This application is based on and claims priority to Chinese Patent Application No. 201510835111.9, filed on Nov. 26, 2015, which is incorporated herein by reference in its entirety.
The present disclosure relates to a technical field of display, and more particularly, to a liquid crystal display (LCD) component and an electronic device.
An electronic device may be equipped with an optical proximity sensor which may detect the presence of a nearby object for the electronic device.
In the related technology, the optical proximity sensor is disposed in an aperture opened on the upper margin of the front surface of the electronic device's housing. For example, for a mobile phone, the optical proximity sensor is generally disposed in an aperture opened on the surface of the mobile phone's housing on which the display screen is located.
According to a first aspect of embodiments of the present disclosure, a liquid crystal display (LCD) component is provided. The LCD component may include: an upper substrate; a lower substrate arranged in parallel with the upper substrate; a liquid crystal layer interposed between the upper substrate and the lower substrate; an upper polarizer attached to a surface of the upper substrate which is not adjacent to the liquid crystal layer; and a lower polarizer attached to a surface of the lower substrate which is not adjacent to the liquid crystal layer; a control chip; and at least one optical proximity sensor arranged between the upper polarizer and the lower polarizer, and each optical proximity sensor is electrically connected with the control chip respectively.
According to a second aspect of embodiments of the present disclosure, an electronic device is provided. The electronic device may include the LCD component of the first aspect.
It is to be understood that the above general description and the following detailed description are merely for the purpose of illustration and explanation, and are not intended to limit the scope of the protection of the disclosure.
The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the invention and, together with the description, serve to explain the principles of the invention.
Reference will now be made in detail to example embodiments, examples of which are illustrated in the accompanying drawings. The following description refers to the accompanying drawings in which same numbers in different drawings represent same or similar elements unless otherwise described. The implementations set forth in the following description of example embodiments do not represent all implementations consistent with the present disclosure. Instead, they are merely examples of devices and methods consistent with aspects related to the present disclosure as recited in the appended claims.
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Thus, with the optical proximity sensor arranged between the upper polarizer and the lower polarizer, the LCD component provided by the present disclosure may enable the optical proximity sensor not to be confined to some aperture for proximity detection of an object, thus there is no need for opening apertures for optical proximity sensors separately anymore. Without the aperture, the size of the front panel of the electronic device is saved and the overall design aesthetic of the electronic device is improved.
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The transmission terminal 261 of the optical proximity sensor 260 is used to transmit an optical signal. When there is an object approaching, the reception terminal 262 is used to receive a reflected signal. The reflected signal is formed due to the optical signal being stopped by the object. Thus, the electronic device can detect the presence of a nearby object by detecting whether the reception terminal 262 of the optical proximity sensor 260 receives the reflected signal.
The optical proximity sensors 260 are arranged between the upper polarizer 240 and the lower polarizer 250, and electrically connected with the control chip 270 respectively. The optical proximity sensors 260 are used to convert the optical signal to an electric signal and provide the electric signal to the control chip 270.
The arrangement of the optical proximity sensors 260 are introduced below.
For example, the optical proximity sensors 260 may be arranged on the upper surface of the lower glass substrate 221, at the moment, the transmission terminal 261 and the reception terminal 262 of each of the optical proximity sensors 260 are arranged on the upper surface of the lower glass substrate 221. Alternatively, the optical proximity sensors 260 may be arranged on the CF 212, then the transmission terminal 261 and the reception terminal 262 of each of the optical proximity sensors 260 are arranged on the CF 212, and so on.
Alternatively, when there are multiple optical proximity sensors 260, for example, when the number of the optical proximity sensors 260 is n (n≧2), the n optical proximity sensors 260 are arranged evenly and dispersedly. The at least one transmission terminal 261 of each optical proximity sensor 260 is arranged on at least one of the first black matrix 212b and the second black matrix 223, and the at least one reception terminal 262 of each optical proximity sensor 260 is arranged on at least one of the first black matrix 212b and the second black matrix 223.
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For example, the at least one transmission terminal 261 of each optical proximity sensor 260 are all dispersedly arranged on the first black matrix 212b, and the at least one reception terminal 262 are all dispersedly arranged on the second black matrix 223. Alternatively, the at least one transmission terminal 261 of each optical proximity sensor 260 are all dispersedly arranged on the second black matrix 223, and the at least one reception terminal 262 are all dispersedly arranged on the first black matrix 212b.
For example, the at least one transmission terminal 261 and the at least one reception terminal 262 of each of a part of the optical proximity sensors 260 are evenly and dispersedly arranged on the first black matrix 212b, and the at least one transmission terminal 261 and the at least one reception terminal 262 of each of another part of the optical proximity sensors 260 are evenly and dispersedly arranged on the second black matrix 223.
