Display device

The foldable display device enhances adhesive strength at bending axes by using a hydrophobic functional layer and anti-fingerprint layer design, preventing film peeling and fingerprint marks, thus improving durability and user experience.

JP7727806B2Active Publication Date: 2025-08-21SAMSUNG DISPLAY CO LTD
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Patent Information

Application Number
JP2024113597
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-01-10
Filing Date
2024-07-16
Publication Date
2025-08-21
Estimated Expiration
2040-01-10

AI Technical Summary

Technical Problem

The issue of peeling of the protective film at the folding portion of foldable display devices due to repeated stress is not adequately addressed in existing technologies.

Method used

A foldable display device design incorporating a display panel with a window member, a functional layer containing a hydrophobic material, and a hard coat layer with an anti-fingerprint layer, where the anti-fingerprint layer does not overlap the bending axes, and specific width ranges for openings are defined to enhance adhesive strength.

Benefits of technology

Prevents peeling of the protective film at the bending axes, maintaining the integrity of the display device and reducing fingerprint marks on the surface.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a display device with increased adhesive strength between the outermost surface of a foldable portion and an external film.SOLUTION: A display device includes: a display panel configured to be folded about a first bending axis; a window member disposed on the display panel, the window member including a transparent material; a functional layer disposed on the window member, spaced apart from the display panel in an expanded state, the functional layer including a hydrophobic material and a first opening defined corresponding to the first bending axis; and a hard coating layer between the functional layer and the window member. The functional layer includes an anti-fingerprint layer that does not overlap the first opening. The anti-fingerprint layer includes a hydrophobic material. The hard coating layer includes a hydrophilic substance.SELECTED DRAWING: Figure 9
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Description

[Technical Field]

[0001] The present invention relates to a foldable display device, and more particularly to a foldable display device having an anti-fingerprint layer disposed on the outermost periphery. [Background technology]

[0002] A display device provides information to a user by displaying various images on a display screen. Generally, a display device displays information within an assigned screen. Recently, flexible display devices including foldable flexible display panels have been developed. Unlike rigid display devices, flexible display devices can be folded or bent. Flexible display devices, which can be shaped in various ways, can be carried regardless of conventional external sizes, thereby improving user convenience.

[0003] While using the portable display device, a user may attach an additional protective film to protect the display surface. Stress is repeatedly applied to the folding portion of the display device, and there is a problem that the portion of the additional protective film that corresponds to the folding portion peels off from the surface of the display device. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Publication No. 2018-6749 Summary of the Invention [Problem to be solved by the invention]

[0005] The present invention has been made in consideration of the above-mentioned conventional problems, and an object of the present invention is to provide a display device that improves the adhesive strength between the outermost surface of the folded part and the external film. [Means for solving the problem]

[0006] In order to achieve the above object, one aspect of the present invention provides a display device comprising: a display panel that is folded based on a first bending axis; a window member that is disposed on the display panel and includes a transparent material; a functional layer that is disposed on the window member and spaced apart from the display panel when unfolded, and includes a hydrophobic material, and defines a first opening corresponding to the first bending axis; and a hard coat layer that is disposed between the functional layer and the window member, wherein the functional layer includes an anti-fingerprint layer that does not overlap the first opening, the anti-fingerprint layer includes a hydrophobic material, and the hard coat layer includes a hydrophilic material.

[0007] The hydrophobic material may be a fluorine-based compound. The hard coat layer may include polyimide. When the display panel is folded with a first radius of curvature R1 around the first bending axis, a width WD1 of the first opening may satisfy the range of Equation 1 below.

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[0008] A display device according to one embodiment includes a display panel, a window member, and a functional layer. The display panel includes a first display area, a second display area extending from one side of the first display area, and a third display area extending from the other side of the first display area, and is folded about a first bending axis defined between the first display area and the second display area and a second bending axis disposed between the first display area and the third display area.

[0009] The window member may be disposed on the display panel and may include a transparent material. The functional layer is disposed on the window member, comprises a hydrophobic material, and includes a first portion overlapping the first display area, a second portion overlapping the second display area, and a third portion overlapping the third display area, and does not overlap the first bending axis and the second bending axis. The display device further includes an input sensing circuit disposed between the display panel and the window member for sensing contact of an external object, the functional layer providing a touch surface that is contacted by the external object. [Effects of the Invention]

[0010] According to the present invention, it is possible to prevent a peeling phenomenon that occurs between a protective film additionally attached to the upper surface of a window by a user and a bending axis portion of a foldable display device. [Brief explanation of the drawings]

