ELECTRONIC DEVICE
20240379038 ยท 2024-11-14
Inventors
- Jen-I YANG (Miao-Li County, TW)
- Kuo-Jung WU (Miao-Li County, TW)
- Po-Yang CHEN (Miao-Li County, TW)
- I-An YAO (Miao-Li County, TW)
Cpc classification
G09G2320/0673
PHYSICS
G09G3/3629
PHYSICS
G09G3/344
PHYSICS
G09G3/2096
PHYSICS
International classification
G09G3/20
PHYSICS
Abstract
A display device includes a display panel, an optical structure layer, a driving unit, a timing control unit and a light sensing unit. The optical structure layer is disposed on the display panel. The driving unit is electrically connected to the display panel. The timing control unit is electrically connected to the driving unit. The light sensing unit is electrically connected to the timing control unit to provide a light sensing result to the timing control unit. The timing control unit is used to receive a first signal and provides a second signal and a third signal to the driving unit according to the light sensing result, and the driving unit drives the display panel according to the second signal and the third signal.
Claims
1. An electronic device, comprising: a display panel; an optical structure layer disposed on the display panel; a driving unit electrically connected to the display panel; a timing control unit electrically connected to the driving unit; and a light sensing unit electrically connected to the timing control unit for providing a light sensing result to the timing control unit, wherein the timing control unit is used to receive a first signal, and provides a second signal and a third signal to the driving unit according to the light sensing result, and the driving unit drives the display panel according to the second signal and the third signal.
2. The electronic device as claimed in claim 1, wherein the optical structure layer includes an anti-glare layer and an anti-reflection layer.
3. The electronic device as claimed in claim 2, wherein the anti-glare layer is disposed between the anti-reflection layer and the display panel.
4. The electronic device as claimed in claim 1, wherein the optical structure layer further includes a protective layer disposed between the display panel and the anti-glare layer.
5. The electronic device as claimed in claim 1, wherein a gloss of the optical structure layer is between 4 GU and 35 GU.
6. The electronic device as claimed in claim 1, wherein the timing control unit selects one gamma conversion data from a plurality of gamma conversion data based on the light sensing result.
7. The electronic device as claimed in claim 6, wherein the second signal is converted from the first signal based on the gamma conversion data.
8. The electronic device as claimed in claim 6, wherein the first signal and the second signal are substantially the same, and the third signal includes the gamma conversion data.
9. The electronic device as claimed in claim 1, further comprising a backlight source electrically connected to the timing control unit.
10. The electronic device as claimed in claim 9, wherein the timing control unit provides a fourth signal according to the light sensing result, and the backlight source adjusts backlight brightness according to the fourth signal.
11. The electronic device as claimed in claim 1, wherein the display panel includes a bottom layer, a light emitting layer disposed on the bottom layer, and a dimming layer disposed on the light emitting layer, in which the light emitting layer includes a plurality of organic light emitting diodes.
12. The electronic device as claimed in claim 1, wherein the display panel includes a bottom layer, a light emitting layer disposed on the bottom layer, and a dimming layer disposed on the light emitting layer, in which the light emitting layer includes a plurality of mini light emitting diodes or micro light emitting diodes.
13. The electronic device as claimed in claim 1, wherein the display panel 20 includes a bottom layer, a cholesteric liquid crystal layer disposed on the bottom layer, and a light guide unit disposed on the cholesteric liquid crystal layer, in which the light emitting layer includes a plurality of mini light emitting diodes or micro light emitting diodes.
14. The electronic device as claimed in claim 13, wherein the bottom layer includes a light absorbing layer, and the cholesteric liquid crystal layer includes a first cholesteric liquid crystal sub-layer, a second cholesteric liquid crystal sub-layer and a third cholesteric liquid crystal sub-layer respectively including liquid crystal cells corresponding to different emission wavelength ranges.
