Method for controlling a digital device
11120244 · 2021-09-14
Assignee
Inventors
- Min Soo Song (Daejeon, KR)
- Jae Jin Kim (Daejeon, KR)
- Dae Han Seo (Daejeon, KR)
- Sang Choll Han (Daejeon, KR)
Cpc classification
G06F3/041
PHYSICS
G06F2203/04104
PHYSICS
G02B27/4233
PHYSICS
G06V40/1318
PHYSICS
G06F3/0428
PHYSICS
G06F2203/04105
PHYSICS
G06F3/0346
PHYSICS
G06F21/32
PHYSICS
G02B6/00
PHYSICS
G06F3/04845
PHYSICS
International classification
G06F21/32
PHYSICS
G06F3/0346
PHYSICS
G02B6/00
PHYSICS
G02B27/42
PHYSICS
Abstract
A method for controlling a digital device according to the present application can control the device so as to execute a command corresponding to a single fingerprint or a plurality of fingerprints using a sheet capable of simultaneously recognizing a plurality of fingerprints. Accordingly, a user's usability can be greatly improved, and a complicated encryption function using a plurality of fingerprints can be implemented, so that the security of the digital device can be greatly improved.
Claims
1. A method comprising: receiving, at a digital device, a user input corresponding to one or more fingerprints of a user, the user input being received at a touch-screen display comprising an optical fingerprint recognition sheet on a fingerprint contact portion, and a sheet comprising: a lower base layer and a light control layer positioned on top of the lower base layer and having a first light control part and a second light control part, wherein an upper surface of the first light control part is adapted to transmit light received at a first incident angle (θ.sub.0) from the lower base layer through the upper surface of the first light control part at a second incident angle (θ.sub.A) different from the first incident angle (θ.sub.0), and wherein a lower surface of the second light control part is adapted to reflect light received at the second incident angle (θ.sub.A) back at both the second incident angle (θ.sub.A) and a third incident angle (θ.sub.B) different from the second incident angle (θ.sub.A), and wherein the lower surface of the second light control part is further adapted to transmit light received at the third incident angle (θ.sub.B), through the lower surface of the second light control part at the third incident angle (θ.sub.B), identifying, by the digital device, the one or more fingerprints received at the touch-screen display of the device from the light with the third incident angle (θ.sub.B); and executing a command, by the digital device, in response to identification of the one or more fingerprints.
2. The method according to claim 1, wherein executing the command comprises applying one or more heuristic methods.
3. The method according to claim 1, wherein the command is one or a combination of: a one-dimensional vertical screen scrolling command, a two-dimensional screen translation command, a screen enlargement or reduction command, a command to convert from displaying a first item in an item set to displaying a next item in the item set, or a command to convert from displaying a first item in an item set to displaying a previous item in the item set.
4. The method according to claim 1, wherein the command is a user-selected command or a user-designated command.
5. The method according to claim 1, wherein the touch-screen display comprises a pressure sensor on the back of the touch-screen display, and wherein the method further comprises detecting, using the pressure sensor, a pressure exerted by the one or more fingerprints on the touch-screen display, and wherein executing the command is based at least in part on the pressure detected by the pressure sensor.
6. The method according to claim 5, wherein executing the command is in part response to the sensed pressure equaling a preset pressure.
7. The method according to claim 1, wherein the digital device comprises a motion sensor, and wherein the method further comprises detecting, using the motion sensor, a movement of the user, and wherein executing the command is based at least in part on the movement detected by the motion sensor.
8. The method according to claim 7, wherein executing the command is in part response to the detected movement corresponding to a predetermined movement preset in the digital device.
9. The method according to claim 1, wherein the sheet further comprises a transparent base layer, and comprises the lower base layer, the light control layer and the transparent base layer sequentially.
10. The method according to claim 9, further comprising, transmitting the light incident on the lower surface of the first light control part at the first incident angle (θ.sub.0) through the lower base layer as the light with the second incident angle (θ.sub.A) different from the first incident angle (θ.sub.0) toward the transparent base layer, and transmitting the light incident on the upper surface of the second light control part at the second incident angle (θ.sub.A) through the transparent base layer as the light with the second incident angle (θ.sub.A) and the light with the third incident angle (θ.sub.B) different from the second incident angle (θ.sub.A) toward the transparent base layer.
11. The method according to claim 10, wherein each of the first light control part and the second light control part on which the incident light is transmitted comprises a respective diffractive optical element or a refractive optical element.
12. The method according to claim 11, wherein each of the first light control part and the second light control part on which the incident light is transmitted comprises a respective holographic film.
13. The method according to claim 11, wherein the light with the angle (θ.sub.A) emitted from the first light control part is totally reflected from both of the upper surface of the transparent base layer and the upper surface of the lower base layer by satisfying:
θ.sub.A>(180°/π)×sin.sup.−1(n.sub.0/n.sub.1)
and:
θ.sub.A>(180°/π)×sin.sup.−1(n.sub.3/n.sub.1) wherein, n.sub.0 is the refractive index of air, n.sub.1 is the refractive index of the transparent base layer and n.sub.3 is the refractive index of the lower base layer.