[0011] [Figure 1]1 is a perspective view of a display device according to an embodiment of the present invention; [Figure 2A] 2 is a diagram showing a first example of the display device shown in FIG. 1 folded up. FIG. [Figure 2B] 1. FIG. 4 is a diagram showing a second example of the display device shown in FIG. 1 folded. [Figure 2C] 1. FIG. 4 is a diagram showing a third example of the display device shown in FIG. 1 folded. [Figure 2D] 1. FIG. 4 is a diagram showing a fourth example of the display device shown in FIG. 1 folded. [Figure 2E] 1. FIG. 4 is a diagram showing a fifth example of the display device shown in FIG. 1 folded. [Figure 3] 1 is a cross-sectional view of a display device according to an embodiment of the present invention; [Figure 4A] FIG. 4 is a cross-sectional view of an example of the display module shown in FIG. [Figure 4B] 4 is a cross-sectional view of another example of the display module shown in FIG. 3. FIG. [Figure 5] FIG. 2 is a plan view of a display panel according to an embodiment of the present invention. [Figure 6] FIG. 2 is an equivalent circuit diagram of a pixel according to an embodiment of the present invention. [Figure 7] 7 is a diagram illustrating an example of a light emission control signal and a scan signal applied to the pixel of FIG. 6. FIG. [Figure 8] 2 is a cross-sectional view of a portion of a pixel according to an embodiment of the present invention. [Figure 9] FIG. 2 is a diagram exemplarily showing a part of a cross section taken along II' in FIG. DETAILED DESCRIPTION OF THE INVENTION

[0012] Hereinafter, specific examples of embodiments of the present invention will be described in detail with reference to the drawings.

[0013] In the drawings, proportions and dimensions of components are exaggerated for effective explanation of the technical contents. "And / or" includes all combinations of one or more defined by the related configurations.

[0014] The term "comprises" and the like should be understood to specify the presence of a feature, numeral, step, operation, component, part, or combination thereof stated in the specification, but not to preclude the presence or possible addition of one or more other features, numerals, steps, operations, components, parts, or combinations thereof.

[0015] FIG. 1 is a perspective view of a display device DD according to an embodiment of the present invention. As shown in FIG. 1, a display surface DS on which an image IM is displayed is parallel to a plane defined by a first directional axis DR1 and a second directional axis DR2. A normal direction of the display surface DS, i.e., the thickness direction of the display device DD, is indicated by a third directional axis DR3. The front (or upper surface) and rear (or lower surface) of each component are separated by the third directional axis DR3. However, the directions indicated by the first to third directional axes (DR1, DR2, DR3) are relative concepts and may be converted to other directions. Hereinafter, the first to third directions will refer to the directions indicated by the first to third directional axes (DR1, DR2, DR3), respectively, and will be referred to by the same reference numerals.

[0016] The display device DD according to an embodiment of the present invention is a foldable display device, and can be used in large electronic devices such as televisions and monitors, as well as small and medium-sized electronic devices such as mobile phones, tablets, car navigation systems, game consoles, and smart watches.

[0017] As shown in FIG. 1, the display surface DS of the display device DD includes multiple areas. The display device DD includes a display area DD-DA in which an image IM is displayed and a non-display area DD-NDA adjacent to the display area DD-DA. The non-display area DD-NDA is an area in which the image IM is not displayed. FIG. 1 shows an application icon and a clock window as examples of an image IM. The display area DD-DA is rectangular. The non-display area DD-NDA surrounds the display area DD-DA. However, the shapes of the display area DD-DA and the non-display area DD-NDA can be designed relatively to each other.

[0018] The display area DD-DA includes a first display area DA1, a second display area DA2, and a third display area DA3.

[0019] The first display area DA1 is disposed between the second display area DA2 and the third display area DA3. The second display area DA2 extends from one side of the first display area DA1, and the third display area DA3 extends from the other side of the first display area DA1.

[0020] A first bending axis BX1 is defined between the first display area DA1 and the second display area DA2. A second bending axis BX2 is defined between the first display area DA1 and the third display area DA3. The first bending axis BX1 and the second bending axis BX2 are spaced apart from each other.

[0021] Although two bending axes (BX1, BX2) are shown in FIG. 1 as an example, the number of bending axes is not limited thereto and may be changed as needed.

[0022] The display device DD includes a housing HS. The housing HS is disposed on the outer periphery of the display device DD and houses components therein.

[0023] 2A to 2E are diagrams each showing an example of the display device DD shown in FIG. 1 when folded.

[0024] 2A, the display device DD is folded inward with respect to the first bending axis BX1. In this embodiment, the display device DD is folded only inward with respect to the first bending axis BX1, and is not folded outward.

[0025] In this specification, folding inwards means that the display devices DD-DA are folded so that they face each other, and folding outwards means that the display devices DD-DA are folded so that they do not face each other.

[0026] Referring to Fig. 2B, the display device DD is folded inward with respect to the second bending axis BX2. Referring to Fig. 2C, the display device DD is folded outward with respect to the second bending axis BX2. That is, the display device DD can be folded both inward and outward with respect to the second bending axis BX2.

[0027] FIG. 2D exemplarily shows that the display device DD is folded inward with respect to the first bending axis BX1 and folded inward with respect to the second bending axis BX2.