15. The electronic device as claimed in claim 1, wherein the display panel includes a bottom layer, an electronic ink layer disposed on the bottom layer, a dimming layer disposed on the electronic ink layer, and a light guide unit disposed on the dimming layer.
16. The electronic device as claimed in claim 1, wherein the display panel includes a bottom layer, a display medium layer disposed on the bottom layer, and a dimming layer disposed on the display medium layer.
17. The electronic device as claimed in claim 16, wherein the bottom layer includes a polarizer and a thin film transistor array substrate, and the dimming layer includes a color filter and a polarizer.
18. The electronic device as claimed in claim 1, wherein a transmittance of the optical structure layer is between 70% and 95%.
19. The electronic device as claimed in claim 1, wherein a reflectivity of the optical structure layer is smaller than or equal to 6%.
20. The electronic device as claimed in claim 1, wherein a reflectivity of specular component included reflection light of the optical structure layer is between 3% and 6%.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION OF EMBODIMENT
[0025] The following provides different embodiments of the present disclosure. These embodiments are used to illustrate the technical content of the present disclosure, rather than to limit the claims of the present disclosure. A feature of one embodiment can be applied to other embodiments through suitable modification, substitution, combination, and separation.
[0026] It should be noted that in this specification, when a component is described as comprising, having, or including an element, it means that the component may include one or more elements, and the component may also include other elements, without implying that the component consists of only one of those elements, unless otherwise stated.
[0027] Moreover, in this specification, ordinal numbers such as first or second are only used to distinguish multiple elements with the same name, and do not mean that there is essentially a hierarchy, level, execution order, or manufacturing sequence, unless otherwise stated. The serial numbers of components in the specification may be different from those in the claim. For example, a second element in the specification may be a first element in the claim.
[0028] In the specification and claims, unless otherwise specified, the feature A or or and/or feature B means that feature A exists alone, feature B exists alone, or feature A and feature B exist at the same time. The feature A and feature B refers to the simultaneous existence of feature A and feature B.
[0029] In addition, in this specification, the terms top, upper, bottom, front, back, or middle, as well as the terms above, over, on top, under, below or between are used to describe the relative position between multiple elements, and the described relative position may be interpreted to include their translation, rotation or reflection.
[0030] In addition, the positions mentioned in the specification and claims, such as over, on, above, under or below may mean that one element is in direct contact with other elements, or may mean that one element is in indirect contact with other elements.
[0031] In addition, terms described in the specification and claims, such as connected, mean that one element not only can be directly connected to other elements, but also can be indirectly connected to other elements. On the other hand, terms such as electrically connected and coupled described in the specification and claims mean that one component not only can be directly electrically connected to other components, but also can be indirectly electrically connected to other components.
[0032] In this disclosure, the term almost, about, approximately or substantially usually means within 20%, 10%, 5%, 3%, 2%, 1% or 0.5% of a given value or range. The quantity the given value is an approximate quantity, which means that the meaning of almost, about, approximately or substantially may still be implied in the absence of a specific description of almost, about, approximately or substantially. In addition, the terms range is a first value to a second value and range is between a first value and a second value mean that the range includes the first value, the second value and other values between the first value and the second value.
[0033] Unless otherwise defined, all terms (including technical and scientific terms) used here have the same meanings as commonly understood by those skilled in the art of the present disclosure. It is understandable that these terms, such as those defined in commonly used dictionaries, should be interpreted as having a meaning consistent with the relevant technology and the background or context of the present disclosure, rather than in an idealized or excessively formal interpretation.