14. The method according to claim 13, wherein the light with the angle (θ.sub.A) emitted from the first light control part is totally reflected from the upper surface of the transparent base layer and then penetrate the upper surface of the light control layer by satisfying:
θ.sub.A<(180°/π)×sin.sup.−1(n.sub.2/n.sub.1) wherein, n.sub.1 is the refractive index of the transparent base layer, n.sub.2 is the refractive index of the first light control part or the second light control part in the light control layer, and n.sub.1 is larger than n.sub.2.
15. The method according to claim 14, wherein when an object having a pattern with a different height contacts the transparent base layer, the light with the angle (θ.sub.A) emitted from the first light control part is totally reflected from the upper surface of the transparent base layer that the transparent base layer and the object contact directly by satisfying:
θ.sub.A>(180°/π)×sin.sup.−1(n.sub.h/n.sub.1) wherein, n.sub.1 is the refractive index of the transparent base layer and n.sub.h is the refractive index of the portion whose the object having a pattern with a different height is in direct contact with the transparent base layer.
16. The method according to claim 15, wherein when the object having a pattern with a different height contacts the transparent base layer, the light with the angle (θ.sub.B) emitted from the second light control part is totally reflected from the upper surface of the transparent base layer in contact with air by satisfying:
θ.sub.B>(180°/π)×sin.sup.−1(n.sub.0/n.sub.1) and the light with the angle (θ.sub.B) emitted from the second light control part can penetrate the upper surface of the transparent base layer that the transparent base layer and the object contact directly by satisfying:
θ.sub.B<(180°/π)×sin.sup.−1(n.sub.h/n.sub.1) wherein, n.sub.0 is the refractive index of air, n.sub.1 is the refractive index of the transparent base layer and n.sub.h is the refractive index of the portion whose the object having a pattern with a different height is in direct contact with the transparent base layer.
17. The method according to claim 1, wherein the sheet is provided such that the light with the angle (θ.sub.B) emitted from the second light control part is totally reflected from the upper surface of the transparent base layer and then penetrate the upper surface of the light control layer by satisfying:
θ.sub.B<(180°/π)×sin.sup.−1(n.sub.2/n.sub.1) wherein, n.sub.1 is the refractive index of the transparent base layer, n.sub.2 is the refractive index of the first light control part or the second light control part in the light control layer and n.sub.1 is larger than n.sub.2.
18. The method according to claim 17, wherein the light with the angle (θ.sub.B) emitted from the second light control part is totally reflected from the upper surface of the transparent base layer to penetrate the light control layer and the lower base layer by satisfying:
θ.sub.B<(180°/π)×sin.sup.−1(n.sub.3/n.sub.1) wherein, n.sub.1 is the refractive index of the transparent base layer and n.sub.3 is the refractive index of the lower base layer.
19. The method according to claim 1, wherein the digital device further comprises a light source part and the light source part is located on the opposite one surface of one surface of the lower base layer where the first light control part contacts.
20. The method according to claim 19, further comprising the light source part transmitting vertical light to the first light control part.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4) Hereinafter, a sheet according to one embodiment of the present application and a device comprising the same will be described in detail with reference to the accompanying drawings. For ease of explanation, the size or shape of each configuration shown may be exaggerated or reduced.
BEST MODE
(5) The present application relates to a method for controlling a digital device. In the present application, the term digital device includes, for example, all devices that perform at least one or more of transmission, reception, processing and output of data, contents, services, applications, and the like. The digital device can be subjected to pairing or connecting (hereinafter, referred to as ‘pairing’) with another digital device, an external server, or the like through a wire/wireless network, thereby transmitting/receiving predetermined data. At this time, if necessary, the data may be appropriately converted before the transmission/reception. The digital device may include, for example, both of a standing device such as a network TV, an HBBTV (hybrid broadcast broadband TV), a smart TV, an IPTV (internet protocol TV) and a PC (personal computer), and a mobile device (or handheld device) such as a PDA (personal digital assistant), a smartphone, a tablet PC and a notebook.
(6) An exemplary digital device control method of the present application may be a method implemented in a digital device having a touch-screen display. The touch-screen display may comprise a sheet 600 capable of simultaneously recognizing a plurality of fingerprints, the sheet 600 may be a sheet comprising: a lower base layer; and a light control layer 200 positioned on the lower base layer 300 and having a first light control part 210 and a second light control part 220, the first light control part 210 may be provided so as to emit the light that is incident on the lower surface of the first light control part 210 at a first incident angle (θ.sub.0) as the light with a second incident angle (θ.sub.A) different from the first incident angle (θ.sub.0) and the second light control part 220 may be provided so as to emit the light that is incident on the upper surface of the second light control part 220 at the second incident angle (θ.sub.A) as the light with the second incident angle (θ.sub.A) and the light with a third incident angle (θ.sub.B) different from the second incident angle (θ.sub.A). As described below, the sheet 600 may be a sheet which can comprise a base layer having a different refractive index from each other, emit light incident at a first incident angle as light with a second incident angle different from the first incident angle and recognize a fingerprint on the display. In one example, the sheet 600 of the present application may be an optical fingerprint recognition film.