[0028] FIG. 2E exemplarily shows that the display device DD is folded inward with respect to the first bending axis BX1 and folded outward with respect to the second bending axis BX2.

[0029] Referring to Figures 2D and 2E, the radius of curvature R1 (hereinafter referred to as the first radius of curvature) when the display device DD is bent based on the first bending axis BX1 is smaller than the radius of curvature R2 (hereinafter referred to as the second radius of curvature) when the display device DD is bent based on the second bending axis BX2.

[0030] In this embodiment, the display device DD can be folded only inward with respect to the first bending axis BX1, but can be folded both inward and outward with respect to the second bending axis BX2, so the portion of the display device DD corresponding to the second bending axis BX2 may be subjected to more stress than the portion of the display device DD corresponding to the first bending axis BX1. Therefore, by making the second radius of curvature R2 larger than the first radius of curvature R1, the stress applied to the portion of the display device DD corresponding to the second bending axis BX2 can be reduced.

[0031] 2A to 2E show exemplary folding methods of the display device DD, but the folding method is not limited to these.

[0032] Figure 3 is a cross-sectional view of a display device DD according to an embodiment of the present invention, and Figures 4A and 4B are cross-sectional views of display modules (DM, DM-1) shown in Figure 3. Figure 3 shows a cross section defined by a second directional axis DR2 and a third directional axis DR3.

[0033] The display device DD includes a display module DM, a plurality of functional layers (FC1 to FC4), a base film BF, a shock absorbing member CSH, a support member PT, and a plurality of adhesive members (AD1 to AD5).

[0034] In one embodiment of the present invention, each of the adhesive members (AD1 to AD5) is a pressure sensitive adhesive (PSA).

[0035] The functional layers (FC1 to FC4) are disposed above the display module DM.

[0036] The first functional layer FC1 is adhered to the display module DM by a first adhesive member AD1. The second functional layer FC2 is adhered to the first functional layer FC1 by a second adhesive member AD2. The third functional layer FC3 is adhered to the second functional layer FC2 by a third adhesive member AD3.

[0037] The fourth functional layer FC4 is disposed directly on the third functional layer FC3. In this case, the fourth functional layer FC4 is formed by coating the third functional layer FC3. However, the fourth functional layer FC4 may be adhered to the third functional layer FC3 by an adhesive member.

[0038] Each of the first to third functional layers (FC1 to FC3) contains a polymeric substance. Each of the first to third functional layers (FC1 to FC3) is in the form of a film. The modulus of each of the first to third functional layers (FC1 to FC3) is 2 Gpa or more and 100 Gpa or less.

[0039] The thickness of each of the first to third functional layers (FC1 to FC3) is 35 μm or more and 60 μm or less. If the thickness of each of the first to third functional layers (FC1 to FC3) is less than 35 μm, the ability to perform the intended function may decrease, and if it is more than 60 μm, the flexibility of the display device DD may decrease.

[0040] In one embodiment of the present invention, the first functional layer FC1 is a polarizing functional layer that polarizes incident light.

[0041] The second functional layer FC2 is a shock absorbing functional layer that absorbs shocks applied from the outside.

[0042] The third functional layer FC3 is a window member including a transparent material. In one embodiment of the present invention, the third functional layer FC3 includes glass. In another embodiment of the present invention, the third functional layer FC3 includes a synthetic resin.

[0043] The fourth functional layer FC4 is disposed on the third functional layer FC3 and provides the outermost surface of the display device DD. The fourth functional layer FC4 is an anti-fingerprint layer that prevents smudges caused by user fingerprints. The fourth functional layer FC4 will be described in detail with reference to FIG. 9.

[0044] The base film BF, the shock absorbing member CSH, and the support member PT are disposed below the display module DM.

[0045] The base film BF is directly adhered to the display module DM. In one embodiment of the present invention, the base film BF consists of multiple layers.

[0046] The shock absorbing member CSH is attached to the base film BF by a fourth adhesive member AD4. The shock absorbing member CSH includes a polymer. The shock absorbing member CSH is a layer for absorbing shocks applied from the outside.

[0047] The support member PT is adhered to the shock absorbing member CSH by a fifth adhesive member AD5. The support member PT supports the display module DM. The support member PT includes a hinge (not shown) for folding or bending the display module DM. The support member PT has a rigid nature. In other embodiments of the present invention, the support member PT is omitted.

[0048] 4A, the display module DM includes a display panel DP and an input sensing circuit ISC. The input sensing circuit ISC senses touch events and / or pressure applied from the outside. Specifically, the input sensing circuit ISC senses touch and / or pressure from a user's finger or an external object contacting a fourth functional layer FC4. The fourth functional layer FC4 provides a touch surface for the user.

[0049] The input sensing circuit ISC is disposed directly on a thin film encapsulation layer (not shown) of the display panel DP, where "directly disposed" means that the input sensing circuit ISC is disposed on the display panel DP without any additional adhesive material.