[0034] In the present disclosure, the electronic device may include a backlight device, a display device, an antenna device, a sensing device or a tiled device, but not limited thereto. The electronic device may be a bendable or flexible electronic device. The display device may be a non-self-luminous display device or a self-luminous display device. The antenna device may be a liquid crystal type antenna device or a non-liquid crystal type antenna device. The sensing device may be a sensing device that senses capacitance, light, heat energy or ultrasonic waves, but not limited thereto. The backlight device may include electronic components. The electronic components may include passive components and active components, such as capacitors, resistors, inductors, diodes, transistors, etc. The diodes may include light emitting diodes or photodiodes. The light emitting diode may include, for example, an organic light emitting diode (OLED), a mini light emitting diode (mini LED), a micro light emitting diode (micro LED) or a quantum dot light emitting diode (QD LED), but not limited thereto. The tiled device may be, for example, a display tiled device or an antenna tiled device, but not limited thereto. It should be noted that the electronic device may be any combination of the above, but not limited thereto. In the following description, the electronic device is exemplified by the display device.
[0035] Please refer to
[0036] As shown in
[0037] Regarding the display panel 20, in one embodiment, when the display panel 20 is a self-luminous type, the display panel 20 may include a light emitting unit (not shown), where the type of the light emitting unit may include an organic light emitting diode (OLED), sub-millimeter light emitting diode (mini LED), micro light emitting diode (micro LED) or quantum dot light emitting diode (QD LED), while it is not limited thereto. When the display panel 20 is a non-self-luminous display panel, the display panel 20 may adopt, for example, a liquid crystal display, electro-wetting display technology or electronic paper display technology, while it is not limited thereto. The detailed structure of the display panel 20 will be described in subsequent paragraphs.
[0038] Regarding the optical structure layer 30. In one embodiment, the optical structure layer 30 may include an anti-glare layer 32 and an anti-reflection layer 33, wherein the anti-glare layer 32 may be located between the anti-reflection layer 33 and the display panel 20. By adjusting the appropriate parameters of the anti-glare layer 32 and the anti-reflection layer 33, the specular reflection light and scattered light of the electronic device 100 may be significantly reduced. The detailed structure and parameter adjustment of the anti-glare layer 32 and the anti-reflection layer 33 will be described in subsequent paragraphs. In addition, in one embodiment, the optical structure layer 30 may also include a protective layer 31, and the protective layer 31 may be disposed between the display panel 20 and the anti-glare layer 32, but it is not limited thereto. In one embodiment, the protective layer 31 may be, for example, a glass cover or a protective film, but it is not limited thereto.
[0039] Regarding the driving unit 40, in one embodiment, the driving unit 40 may be, for example, a gate driver, a drain driver or other types of drivers of the display panel 20, or an integration of the above types of drivers, while it is not limited thereto. In one embodiment, the driving unit 40 may be implemented through a chip, while it is not limited thereto.
[0040] Regarding the timing control unit 50, in one embodiment, the timing control element 50 may be used to provide relevant control signals of the display panel 20 to the driving unit 40, such as but not limited to clock signals, image data or other types of control signals, and the driving unit 40 may be controlled according to the control signals to drive the display panel 20. In one embodiment, the timing control unit 50 may be, for example, a timing controller, which may be implemented through a chip, but it is not limited thereto. In addition, in one embodiment, the timing control unit 50 may include a memory unit 51, such as but not limited to a memory. The memory unit 51 may be used to store data, such as data entering the timing controller 50 or built-in data of the timing controller 50, while it is not limited thereto.
[0041] Furthermore, in one embodiment, the electronic device 100 may be electrically connected to a signal source end 200. The signal source end 200 may transmit an original control signal S0 and a first signal S1 to the timing control unit 50, wherein the first signal may include an original signal used for the image signal of the display panel 20, and the original control signal S0 may include the original signal of the clock signal for the display panel 20, the synchronization signal and/or other control signals. The timing control unit 50 may convert the first signal S1 and the original control signal S0 into a signal type that may be recognized by the driving unit 40, and transmit a second signal S2 and a third signal S3 to the driving unit 40, wherein the second signal S2 may include, for example, an image signal that may be recognized by the driving unit 40, and the third signal S3 may include, for example, a clock signal, a synchronization signal or other control signals that can be recognized by the driving unit 40, while it is not limited thereto.