(7)
(8) In one example, the control method of the present application can execute a corresponding command by applying one or more heuristic methods to one or more recognized fingerprints. In the present application, the term heuristic method (approximation, discovery or intuition method) may mean a hypothetical decision based on a probability and may mean a statistical algorithm for determining a command corresponding to a user's specific behavior. For example, when the user sweeps on a touch-screen the screen to the left, the heuristic method may mean a method such as a method of moving the screen by determining the user's intention even if the user does not move it horizontally exactly.
(9) Also, in the control method of the present application, one or more heuristic methods may be a heuristic method for determining a corresponding command for a single fingerprint or a combination of a plurality of fingerprints, respectively. In the case of executing the corresponding command independently by applying one or more heuristic methods to a single fingerprint or a plurality of fingerprints, even when the entire fingerprint is not recognized and only a part of the fingerprint is recognized or when positional information on a plurality of fingerprints is different, it is possible to execute a command corresponding to the user's intention, thereby improving the user's usability.
(10) In one example, a command independently corresponding to a single fingerprint or a plurality of fingerprints may comprise unlocking the digital device. In the present application, the fact that a command is independently corresponding to a fingerprint may mean a state in which the same command and/or different commands are inputted to be executed for an individual fingerprint or a combination of different fingerprints. In the present application, the locking of the digital device may mean a locked mode state implemented for the purpose of avoiding activation due to the user's carelessness, or security. In the locked mode state, the digital device may be in an unusable state other than a limited function such as an emergency call. The control method of the present application can simultaneously unlock a digital device by simultaneously recognizing a plurality of fingerprints and implement a complicated encryption function using the plurality of fingerprints. This can enhance the security of digital devices.
(11) In one example of the present application, the command independently corresponding to a single fingerprint or a plurality of fingerprints may be execution of an application. The application may mean a program run on a digital device, which may be exemplified by a utility program, a viewer program and/or a game, and the like, running on the digital device, but is not limited thereto. An exemplary application may include telephone, video conferencing, email, instant messaging, blogging, digital photography, digital video recording, web browsing, digital music playback, digital video playback or digital keyboard playing, but is not limited thereto. By independently executing an application for a single fingerprint or a plurality of fingerprints of a user, the user can run the desired application with a single touch to greatly improve usability.
(12) In another example of the present application, the command independently corresponding to a single fingerprint or a plurality of fingerprints may be a one-dimensional vertical screen scrolling command, a two-dimensional screen translation command, a screen enlargement or reduction command, a command to convert from displaying a first item in an item set to displaying a next item in the item set or a command to convert from displaying a first item in an item set to displaying a previous item in the item set, but is not limited thereto.
(13) In one example, the control method of the present application may further comprise a step of inputting a command corresponding to a single fingerprint or a plurality of fingerprints by a user. The command may be a command previously input into the digital device by the user, which may be a command selected by the user or a command optionally designated by the user among commands previously input in the digital device of the present application. As the user selects a command to be executed on the individual fingerprint or the plurality of fingerprints as above, it is possible to be controlled so as to execute a command that the user wants on the individual fingerprint or the plurality of fingerprints, thereby improving the usability for the digital device.
(14) In another example of the present application, the touch-screen display may comprise a pressure sensor on the back of the display. When a fingerprint is contacted on the display, the pressure sensor may mean a sensor capable of measuring a pressure applied to the display from the fingerprint. The pressure sensor is not particularly limited as long as it can sense the degree of pressure applied to the display. An exemplary pressure sensor may include a capacitive pressure sensor, a piezoelectric pressure sensor, a microelectromechanical system (MEMS)-based pressure sensor, a pressure transducer, a silicon-based pressure sensor, a strain gage, an optical pressure sensor, an inductive pressure sensor, or pressure sensors implemented using other suitable pressure sensing techniques, but is not limited thereto.
(15) When the digital device of the present application comprises a pressure sensor, the digital device may have a preset pressure value. The pressure value may mean an intensity of contact of the fingerprint applied on the touch-screen display, and may mean a force per unit area of the contact. The preset pressure value may be any value set by the user, which may have different values depending on individual users.
(16) In one example, when a fingerprint over a preset pressure of the digital device is recognized, the control method of the present application can execute a command independently corresponding to a combination of a single fingerprint or a plurality of fingerprints and pressure. In addition to the command corresponding to the single fingerprint or the plurality of fingerprints described above, the method executes a command independently corresponding to a combination of the single fingerprint or the plurality of fingerprints and the pressure, whereby more various commands can be input and various commands which can be implemented in the digital device can be driven only by touching the touch-screen display.