[0050] 4B, the display module DM-1 includes a display panel DP, an input sensing circuit ISC, and a sixth adhesive member AD6, which is bonded to the display panel DP and the input sensing circuit ISC.

[0051] FIG. 5 is a plan view of a display panel DP according to an embodiment of the present invention.

[0052] The display panel DP includes a display area DP-DA and a non-display area DP-NDA on a plane. In this embodiment, the non-display area DP-NDA is defined along the frame of the display area DP-DA. The display area DP-DA and non-display area DP-NDA of the display panel DP correspond to the display area DD-DA and non-display area DD-NDA of the display device DD shown in FIG. 1, respectively.

[0053] The display panel DP includes a scan driver 100, a data driver 200, a plurality of scan lines SL, a plurality of emission control lines ECL, a plurality of data lines DL, a plurality of power lines PL, and a plurality of pixels PX (hereinafter referred to as pixels). The pixels PX are arranged in a display area DP-DA. Each pixel PX includes an organic light emitting element OLED (see FIG. 6) and a pixel circuit CC (see FIG. 6) connected thereto.

[0054] The scan driver 100 includes a scan driver and a light emission control driver.

[0055] The scan driver generates scan signals and sequentially outputs the generated scan signals to the scan lines SL. The light emission control driver generates light emission control signals and outputs the generated light emission control signals to the light emission control lines ECL.

[0056] In another embodiment of the present invention, the scan driver and the light emission control driver are not separated from each other within the scan driver 100 but are formed as a single circuit.

[0057] The scan driver 100 includes a plurality of thin film transistors formed through the same process as the driving circuit of the pixel PX, for example, a low temperature polycrystalline silicon (LTPS) process or a low temperature polycrystalline oxide (LTPO) process.

[0058] The data driver 200 outputs a data signal to the data line DL, which is an analog voltage corresponding to the gray scale value of the image data.

[0059] In one embodiment of the present invention, the data driver 200 is directly mounted on the display panel DP. However, in other embodiments of the present invention, the data driver 200 is mounted on a printed circuit board (not shown), and the printed circuit board (not shown) is connected to a pad disposed at one end of the data line DL.

[0060] The scan lines SL extend in a second direction DR2 and are arranged in a first direction DR1 that intersects with the second direction DR2. In the embodiment of the present invention, the second direction DR2 and the first direction DR1 are orthogonal to each other, but this is not limiting.

[0061] The light emission control lines ECL are extended in the second direction DR2 and aligned in the first direction DR1, that is, each of the light emission control lines ECL is aligned with a corresponding one of the scan lines SL.

[0062] The data lines DL extend in a first direction DR1 and are aligned in a second direction DR2 crossing the first direction DR1, and provide data signals to the corresponding pixels PX.

[0063] The power supply lines PL extend in a first direction DR1 and are aligned in a second direction DR2, and provide a first power supply ELVDD to the corresponding pixels PX.

[0064] Each of the plurality of pixels PX is connected to a corresponding one of the scan lines SL, a corresponding one of the light emission control lines ECL, a corresponding one of the data lines DL, and a power supply line corresponding to the power supply line PL.

[0065] The non-display area DP-NDA of the display panel DP includes a bending area BA. When the display panel DP is folded based on the bending area BA, the area of ​​the non-display area DP-NDA is reduced on the plane defined by the first direction DR1 and the second direction DR2, providing a display device DD with a narrow bezel. That is, in FIG. 1, a display device DD with a small area of ​​the non-display area DD-NDA is provided.

[0066] Fig. 6 is an equivalent circuit diagram of a pixel PX according to an embodiment of the present invention, and Fig. 7 is a diagram illustrating an example of an emission control signal Ei and scan signals (Si-1, Si, Si+1) applied to the pixel PX of Fig. 6. Fig. 6 illustrates an example of a pixel PX connected to an i-th scan line SLi and an i-th emission control line ECLi.

[0067] The pixel PX includes an organic light emitting element OLED and a pixel circuit CC. The pixel circuit CC includes a plurality of transistors (T1 to T7) and a capacitor CP. The pixel circuit CC controls the amount of current flowing through the organic light emitting element OLED in response to a data signal.

[0068] The organic light emitting element OLED emits light at a predetermined luminance corresponding to the amount of current provided from the pixel circuit CC, and for this purpose, the level of the first power supply ELVDD is set higher than the level of the second power supply ELVSS.

[0069] Each of the transistors (T1 to T7) includes an input electrode (or source electrode), an output electrode (or drain electrode), and a control electrode (or gate electrode). In this specification, for convenience, one of the input electrode and the output electrode is referred to as a first electrode, and the other is referred to as a second electrode.

[0070] A first electrode of the first transistor T1 is connected to the first power supply ELVDD via the fifth transistor T5, and a second electrode of the first transistor T1 is connected to the anode electrode of the organic light emitting element OLED via the sixth transistor T6. The first transistor T1 is referred to as a driving transistor in this specification.