[0042] In addition, in one embodiment, the signal transmission interface applicable to the first signal S1 may be, for example, but not limited to, MIPI (Mobile Industry Processor Interface), the signal transmission interface applicable to the original control signal S0 may be, for example, but not limited to, I2C (Inter-Integrated Circuit), the signal transmission interface applicable to the second signal S2 may be, for example, but not limited to MIPI or TTL (Transistor-Transistor Logic), and the signal transmission interface applicable to the third signal S3 may be of a type applicable to various driving units 40.
[0043] Regarding the light sensing unit, in one embodiment, the light sensing unit 60 may be, for example, an ambient light sensor, which may be used to sense the intensity of ambient light and output the light sensing result S5, while it is not limited thereto. The light sensing unit 60 may provide the light sensing result S5 to the timing control unit 50. In one embodiment, the signal transmission interface applicable to the light sensing result S5 may be, for example, but not limited to, I2C or SPI (Serial Peripheral Interface).
[0044] Next, the operation of the electronic device 100 of the first embodiment will be described. In one embodiment, the signal source end 200 provides the first signal S1 and the original control signal S0 to the timing control unit 50, and the light sensing unit 60 provides the light sensing result S5 to the timing control unit 50. Then, the timing control unit 50 provides the second signal S2 and the third signal S3 to the driving unit 40 according to the light sensing result S5. Then, the driving unit 40 drives the display panel 20 according to the second signal S2 and the third signal S3. There is a lookup table 52 stored in the memory unit 51 of the timing control unit 50. The lookup table 52 includes a plurality of gamma conversion data (for example, Gamma 1 to Gamma N, where N is a positive integer). The timing control unit 50 may select one of the gamma conversion data from the plurality of gamma conversion data in the lookup table 52 according to the light sensing result S5, and transmit the selected gamma conversion data and the clock signal, synchronization signal or other control signals that can be identified by the driving unit 40 to the driving unit 40 through the third signal S3. Therefore, the driving unit 40 may adjust the gamma curve of the display panel 20 according to the gamma conversion data in the third signal S3, so that the display effect of the display panel 20 may adapt to the ambient light intensity. The display effect here may include brightness, contrast, color saturation and/or color temperature, etc., while it is not limited thereto. It should be noted that, in this embodiment, the first signal SI and the second signal S2 may be substantially the same. For example, the signal formats of the first signal SI and the second signal S2 may be different, but the actual data content of the first signal S1 and the second signal S2 is the same. It should be noted that the so-called actual data content is the same means that the gray-scale value of each pixel in the image presented by the second signal S2 is the same as the gray-scale value of the corresponding pixel in the image presented by the first signal S1. That is, although the data codes of the first signal S1 and the second signal S2 may be different due to different signal formats, the color of the image presented by the signals remains unchanged.
[0045] As a result, with the electronic device 100 of the first embodiment, different gamma conversion data may be selected according to different ambient light intensities by using, for example, the lookup table 52, thereby adjusting the display effect of the display screen.
[0046]
[0047] As shown in
[0048] Therefore, when the electronic device 100 of this embodiment is in operation, the timing control unit 50 may adjust the data content of the first signal S1 based on the gamma conversion data through an algorithm to form the second signal S2, and the driving unit 40 may drive the display panel 20 according to the second signal S2, so that the display effect of the display panel 20 may be adapted to the ambient light intensity, while it is not limited thereto.
[0049] As a result, with the electronic device 100 of the second embodiment, the image signal may be adjusted according to the ambient light intensity by using, for example, an algorithm, thereby adjusting the display effect of the display screen.
[0050]
[0051] As shown in
[0052] As a result, with the electronic device 100 of the third embodiment, different gamma conversion data may be selected according to different ambient light intensities by using, for example, the lookup table 52, thereby adjusting the display effect of the display screen, and the backlight brightness of the backlight source 10 may be adjusted according to different ambient light intensities, thereby improving display quality.
