linear polarization-circular polarization conversion rate, reflectivity, and contrast. In comparison embodiments provided in some embodiments of the disclosure, structures of the liquid crystal display panels are similar, as shown in
(82) as shown in
(83) In a first comparison embodiment, as shown in
(84) In a second comparison embodiment, as shown in
(85) TABLE-US-00006 TABLE 6 First comparison Second comparison Item Embodiment embodiment embodiment Reflectivity 30.0% 16.6% 23.5% CR 28.9 25.8 4.2
(86) Table 6 shows test data of comparison groups provided in the embodiment of the disclosure. It can be learned that, the liquid crystal display panel in the embodiment of the disclosure has better reflectivity and contrast than those in the first comparison embodiment and the second comparison embodiment.
(87) Based on the same utility model concept, an embodiment of the disclosure provides a display apparatus, including the above-mentioned liquid crystal display panel. The display apparatus may be any product or component with display functions, such as a mobile phone, a tablet computer, a TV, a monitor, a notebook computer, a digital photo frame, a navigator, a smart watch, a fitness wristband, and a personal digital assistant. The problem-solving principle of the display apparatus is similar to that of the above-mentioned liquid crystal display panel. Therefore, for implementation of the display apparatus, refer to that of the above-mentioned liquid crystal display panel. Repetition is no longer described.
(88) Some embodiments of the disclosure provide the optical assembly, the liquid crystal display panel, and the display apparatus. The optical assembly includes a quarter-wave plate, a half-wave plate, and a linear polarizer stacked successively; an included angle between the absorption axis direction of the linear polarizer and a first direction is 90° to 100°; an included angle between the slow axis direction of the half-wave plate and the first direction is 107° to 114°; an included angle between the slow axis direction of the quarter-wave plate and the first direction is 164° to 176°; and the first direction is perpendicular to the thickness direction of the linear polarizer. After passing through the linear polarizer, incident light is converted to first linearly polarized light, wherein an included angle between the absorption axis direction of the linear polarizer and the first direction is 90° to 100°, an included angle between the polarization direction of the first linearly polarized light and the first direction is 0° to 10°. After passing through the half-wave plate, the first linearly polarized light is converted to second linearly polarized light, wherein an included angle between the slow axis direction of the half-wave plate and the first direction is 107° to 114°, and an included angle between the polarization direction of the second linearly polarized light and the first direction is 34° to 48°. The included angle between the slow axis direction of the quarter-wave plate and the first direction is 164° to 176°. In this case, an included angle between the polarization direction of the second linearly polarized light and the slow axis direction of the quarter-wave plate is about 45°, so that the second linearly polarized light can be converted into circularly polarized light after passing through the quarter-wave plate. Based on similar principles, after passing through the quarter-wave plate 101 and the half-wave plate 102 sequentially, circularly polarized light is converted to linearly polarized light whose polarization direction is approximately parallel to the transmission axis of the linear polarizer 103, thereby opening an optical path. Therefore, due to the cooperation of the half-wave plate and the quarter-wave plate described above, the linear-circular conversion rate of the incident light can be improved effectively, thereby improving the luminance and contrast of a display apparatus including the optical assembly. Obviously, a person skilled in the art can make various modifications and variations to the disclosure without departing from the spirit and scope of the disclosure. In this case, the disclosure is intended to cover these modifications and variations provided that they fall within the scope of protection defined by the following claims and their equivalent technologies.