[0071] The first transistor T1 controls the amount of current flowing through the organic light emitting element OLED in response to the voltage applied to the control electrode.

[0072] The second transistor T2 is connected between the data line DL and the first electrode of the first transistor T1, and a control electrode of the second transistor T2 is connected to the i-th scan line SLi. When the i-th scan signal Si is provided to the i-th scan line SLi, the second transistor T2 is turned on to electrically connect the data line DL and the first electrode of the first transistor T1.

[0073] The third transistor T3 is connected between the second electrode and the control electrode of the first transistor T1. The control electrode of the third transistor T3 is connected to the i-th scan line SLi. When the i-th scan signal Si is provided to the i-th scan line SLi, the third transistor T3 is turned on to electrically connect the second electrode and the control electrode of the first transistor T1. Therefore, when the third transistor T3 is turned on, the first transistor T1 is connected in diode form.

[0074] The fourth transistor T4 is connected between the node ND and an initialization power supply generator (not shown). A control electrode of the fourth transistor T4 is connected to the (i-1)th scan line SLi-1. When the (i-1)th scan signal Si-1 is provided to the (i-1)th scan line SLi-1, the fourth transistor T4 is turned on to provide the initialization voltage Vint to the node ND.

[0075] The fifth transistor T5 is connected between the power supply line PL and the first electrode of the first transistor T1, and the control electrode of the fifth transistor T5 is connected to the i-th light emission control line ECLi.

[0076] The sixth transistor T6 is connected between the second electrode of the first transistor T1 and the anode electrode of the organic light emitting element OLED, and the control electrode of the sixth transistor T6 is connected to the i-th emission control line ECLi.

[0077] The seventh transistor T7 is connected between an initialization power supply generator (not shown) and the anode electrode of the organic light emitting element OLED. The control electrode of the seventh transistor T7 is connected to the (i+1)th scan line SLi+1. When the (i+1)th scan signal Si+1 is provided to the (i+1)th scan line SLi+1, the seventh transistor T7 is turned on to provide the initialization voltage Vint to the anode electrode of the organic light emitting element OLED.

[0078] The seventh transistor T7 improves the black display capability of the pixel PX. More specifically, when the seventh transistor T7 is turned on, a parasitic capacitor (not shown) of the organic light emitting element OLED is discharged. Then, when black luminance is realized, the organic light emitting element OLED does not emit light due to leakage current from the first transistor T1, thereby improving the black display capability.

[0079] 6, the control electrode of the seventh transistor T7 is connected to the (i+1)th scan line SLi+1, but the present invention is not limited thereto. In other embodiments of the present invention, the control electrode of the seventh transistor T7 is connected to the i-th scan line SLi or the (i-1)th scan line SLi-1.

[0080] 6 is based on PMOS, but is not limited to this. In another embodiment of the present invention, the pixel PX is made of NMOS. In yet another embodiment of the present invention, the pixel PX is made of a combination of NMOS and PMOS.

[0081] The capacitor CP is disposed between the power supply line PL and the node ND. The capacitor CP stores a voltage corresponding to a data signal. The amount of current flowing through the first transistor T1 when the fifth transistor T5 and the sixth transistor T6 are turned on is determined according to the voltage stored in the capacitor CP.

[0082] In the present invention, the structure of the pixel PX is not limited to the structure shown in Fig. 6. In other embodiments of the present invention, the pixel PX may be implemented in various forms to emit light from the organic light emitting element OLED.

[0083] 7, the light emission control signal Ei has a high level E-HIGH or a low level E-LOW, and the scan signals SLi-1, SLi, and SLi+1 have a high level S-HIGH or a low level S-LOW, respectively.

[0084] When the light emission control signal Ei has a high level E-HIGH, the fifth transistor T5 and the sixth transistor T6 are turned off. When the fifth transistor T5 is turned off, the power line PL and the first electrode of the first transistor T1 are electrically disconnected. When the sixth transistor T6 is turned off, the second electrode of the first transistor T1 and the anode electrode of the organic light emitting element OLED are electrically disconnected. Therefore, while the light emission control signal Ei having a high level E-HIGH is provided to the i-th light emission control line ECLi, the organic light emitting element OLED does not emit light.

[0085] Next, when the (i-1)th scan signal Si-1 provided to the (i-1)th scan line SLi-1 has a low level S-LOW, the fourth transistor T4 is turned on, and when the fourth transistor T4 is turned on, the initialization voltage Vint is provided to the node ND.

[0086] When the i-th scan signal Si provided to the i-th scan line SLi has a low level S-LOW, the second transistor T2 and the third transistor T3 are turned on.

[0087] When the second transistor T2 is turned off, a data signal is provided to the first electrode of the first transistor T1. At this time, the node ND is initialized to the initialization voltage Vint, so the first transistor T1 is turned on. When the first transistor T1 is turned on, a voltage corresponding to the data signal is provided to the node ND. At this time, the capacitor CP stores the voltage corresponding to the data signal.