[0053]
[0054] As shown in
[0055] As a result, with the electronic device 100 of the fourth embodiment, the image signal may be adjusted according to the ambient light intensity by using, for example, an algorithm, thereby adjusting the display effect of the display screen, and the backlight brightness of the backlight source 10 may also be adjusted according to different ambient light intensities so as to improve display quality.
[0056]
[0057] As shown in
[0058] As a result, with the electronic device 100 of the fifth embodiment, not only appropriate image signals may be provided through the lookup table 51 and the algorithm, but also the backlight brightness of the backlight source 10 may be adjusted according to different ambient light intensities, thereby improving the display quality.
[0059] Accordingly, the operation of the electronic device 100 of the present disclosure can be understood. Next, the detailed structure of the electronic device 100 will be described.
[0060] First, the detailed structure of the display module 1 (display panel 20 and optical structure layer 30) will be described.
[0061] Furthermore, the display module 1 in the embodiment of
[0062]
[0063] Furthermore, the display module 1 of the embodiment of
[0064]
[0065] Furthermore, the display module 1 in the embodiment of
[0066]
[0067] Furthermore, the display module 1 of the embodiment of
[0068] It should be noted that the structures of the display module 1 of the embodiments of
[0069] The structure of the display module 1 may also have other forms.
[0070] Furthermore, the display module 1 of the embodiment of
[0071] It should be noted that the structures of the display module 1 of the embodiments of
[0072] In addition, in one embodiment, the gloss of the display module 1 may be smaller than or equal to 10 GU (Gloss Unit), such as 5 GU. In one embodiment, the reflectivity of the specular component included (SCI) reflection light of the display module 1 may be smaller than or equal to 3% (0%<SCI reflectivity of the display module3%). In one embodiment, the reflectivity of the specular component excluded (SCE) reflection light of the display module 1 may be greater than or equal to 0.6 times its SCI reflectivity. As a result, the reflected light of the electronic device 100 may be reduced and the visual quality can be improved.
[0073] Accordingly, the structure of the display module 1 can be understood.
[0074] Next, the details of the optical structure layer 30 will be described. Please refer again to
[0075] In one embodiment, the gloss of the optical structure layer 30 may be between 4 GU and 35 GU (4 GUgloss of optical structure layer35 GU). In one embodiment, the gloss of the optical structure layer 30 may be between 4 GU and 30 GU (4 GUgloss of optical structure layer30 GU). In one embodiment, the gloss of the optical structure layer 30 may be between 4 GU and 20 GU (4 GUgloss of optical structure layer20 GU). However, the present disclosure is not limited thereto. In addition, in one embodiment, the transmittance of the optical structure layer 30 may be between 70% and 95% (70%transmittance of optical structure layer95%). In addition, in one embodiment, the reflectivity of the optical structure layer 30 may be smaller than or equal to 6% (0%reflectivity of optical structure layer6%). In one embodiment, the SCI reflectivity of optical structure layer may be between 3% and 6% (3%SCI reflectivity of optical structure layer6%). In one embodiment, the SCI reflectivity of the optical structure layer 30 may be between 4% and 6% (4%SCI reflectivity of optical structure layer6%). However, the present disclosure is not limited thereto.
[0076] In one embodiment, when the protective layer 31 is a glass cover, the anti-glare layer 32 and the protective layer 31 may form an anti-glare glass, wherein the gloss of the anti-glare glass may be between 10 GU and 50 GU (10 GUgloss of anti-glare glass50 GU), while it is not limited thereto. In one embodiment, the transmittance of the anti-glare glass may be greater than or equal to 90% (90%transmittance of anti-glare glass100%), while it is not limited thereto. In addition, in one embodiment, when the protective layer 31 is a protective film, the anti-glare layer 32 and the protective layer 31 may form an anti-glare protective film, wherein the gloss of the anti-glare protective film may be between 10 GU and 50 GU (10 GUgloss of anti-glare protective film50 GU), while it is not limited thereto. In one embodiment, the transmittance of the anti-glare protective film may be greater than or equal to 90 percent (90%transmittance of anti-glare glass100%), while it is not limited thereto.