(17) In another example of the present application, the digital device of the present application may comprise a motion sensor therein. The motion sensor may be a sensor for sensing a user's movement. The motion sensor is not particularly limited as long as it can sense the user's movement. An exemplary motion sensor can be exemplified by a 3-axis accelerometer, a 3-axis gyroscope, a geomagnetic sensor, and the like, but is not limited thereto.
(18) When the digital device of the present application comprises a motion sensor, the control method of the present application can execute a command independently corresponding to a single fingerprint or a plurality of fingerprints and a user's movement. In addition to the command corresponding to the single fingerprint or the plurality of fingerprints described above, the method executes a command independently corresponding to a combination of the single fingerprint or the plurality of fingerprints and the user's movement, whereby more various commands can be input and various commands which can be implemented in the digital device can be driven only by touching the touch-screen display.
(19) Subsequently, a fingerprint recognition sheet applied to the control method of the digital device of the present application will be described.
(20) In one example related to the present application, the sheet of the present application may be a sheet for optical fingerprint recognition or a sheet for fingerprint input. As described below, the sheet of the present application can be configured so that light derived from an external light source can be present (incident) on the sheet surface layer with two lights (rays) with different angles. One of the lights (rays) can be always totally reflected in the sheet, and the other can be identified by the sensor positioned on the lower part of the sheet, by being determined for total reflection at the surface layer of the sheet depending on a pattern of a material contacting the outside of the sheet and penetrating the lower part of the sheet after being totally reflected.
(21) In this regard,
(22) The sheet 600 of the present application may comprise a lower base layer 300 and a light control layer 200 positioned on the lower base layer 300. In the present application, the term “on” or “above” used in connection with the interlayer lamination position may mean including not only the case where a configuration is formed directly on another configuration but also the case where a third configuration is interposed between these configurations.
(23) The light control layer 200 comprises a first light control part 210 and a second light control part 220. The light control parts 210, 220 may be configurations provided so as to perform a predetermined function only on light incident at a specific angle. Accordingly, as described below, the first light control part 210 can provide light that always totally reflects to the surface layer of the sheet 600. Furthermore, the second light control part 220 can provide to the surface layer of the sheet 600 light in which the total reflection is determined depending on a fingerprint pattern in contact with the sheet surface layer.
(24) As shown in
(25) Since the light control layer 200 of the present application can be divided into two parts 210, 220 in which the angle or path of light, and the like can be controlled differently from each other as above, two lights (A and B) having different angles toward the transparent base layer 100 positioned on the light control layer 200, specifically, with respect to the transparent base layer 100, and more specifically, the surface layer of the sheet 600 can be provided (emitted), as in
(26) In one example, the sheet 600 of the present application may further comprise a transparent base layer 100 that a fingerprint can contact. When the sheet 600 comprises a transparent base layer 100, the transparent base layer 100 may be located on the light control layer 200. That is, the sheet 600 may sequentially comprise a lower base layer 300, a light control layer 200 and a transparent base layer 100. In the present application, the term “transparent” used in relation to the properties of the layer may mean a case where the lower limit of the transmittance to visible light having a wavelength of 380 nm to 780 nm is 65% or more, 70% or more, 75% or more, 80% or more, 85% or more, 90% or more, or 95% or more, and the upper limit is about 100%, which is in a range of less than 100%.
(27) In the case of comprising the transparent base layer 100, the first light control part 210 can emit the light incident on the lower surface of the first light control part 210 at the first incident angle (θ.sub.0) through the lower base layer 300 as the light with the second incident angle (θ.sub.A) different from the first incident angle (θ.sub.0) toward the transparent base layer 100. In one example, the light with the second incident angle (θ.sub.A) can be emitted from the upper surface and/or the side surface of the first light control part 210. Furthermore, when the transparent base layer 100 is directly positioned on the light control layer 200, the lower surface of the transparent base layer 100 can be the light incident surface with respect to the light with the second incident angle (θ.sub.A).
(28) In the case of comprising the transparent base layer 100, the second light control part 220 can emit the light incident on the upper surface of the second light control part 220 at the second incident angle (θ.sub.A) through the transparent base layer 100 as the light (A) with the second incident angle (θ.sub.A) and the light (B) with the third incident angle (θ.sub.B) different from the second incident angle (θ.sub.A) toward the transparent base layer 100. In one example, the light with the second incident angle (θ.sub.A) and the light with the third incident angle (θ.sub.B) can be emitted from the upper surface and/or the side surface of the second light control part 220. That is, the second light control part 220 can convert a part of the light (A) having an incident angle of θ.sub.A into the light (B) having an incident angle of θ.sub.B. The conversion degree, that is, the ratio, in which the light (A) incident at the angle θ.sub.A is converted to the light (B) with the angle θ.sub.B, is not particularly limited, which may be suitably adjusted in a range of more than 0% to less than 100%. At this time, θ.sub.A and θ.sub.B may be an (incident) angle that the light emitted from the first light control part 210 and the light emitted from the second light control part 220 have each in the inside of the transparent base layer 100.