[0088] When the (i+1)th scan signal Si+1 provided to the (i+1)th scan line SLi+1 has a low level S-LOW, the seventh transistor T7 is turned on.

[0089] When the seventh transistor T7 is turned on, the initialization voltage Vint is provided to the anode electrode of the organic light emitting element OLED, thereby discharging the parasitic capacitor of the organic light emitting element OLED.

[0090] When the emission control signal Ei provided to the emission control line ECLi has a low level E-LOW, the fifth transistor T5 and the sixth transistor T6 are turned on. When the fifth transistor T5 is turned on, the first power supply EVLDD is provided to the first electrode of the first transistor T1. When the sixth transistor T6 is turned on, the second electrode of the first transistor T1 is electrically connected to the anode electrode of the organic light emitting element OLED. Then, the organic light emitting element OLED generates light of a predetermined brightness corresponding to the amount of current provided.

[0091] FIG. 8 is a cross-sectional view of a portion of a pixel PX (see FIG. 6) according to an embodiment of the present invention. While FIG. 8 exemplifies the first transistor T1 and the second transistor T2, the structures of the first transistor T1 and the second transistor T2 are not limited thereto. While FIG. 8 shows the second electrode ED2 of the first transistor T1 as being in direct contact with the anode electrode AE ​​of the pixel PX, this is only shown as a cross-sectional view. In reality, the first transistor T1 is connected to the anode electrode AE ​​of the pixel PX via the sixth transistor T6, as shown in FIG. 6. However, this is not limiting, and in other embodiments of the present invention, the second electrode ED2 of the first transistor T1 is in direct contact with the anode electrode AE ​​of the pixel PX.

[0092] The display panel DP (see FIG. 5) includes a base layer BL, a circuit layer CL, a light-emitting element layer ELL, and a sealing layer TFE.

[0093] The circuit layer CL includes a buffer layer BFL, gate insulating layers (GI1, GI2), an interlayer insulating layer ILD, a circuit insulating layer VIA, and transistors (T1, T2).

[0094] The light emitting element layer ELL includes an organic light emitting element OLED and a pixel defining layer PDL.

[0095] The encapsulation layer TFE seals the light-emitting element layer ELL and protects it from external oxygen or moisture.

[0096] A buffer layer BFL is disposed on one surface of the base layer BL.

[0097] The buffer layer BFL prevents impurities present in the base layer BL from flowing into the pixel PX during the manufacturing process, and in particular prevents the impurities from diffusing into the active parts ACL of the transistors (T1, T2) that make up the pixel PX.

[0098] The impurities flow in from the outside or are generated by thermal decomposition of the base layer BL. The impurities are gases or sodium discharged from the base layer BL. The buffer layer BFL also blocks moisture from flowing into the pixel PX from the outside.

[0099] The active portions ACL constituting each of the transistors (T1, T2) are disposed on the buffer layer BFL. Each of the active portions ACL includes polysilicon or amorphous silicon. Alternatively, the active portions ACL include a metal oxide semiconductor.

[0100] The active section ACL includes a channel region that serves as a path through which electrons or holes move, and a first ion-doped region and a second ion-doped region that are disposed on either side of the channel region.

[0101] A first gate insulating layer GI1 covering the active portion ACL is disposed on the buffer layer BFL. The first gate insulating layer GI1 includes an organic film and / or an inorganic film. The first gate insulating layer GI1 includes a plurality of inorganic thin films. The plurality of inorganic thin films include a silicon nitride layer and a silicon oxide layer.

[0102] A control electrode GE1 constituting each of the transistors (T1, T2) is disposed on the first gate insulating layer GI1. The control electrode GE1 of the first transistor T1 is one of two electrodes constituting the capacitor CP. At least a portion of the scan line SL (see FIG. 5) and the emission control line ECL (see FIG. 5) are disposed on the first gate insulating layer GI1.

[0103] A second gate insulating layer GI2 is disposed on the first gate insulating layer GI1 to cover the control electrode GE1. The second gate insulating layer GI2 includes an organic film and / or an inorganic film. The second gate insulating layer GI2 includes a plurality of inorganic thin films. The plurality of inorganic thin films includes a silicon nitride layer and a silicon oxide layer.

[0104] The other electrode GE2 of the two electrodes constituting the capacitor CP (see FIG. 6) is disposed on the second gate insulating layer GI2. That is, the electrode GE1 disposed on the first gate insulating layer GI1 and the electrode GE2 disposed on the second gate insulating layer GI2 overlap to form the capacitor CP shown in FIG. However, the structure in which the electrodes constituting the capacitor CP are disposed is not limited to this.

[0105] An interlayer insulating layer ILD is disposed on the second gate insulating layer GI2 to cover the electrode GE2. The interlayer insulating layer ILD includes organic and / or inorganic films. The interlayer insulating layer ILD includes a plurality of inorganic thin films. The inorganic thin films include a silicon nitride layer and a silicon oxide layer.