[0077] Next, the details of the anti-glare layer 32 of the optical structure layer 30 will be described.
[0078] As shown in
[0079] As shown in
[0080]
[0081] As shown in
[0082] As shown in
[0083] Next, the details of the anti-reflection layer 33 of the optical structure layer 30 will be described.
[0084] As shown in
[0085] In one embodiment, the material of the high refractive index sub-layer 331 of the anti-reflection layer 33 may include metal oxides, such as niobium pentoxide (Nb2O5), indium tin oxide (ITO), oxide titanium (TiO2), zirconium oxide (ZrO2), tantalum oxide (Ta2O5), other suitable oxides or a combination thereof, but it is not limited thereto. In one embodiment, the material of the low refractive index sub-layer 332 may include silicon dioxide (SiO2), but it is not limited thereto. In one embodiment, the reflectivity of the anti-reflection layer 33 may be between 3 percent and 6 percent (3%reflectivity of anti-reflection layer6%), while it is not limited thereto. In one embodiment, the overall thickness of the anti-reflection layer 33 in the Y direction may be between 200 nanometers and 700 nanometers (200 nmoverall thickness of anti-reflection layer700 nm), while it is not limited thereto. In one embodiment, the high refractive index sub-layer 331 of the smoke anti-reflection layer may have an absorption coefficient k, where the absorption coefficient k may be between 0.01 and 0.05, that is, 0.01k0.05, while it is not limited thereto. In addition, the low refractive index sub-layer 332 may have substantially no light absorption properties.
[0086] As a result, the structure of the optical structure layer 30 can be understood.
[0087] Next, the details of the backlight source 10 will be described.
[0088] As shown in
[0089] In one embodiment of a side light backlight source, the light source layer 12 may include a light guide plate and at least one light emitting unit (such as a light emitting diode), wherein the light emitting unit may be disposed on the side of the light guide plate. The optical pattern of the light guide plate may be used to adjust the light emitted from the light emitting unit into the light guide plate from the side into a direction perpendicular to the light guide plate for being emitted upward to the display panel 20. At this moment, the reflection layer 13 may reflect the light from the light emitting unit that enters the light guide plate from the side and then turns downward to be upward-directed light. The first optical layer 11 may include one or two light diffuser films to improve the overall brightness and uniformity of brightness distribution of the backlight source, while the components in the side light backlight source in the present disclosure may not be limited thereto.
[0090] In a direct light backlight source, the light source layer 12 may include at least one light emitting unit (such as a light emitting diode), and the first optical layer 11 may include at least one light diffusion plate, or a combination of a light diffusion plate and at least one light diffusion sheet, while it is not limited thereto. In one embodiment of the direct light backlight source, in the Y direction, a second optical layer 14 may be disposed above the first optical layer 11, wherein the second optical layer 14 may include at least one dual brightness enhancement film (DBEF), but it is not limited thereto.
[0091] Next,
[0092] As shown in
[0093] As a result, the backlight source 10 of the present disclosure can be understood.
[0094] From the above description, it can be seen that the electronic device of the present disclosure may automatically adjust the display effect according to the brightness of the ambient light so as to solve the problems of the prior art. Alternatively, the electronic device of the present disclosure has a special optical structure layer, which may reduce the reflected light from the display panel of the electronic device thereby improving the display quality.
[0095] In one embodiment, the present disclosure may determine whether a product in contention falls within the protection scope of the present disclosure at least by the presence or absence of components, component configurations and/or operating modes of the product, or by the algorithm of the product in contention to determine whether it falls within the protection scope of the present disclosure, while it is not limited thereto.
[0096] The features of the various embodiments of the present disclosure may be mixed and matched arbitrarily as long as they do not violate the spirit of the disclosure or conflict with each other.
[0097] The aforementioned specific embodiments should be construed as merely illustrative, and not limiting the rest of the present disclosure in any way.