(29) The information of the fingerprint 700 in contact with the transparent base layer 100 can be read by the above configuration. Specifically, a path of light for allowing the fingerprint information to be read according to one example of the present application will be described as follows. That is, the light incident on the first light control part 210 from the light source 500 via the lower base layer 300 is emitted as the light with the angle θ.sub.A that can be always totally reflected from the upper surface of the transparent base layer 100 into the inside of the sheet 600 by the first light control part 210, and the light with the angle θ.sub.A emitted from the first light control part 210 is totally reflected from the upper surface of the transparent base layer 100 irrespective of whether or not the fingerprint 700 and the transparent base layer 100 contact, and is incident on the second light control part 220. And, the second light control part 220 converts a part of the light incident at the angle θ.sub.A into the light with the angle θ.sub.B and emits the light to the transparent base layer 100, and the remaining unconverted light is totally reflected from the upper surface of the lower base layer 300, for example, the interface between the light control layer 200 and the lower base layer 300. Thereafter, the light with the angle θ.sub.B emitted to the transparent base layer 100 is transmitted (or transmitted and scattered) from the ridge 710 of the fingerprint 700, which is a contact portion of the transparent base layer 100 and the fingerprint 700, and is totally reflected from the valley 720 of the fingerprint 700, which is a non-contact portion of the transparent base layer 100 and the fingerprint 700. The light with the angle θ.sub.B totally reflected from the valley portion of the transparent base layer 100 and the fingerprint 700 can pass through the light control layer 200 and the lower base layer 300, and reach the sensor to be identified. In the present application, the term “interface” may mean a boundary surface between two adjacent layers, or a boundary surface between heterogeneous media placed on a path through which light passes.
(30) According to one embodiment of the present application, in order to perform functions as above, the sheet 600 of the present application may be constituted or provided as follows.
(31) In one example, the first light control part 210 and the second light control part 220 may comprise each a diffractive optical element or a refractive optical element.
(32) The refractive optical element may mean an element having a characteristic in which the traveling direction or angle of light is determined by the refractive index difference with the adjacent medium. When the light control part of the present application is a refractive optical element, the light control part may be configured in consideration of refractive indexes between the respective layers so as to satisfy the optical path described in the present application.
(33) The diffractive optical element may mean an element having a characteristic in which the traveling direction or angle of light is determined by the shape of the pattern and the spacing between the patterns. When the light control part of the present application is a diffractive optical element, the light control part may be configured in consideration of refractive indexes between the respective layers and diffraction patterns so as to satisfy the optical path described in the present application.
(34) In one example, the light control layer 200 of the present application may comprise a diffractive optical element. Specifically, the first light control part 210 and the second light control part 220 may comprise diffractive optical elements having different functions from each other, where the diffractive optical element may be a holographic optical element (HOE) in the form of a film. The holography is a technique for recording an interference pattern in a photosensitive medium to reproduce a three-dimensional image called a hologram. Also, the holographic film may mean a film on which a holographic recording is recorded, and may mean a film capable of recording an interference pattern on a film having very small photosensitive particles using recording light and reproducing it using reproduction light. Since the holographic film may perform the function only for the recorded light and may not perform the required function for light other than the recorded light, when the holographic film is used for the first light control part 210 and the second light control part 220, it is particularly advantageous to adjust the angle, the optical path and/or the light quantity of light required in the present application.
(35) The holographic film may comprise a photosensitive material as a recording medium. As the photosensitive material, a photopolymer, a photoresist, a silver halide emulsion, a dichromated gelatin, a photographic emulsion, a photothermoplastic or a photorefractive material, and the like can be used. In one example, the holographic film may comprise a photopolymer as a photosensitive material, and may be, specifically, a film consisting only of a photopolymer, or a film with a double-layered structure comprising a photopolymer layer and a substrate for the layer together. In this case, the substrate used together with the photopolymer may be a transparent substrate and may be, for example, a substrate comprising polycarbonate (PC), polypropylene (PP), polyamide (PA), polyethylene terephthalate (PET) or triacetyl cellulose (TAC), and the like, but is not particularly limited.
(36) In one example, the diffraction efficiencies of the first light control part 210 and the second light control part 220 may be the same or different from each other. Specifically, the first light control part 210 may have the same diffraction efficiency in its entire area and the second light control part 220 may also have the same diffraction efficiency in its entire area, where the diffraction efficiencies of the light control parts 210, 220 may be the same or different from each other.
(37) In one example, the first light control part 210 and the second light control part 220 may be some regions formed by changing only angles or diffraction patterns of recording light on one layer, respectively. Alternatively, the light control layer 200 may also be formed by directly attaching the first light control part 210 and the second light control part 220 or by attaching them via another medium, so that the first light control part 210 and the second light control part 220, which are separately manufacture, may form a single layer.