[0106] At least a portion of the data line DL (see FIG. 5) and the power supply line PL (see FIG. 5) are disposed on the interlayer insulating layer ILD. The first electrode ED1 and the second electrode ED2 of each of the transistors (T1, T2) are disposed on the interlayer insulating layer ILD.

[0107] The first electrode ED1 and the second electrode ED2 are connected to the corresponding active part ACL via through holes that penetrate the gate insulating layers GI1 and GI2 and the interlayer insulating layer ILD, respectively.

[0108] A circuit insulating layer VIA is disposed on the interlayer insulating layer ILD to cover the first electrode ED1 and the second electrode ED2. The circuit insulating layer VIA includes an organic film and / or an inorganic film. The circuit insulating layer VIA provides a flat surface.

[0109] The pixel definition layer PDL and the organic light emitting element OLED are disposed on the circuit insulating layer VIA.

[0110] The organic light emitting element OLED includes an anode electrode AE, a hole control layer HL, an emitting layer EML, an electron control layer EL, and a cathode electrode CE.

[0111] FIG. 9 is a diagram exemplarily showing a part of a cross section taken along II' in FIG.

[0112] Referring to FIG. 9, the fourth functional layer FC4 includes a hard coat layer HC and an anti-fingerprint layer AF.

[0113] The hard coat layer HC is disposed on the surface of the third functional layer FC3 to protect the surface of the third functional layer FC3. The hard coat layer HC is formed by coating on the third functional layer FC3.

[0114] In one embodiment of the present invention, the hard coat layer HC includes, but is not limited to, polyimide. The substance contained in the hard coat layer HC may be any substance that has sufficient hardness to protect the surface of the third functional layer FC3.

[0115] In another embodiment of the present invention, the hard coat layer HC of the fourth functional layer FC4 is omitted. For example, if the third functional layer FC3 contains glass, the surface of the third functional layer FC3 already has sufficient hardness, so the hard coat layer HC may be omitted.

[0116] The anti-fingerprint layer AF is formed by coating on the hard coat layer HC or the third functional layer FC3 and has a thickness of 1 nm to 100 nm, but the thickness of the anti-fingerprint layer AF is not limited thereto and may be changed as needed.

[0117] The anti-fingerprint layer AF provides the outermost surface of the display device DD and includes a hydrophobic material.

[0118] Without the anti-fingerprint layer AF, the third functional layer FC3 and the hard coat layer HC contain a hydrophilic substance, which causes unevenness due to user fingerprints to appear on the surface of the display device DD. Therefore, by arranging the anti-fingerprint layer AF containing a hydrophobic substance on the outermost periphery of the display device DD, it is possible to prevent unevenness due to user fingerprints from appearing on the surface of the display device DD.

[0119] Specifically, the hydrophobic material includes, but is not limited to, fluorine compounds.

[0120] The anti-fingerprint layer AF is defined with a first opening OP1 corresponding to the first bending axis BX1 and a second opening OP2 corresponding to the second bending axis BX2. Based on the first opening OP1 and the second opening OP2, the anti-fingerprint layer AF is divided into a first portion AF1, a second portion AF2, and a third portion AF3.

[0121] The first portion AF1 overlaps the first display area DA1 (see FIG. 1), the second portion AF2 overlaps the second display area DA2 (see FIG. 1), and the third portion AF3 overlaps the third display area DA3 (see FIG. 1).

[0122] The width WD1 of the first opening OP1 (hereinafter referred to as the first width) corresponds to the separation distance between the first portion AF1 and the second portion AF2, and the width of the second opening OP2 (hereinafter referred to as the second width WD2) corresponds to the separation distance between the first portion AF1 and the third portion AF3.

[0123] The first width WD1 is in a range that satisfies the following formula 1.

[0124]

number

[0125] Referring to Equation 1, the first width WD1 is 4 mm or more and 8 mm or less than half the perimeter length of the circle formed by the first radius of curvature R1.

[0126] If the first width WD1 is less than π×R1+4 mm, at least a portion of the first portion AF1 or the second portion AF2 may peel off due to stress applied during the folding process. Also, if the first width WD1 exceeds π×R1+8 mm, fingerprint marks may appear on the outer surface of the display device DD.

[0127] The second width WD2 is in a range that satisfies the following formula 2.

[0128]

number

[0129] Referring to Equation 2, the second width WD2 is 4 mm or more and 8 mm or less than half the perimeter length of the circle formed by the second radius of curvature R2.

[0130] If the second width WD2 is less than π×R1+4 mm, at least a portion of the first portion AF1 or the third portion AF3 may peel off due to stress applied during the folding process. Also, if the second width WD2 exceeds π×R1+8 mm, fingerprint marks may appear on the outer surface of the display device DD.

[0131] In one embodiment of the present invention, the second radius of curvature R2 is greater than the first radius of curvature R1, so that the second width WD2 is preferably greater than the first width WD1.