(38) When the transmittance described above is satisfied, the kind of the transparent base layer is not particularly limited. For example, it may comprise glass or a polymer resin. As the polymer resin, a polyester film such as PC (polycarbonate), PEN (poly(ethylene naphthalate)) or PET (poly(ethylene terephthalate)), an acrylic film such as PMMA (poly(methyl methacrylate)) or a polyolefin film such as PE (polyethylene) or PP (polypropylene) may be used, without being limited thereto. In one example, the transparent base layer may have a configuration in which a number of glass or polymer resins are laminated. Even in the case of having such a laminated structure, the transparent base layer may be provided so as to perform the functions required in the present application and satisfy the following relational expressions.
(39) In one example, the lower base layer 300 may be a pressure-sensitive adhesive layer satisfying refractive indexes and relational expressions to be described below. The kind or composition of the pressure-sensitive adhesive layer is not particularly limited and may be, for example, an acrylic pressure-sensitive adhesive layer or a silicone pressure-sensitive adhesive layer. In another example, the lower base layer 300 may further comprise, in addition to the pressure-sensitive adhesive material, the above-described transparent resin film, where these may function as a substrate for the pressure-sensitive adhesive material, or may be used for the purpose of imparting other functions. Even in the case of having such a configuration, the lower base layer 300 may be provided so as to perform the function required in the present application and satisfy the following relational expressions.
(40) In the present application, the lower base layer 300, the light control layer 200 and the transparent base layer 100 may have the same or different refractive indexes. In one example, the layers 100, 200, 300 may each independently have a refractive index in a range of more than 1 to 5 or less, or more than 1 to 3 or less, and the interlayer refractive index difference may be 0.0001 to 2 or less. In the case of the light control layer 200, the refractive indexes of the first light control part 210 and the second light control part 220 can be adjusted to be the same or different in a range that can perform the functions required in the present application.
(41) In one example, the refractive index of the lower base layer 300 may be less than the refractive index of the light control layer 200 and/or the refractive index of the transparent base layer 100. That is, the lower base layer 300 may be a low refractive layer. Although not particularly limited, when the refractive index relationship is satisfied, the refractive index difference between the lower base layer 300 and the light control layer 200 may be 0.1 or less.
(42) In one example, the transparent base layer 100 may have a higher refractive index than the light control layer 200. Although not particularly limited, when the refractive index relationship is satisfied, the refractive index difference between the transparent base layer 100 and the light control layer 200 may be 0.05 or less.
(43) In the present application, the thicknesses of the lower base layer 300, the light control layer 200, the transparent base layer 100, or other constituents that may be contained therein is not particularly limited. For example, if the function of the sheet 600 described in the present application is exerted, the thickness of the structure is not limited, where for example, the lower limit may be 0.1 μm or more, or 1 μm or more and the upper limit may be 1,000 μm or less or 500 μm or less.
(44) The sheet 600 of the present application may be configured such that the light with the angle θ.sub.A always totally reflected in the sheet 600 may be present. That is, the light with θ.sub.A can be always totally reflected from the upper surface of the transparent base layer 100, and the light with θ.sub.A can also be totally reflected from the upper surface of the transparent base layer 100, can pass through the light control layer 200 from the transparent base layer 100 and can be totally reflected from the upper surface of the lower base layer 300, for example, the interface between the light control layer 200 and the lower base layer 300.
(45) Specifically, the sheet 600 of the present application can be configured so that the light with the angle θ.sub.A emitted from the first light control part 210 toward the transparent base layer 100 satisfies the following relational expressions 1 and 2. The relational expressions described below can be obtained using Snell's law.
θ.sub.A>(180°/π)×sin.sup.−1(n.sub.0/n.sub.1) [Relational Expression 1]
(46) Relational Expression 1 above defines the condition that the light with the angle θ.sub.A traveling from the transparent base layer 100 to the air side is totally reflected from the upper surface of the transparent base layer 100, for example, the interface between the transparent base layer 100 and the air layer. In Relational Expression 1 above, n.sub.0 is 1 as the refractive index of air, and n.sub.1 is the refractive index of the transparent base layer 100.
θ.sub.A>(180°/π)×sin.sup.−1(n.sub.3/n.sub.1) [Relational Expression 2]
(47) Relational Expression 2 above defines the condition that the light with the angle θ.sub.A totally reflected from the upper surface of the transparent base layer 100 passes through the light control layer 200 from the transparent base layer 100 and is totally reflected from the upper surface of the lower base layer 300 such as the interface between the light control layer 200 and the lower base layer 300. In Relational Expression 2 above, n.sub.1 is the refractive index of the transparent base layer 100, and n.sub.3 is the refractive index of the lower base layer 300.
(48) In one example, in order to satisfy Relational Expression 2 above, the light with the angle θ.sub.A totally reflected from the upper surface of the transparent base layer 100 must penetrate the upper surface of the transparent base layer 100 and/or the light control layer 200. For example, when the refractive index of the transparent base layer 100 is larger than the refractive index of the light control layer 200, the total reflection should not occur at the interface between the transparent base layer 100 and the light control layer 200, and thus θ.sub.A must satisfy the following relational expression 3.