[0132] As shown in Figure 9, by not forming a hydrophobic anti-fingerprint layer AF in the area corresponding to the bending axes (BX1, BX2), the adhesive strength between the area exposed by the first opening OP1 and the second opening OP2 and an additional protective film (not shown) attached by the user can be improved.

[0133] Although the embodiments of the present invention have been described in detail above with reference to the drawings, the present invention is not limited to the above-described embodiments and can be modified in various ways without departing from the technical concept of the present invention. [Explanation of symbols]

[0134] 100 Scanning driver 200 Data Drive Unit ACL active part AD1 to AD6: First to sixth adhesive members AE anode electrode AF anti-fingerprint layer AF1~AF3: First to third parts of the anti-fingerprint layer BA bending area BF Base Film BFL buffer layer BL Base Layer BX1, BX2 1st and 2nd bending axes CC pixel circuit CE cathode electrode CL circuit layer CP Capacitor CSH Impact absorbing material DA1~DA3 1st~3rd display area DD display device DD-DA, DP-DA display area DD-NDA, DP-NDA hidden area DL data line DM, DM-1 Display Module DP display panel DS display surface ECL, ECLi light-emitting control line ED1, ED2 1st, 2nd electrode Ei Light emission control signal EL electronic control layer ELL light-emitting element layer ELVDD, ELVSS First and second power supplies EML Light Emitting Layer FC1~FC4 1st~4th functional layer GE1 control electrode GE2 electrode GI1, GI2 First and second gate insulating layers HC hard coat layer HL hole control layer HS housing ILD Interlayer insulating layer IM Image ISC Input Sense Circuit ND node OLED organic light emitting device OP1, OP2 First and second openings PDL Pixel Defined Membrane PF Protective Film PL power line PT support member PX pixels R1, R2 1st, 2nd radius of curvature Si-1, Si, Si+1 scan signals SL, SLi-1, SLi, SLi+1 scan lines T1~T7 1st to 7th transistors TFE sealing layer Vint Initialization voltage VIA circuit insulation layer WD1, WD2 1st and 2nd widths

Claims

1. a display panel that is folded about a first bending axis; a window member disposed on the display panel and including a transparent material; a functional layer disposed on the window member in an unfolded state and spaced apart from the display panel, the functional layer including a hydrophobic material, the functional layer defining a first opening corresponding to the first bending axis; a hard coat layer disposed between the functional layer and the window member, the functional layer includes an anti-fingerprint layer that does not overlap the first opening; the anti-fingerprint layer comprises a hydrophobic material; the hard coat layer contains a hydrophilic substance, The display panel includes: a bending region overlapping the first bending axis; a plurality of non-bending regions adjacent to the bending region with the bending region interposed therebetween, the anti-fingerprint layer does not overlap the bending region but overlaps the non-bending region; The display device, wherein the first opening exposes a hard coat layer corresponding to the bending region.

2. 2. The display device according to claim 1, wherein the hydrophobic material is a fluorine-based compound.

3. 3. The display device according to claim 2, wherein the hard coat layer is made of polyimide.

4. 3. The display device of claim 2, wherein when the display panel is folded with a first radius of curvature R1 around the first bending axis, a width WD1 of the first opening satisfies the range of the following equation 1: [Equation 1]

5. the display panel is folded about a second bending axis spaced apart from the first bending axis; The display device according to claim 2 , wherein a second opening corresponding to the second bending axis is defined in the functional layer.

6. 6. The display device of claim 5, wherein when the display panel is folded with a first radius of curvature R1 based on the first bending axis and a second radius of curvature R2 based on the second bending axis, a first width WD1 of the first opening satisfies a range of the following Equation 1, and a second width WD2 of the second opening satisfies a range of the following Equation 2. [Equation 1] [Equation 2]

7. The second curvature radius R2 is larger than the first curvature radius R1, The display device according to claim 6 , wherein the second width WD2 is greater than the first width WD1.

8. The display device according to claim 2 , wherein the display panel includes an organic light-emitting element.

9. an input sensing circuit disposed between the display panel and the window member to sense an externally applied touch event; The display device of claim 2 , wherein the functional layer provides a touch surface for sensing the touch events.

10. 3. The display device of claim 2, further comprising a shock absorbing member disposed below the display panel and having a predetermined elasticity.

11. A display panel that is folded based on a first bending axis; a window member disposed on the display panel and including a transparent material; a functional layer disposed on the window member in an unfolded state and spaced apart from the display panel, the functional layer including a hydrophobic material, the functional layer defining a first opening corresponding to the first bending axis; a hard coat layer disposed between the functional layer and the window member, the functional layer includes an anti-fingerprint layer that does not overlap the first opening; the anti-fingerprint layer comprises a hydrophobic material; the hard coat layer contains a hydrophilic substance, When the display panel is folded with a first radius of curvature R1 based on the first bending axis, a width WD1 of the first opening satisfies the range of the following equation 1. [Equation 1]

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