θ.sub.A<(180°/π)×sin.sup.−1(n.sub.2/n.sub.1) [Relational Expression 3]
(49) Relational Expression 3 above defines the condition that the total reflection does not occur at the interface between the transparent base layer 100 and the light control layer 200. In Relational Expression 3 above, n.sub.1 is the refractive index of the transparent base layer 100, n.sub.2 is the refractive index of the first light control part 210 or the second light control part 220 in the light control layer 200, and n.sub.1 is larger than n.sub.2.
(50) In the present application, the light with the angle θ.sub.A may be light totally reflected from the upper surface (contact surface) of the transparent base layer 100 where the transparent base layer 100 and an object contact directly, even when the object having a pattern with a different height contacts the transparent base layer 100. In order to satisfy this, the angle θ.sub.A of the light emitted from the first light control part 210 may satisfy the following relational expression 4.
θ.sub.A>(180°/π)×sin.sup.−1(n.sub.h/n.sub.1) [Relational Expression 4]
(51) In Relational Expression 4 above, n.sub.1 is the refractive index of the transparent base layer 100, and n.sub.h is the refractive index of the portion whose the object having a pattern with a different height is in direct contact with the transparent base layer 100. At this time, the object having a pattern with a different height may be a fingerprint 700 and the portion whose the object having a pattern with a different height is in direct contact with the transparent base layer 100 may be a ridge 710 of the fingerprint 700. On the other hand, the non-contact portion of the object having a pattern with a different height with the transparent base layer 100 may be a valley 720 of the fingerprint 700, and since the valley portion is occupied by the air, the refractive index of the valley portion can be regarded as 1 (=n.sub.0).
(52) As described above, in the present application, the sheet 600 is provided so as to be capable of providing the totally reflected light always totally reflected in the sheet 600 so that the light with the angle (θ.sub.A) provided from the first light control part 210 satisfies the predetermined relational expressions. On the other hand, in the present application, the light with the angle (θ.sub.A) is light in which the total reflection is performed irrespective of whether or not the fingerprint 700 contacts, so that the light quantity in the sheet 600 can be maintained at a certain level. And, as described below, since the light with the angle (θ.sub.B) used for fingerprint recognition originates from the light with the angle (θ.sub.A), the light with the angle (θ.sub.B) for generating the fingerprint image can also have a light quantity kept constant in the sheet 600 irrespective of whether or not the fingerprint 700 contacts.
(53) In the present application, the second light control part 220 may be a configuration to provide light (B) generated regardless of whether or not the fingerprint 700 contacts.
(54) Specifically, the second light control part 220 may be a configuration to provide light with an angle (θ.sub.B) at which the total reflection on the upper surface of the transparent base layer 100 is determined depending on the presence or absence of an object existing on the transparent base layer 100. That is, the light with the angle (θ.sub.B) may be light that when the object does not exist on the transparent base layer 100, it is totally reflected from the upper surface of the transparent base layer 100, for example, the interface between the transparent base layer 100 and the air, but when the object having a pattern with a different height contacts the transparent base layer 100, it is transmitted (or transmitted and scattered) from a direct contact portion (ridge) of the object with respect to the transparent base layer 100.
(55) In one example, the sheet 600 of the present application may be provided so that the light with the angle (θ.sub.B) may be totally reflected from the upper surface of the transparent base layer 100, for example, the interface between the transparent base layer 100 and the air, by satisfying the following relational expression 5. And, when the object having a pattern with a different height contacts the transparent base layer 100, it may be configured so that the light with the angle (θ.sub.B) may be transmitted (or transmitted and scattered) from the upper face portion of the transparent base layer 100 in direct contact with the object, by satisfying the following relational expression 6.
θ.sub.B>(180°/π)×sin.sup.−1(n.sub.0/n.sub.1) [Relational Expression 5]
θ.sub.B<(180°/π)×sin.sup.−1(n.sub.h/n.sub.1) [Relational Expression 6]
(56) However, in Relational Expressions 5 and 6 above, n.sub.0 is 1 as the refractive index of air, n.sub.1 is the refractive index of the transparent base layer 100, and n.sub.h is a refractive index of a ridge portion in direct contact with the transparent base layer 100 in the object having a pattern with a different height. As described above, since the valley portion in the object having a pattern with a different height, which is a non-contact portion with the transparent base layer 100, is occupied by the air, the refractive index of the non-contact portion can be regarded as 1 (=n.sub.0).
(57) Furthermore, in the present application, the sheet 600 may be provided such that the light with the angle (θ.sub.B) emitted from the second light control part 220 and incident on the transparent base layer 100 may be totally reflected from the upper surface of the transparent base layer 100 and then penetrate the upper surface of the light control layer 200. When the refractive index of the transparent base layer 100 is larger than the refractive index of the light control layer 200, the total reflection must not occur at the interface between the transparent base layer 100 and the light control layer 200, so that the angle θ.sub.B can satisfy the following relational expression 7.
θ.sub.B<(180°/π)×sin.sup.−1(n.sub.2/n.sub.1) [Relational Expression 7]
(58) Relational Expression 7 above defines a condition in which the total reflection does not occur at the interface between the transparent base layer 100 and the light control layer 200. In Relational Expression 7 above, n.sub.1 is the refractive index of the transparent base layer 100, n.sub.2 is the refractive index of the first light control part 210 or the second light control part 220 in the light control layer 200, and n.sub.1 is larger than n.sub.2.
(59) In addition, the sheet 600 of the present application may be provided so that when the light with the angle θ.sub.B emitted from the second light control part 220 is totally reflected from the upper surface of the transparent base layer 100, it can penetrate the lower base layer 300. The light penetrating the lower base layer 300 can be recognized by the sensor. In order that the light capable of penetrating the lower base layer 300 is present in the sheet 600, when the light with θ.sub.B is totally reflected from the surface layer of the transparent base layer 100 and enters the upper surface of the lower base layer 300 via the transparent base layer 100 and the light control layer 200, the total reflection should not occur at the interface between the light control layer 200 and the lower base layer 300. In this connection, θ.sub.B can satisfy the following relational expression 8.
θ.sub.B<(180°/π)×sin.sup.−1(n.sub.3/n.sub.1) [Relational Expression 8]
(60) Relational Expression 8 above defines a condition that the light penetrating the lower base layer 300 is present. In Relational Expression 8 above, n.sub.1 is the refractive index of the transparent base layer 100, and n.sub.3 is the refractive index of the lower base layer 300.
(61) When the angle θ.sub.B of the light totally reflected from the upper surface of the transparent base layer 100 as above satisfies Relational Expressions 7 and 8 above, the sensor existing in the lower part of the sheet 600 can recognize the light penetrating the lower base layer 300, as shown in
(62) As such, the present application does not directly use the light always totally reflected in the sheet 600 for fingerprint identification. Specifically, when a part of the light with the angle θ.sub.A provided from the first light control part 210 is converted into the light with the angle θ.sub.B different from θ.sub.A by the second light control part 220 and emitted toward the transparent base layer 100, so that the always totally reflected light may exist, and the light emitted toward the transparent base layer 100 at the incident angle θ.sub.B is totally reflected from the upper surface of the transparent base layer 100 in contact with an external object to the inside of the sheet 600 and transmitted (or transmitted and scattered) to the outside of the sheet 600, the present application uses the light quantity difference of these lights for fingerprint identification. That is, the difference between the light quantity of the light totally reflected from the non-contact portion with the fingerprint and traveling to the sensor and the light quantity of the light transmitted (or transmitted and scattered) from the contact portion with the fingerprint and reduced, among the lights at the angle θ.sub.B, is used for fingerprint identification.
(63) Furthermore, in the present application, the light with the angle θ.sub.B is generated from the light always totally reflected in the sheet 600 regardless of the presence or absence of the fingerprint. Therefore, in the present application, the light quantity of the light used for identifying the fingerprint can be kept constant by using the light always totally reflecting the inside of the sheet 600, and consequently, the difference between the light totally reflected from the interface of the transparent base layer 100 and the air, and the light transmitted (or transmitted and scattered) from the direct contact portion of the transparent base layer 100 and the object, among the lights with the angle (θ.sub.B), can be more clearly recognized by the sensor. Besides, in the present application, the light totally reflected from the interface between the transparent base layer 100 and the air and the light transmitted (or transmitted and scattered) from the contact portion of the transparent base layer 100 and the object, among the lights with the angle (θ.sub.B) generated regardless of the presence or absence of the fingerprint, are used for fingerprint identification, so that even if a number of fingerprint patterns are in contact with the transparent base layer 100, they can be identified without being influenced by each other.
(64) In one example, a projected area (S1) of the first light control part 210 may be smaller than a projected area (S2) of the second light control part 220. In the present application, the term “projected area” may mean, on observing the sheet 600 from the upper part or the lower part in a direction parallel to the normal direction of its surface, an area in which the relevant configuration is viewed, and for example, an orthogonal projection area. Therefore, the increase or decrease of the actual area due to the unevenness of the area comparison target configuration or the like is not considered. Although not particularly limited, S1:S2 may be in a range of 5 to 40:60 to 95.
(65) In another example related to the present application, the digital device of the present application may further comprise a light source part 500. The light source part 500 means a configuration capable of radiating light toward the sheet 600. The specific configuration of the light source part 500 is not particularly limited as long as the above function can be performed. As in
(66) In one example, the device may further comprise a sensor part 400. The sensor part 400 may mean a configuration for sensing the light penetrating the lower base layer 300. The configuration of the sensor part is not particularly limited as long as the above function can be performed, where a known sensor can be used. As in
(67) In one example, the device may comprise a display and a sensor part simultaneously. In this case, the device may sequentially comprise the sensor part and the sheet 600, or may sequentially comprise the sensor part, the display and the sheet 600. In addition, any one of the display and the sensor part may also form one layer with the light source part 500.
(68)
(69) As described above, the invention of the present application has been described with reference to