The at least one transmission terminal 261 of each of a part of the optical proximity sensors 260 are all dispersedly arranged on the first black matrix 212b, and the at least one reception terminal 262 are all dispersedly arranged on the second black matrix 223; and the at least one transmission terminal 261 of each of another part of the optical proximity sensors 260 are all dispersedly arranged on the second black matrix 223, and the at least one reception terminal 262 are all dispersedly arranged on the first black matrix 212b.
The embodiment is not intended to limit the arrangement of the at least on transmission terminal 261 and the at least reception terminal 262 of the optical proximity sensor 260.
By arranging multiple optical proximity sensors 260 and arranging them evenly and dispersedly, detection of presence of a nearby object by the optical proximity sensor 260 is not confined to some aperture any more, but performed in the area of the entire LCD panel of the electronic device. This may avoid reduction of the amount of the reflected signal due to the optical proximity sensor 260 being arranged in an aperture in related art, wherein the reflected signal is received by the reception terminal 262 of the optical proximity sensor 260 and from the optical signal transmitted by the transmission terminal 261. Accordingly, this may improve the artistic performance of the electronic device.
In addition, the transmission terminal 261 and the reception terminal 261 of the optical proximity sensor are arranged on the second black matrix 223 or the first black matrix 212b, so as to protect the light transmittance of the LCD panel from being disturbed by the arrangement of the optical proximity sensor 260, and further ensure the display ability of the LCD panel.
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In addition, the control chip 270 may be a Microcontroller Unit (MCU) (also called a single chip microcomputer or a single chip), which is a chip level computer. In a possible implementation, for example, a MCU can control the backlight brightness based on the distance between the LCD and a finger calculated by the optical proximity sensors, the reception terminal 261 of each optical proximity sensor 260 collects the reflected signal of the optical signal transmitted by the transmission terminal 260, and the MCU may acquire the reflected signal from each optical proximity sensor 260, perform a computation process to the reflected signal, and determine whether there is a nearby object within a predetermined distance from the LCD panel based on the result of the computation process, and then control the backlight source 290 to shine or not based on the determined result. For example, when the computation result of the MCU is that there is a nearby object within 1 cm from the LCD panel, the MCU controls the backlight source 290 not to shine, and when the computation result of the MCU is there is not a nearby object within 1 cm from the LCD panel, the MCU controls the backlight source 290 to shine.
Alternatively, the predetermined distance may not be preset in the LCD, that is, the MCU determines the presence of a nearby object when the MCU receives the reflected signal of the reception terminal 262 of the optical proximity sensor 260.
In addition, the display area corresponding to the LCD component may be a complete display area. The display area is arranged with at least one backlight source 290 correspondingly, each of which is used to control the backlight brightness of the entire display area.
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Thus, with the optical proximity sensor arranged between the upper polarizer and the lower polarizer, the LCD component provided by the present disclosure may enable the optical proximity sensor not to be confined to some aperture for proximity detection of an object, thus there is no need for opening apertures for optical proximity sensors separately anymore. Without the aperture, the size of the front panel of the electronic device is saved and overall design aesthetic of the electronic device is improved.
In addition, the at least one transmission terminal of the optical proximity sensor is arranged on at least one of the first black matrix and the second black matrix, and the at least one reception terminal of the optical proximity sensor is arranged on at least one of the first black matrix and the second black matrix, so as to protect the light transmittance of the LCD panel from being disturbed by the arrangement of the optical proximity sensors, and further ensure the display ability of the LCD panel, and also enable the reception terminal of the optical proximity sensor not to be limited by the transmission angle and the reception angle when receiving the reflected signal of the optical signal transmitted by the transmission terminal. This avoids that the optical proximity sensors cannot detect, within the entire LCD panel of the electronic device, the nearby object due to the angle limitation to the transmission of the optical signal by the transmission terminal of the optical proximity sensor and the reception of the reflected signal by the reception terminal. Accordingly, the amount of the reflected signal received by the reception terminal is increased to enable the optical proximity sensor to detect the nearby object within the entire LCD panel.
According to another embodiment, an electronic device is provided. For example, the electronic device may be a mobile phone, a computer, a digital broadcast terminal, a messaging device, a gaming console, a tablet, a medical device, an exercise equipment, a personal digital assistant, and the like. The electronic device includes the LCD component provided in the embodiments shown in
Other embodiments will be apparent to those skilled in the art from consideration of the specification and practice of the disclosures herein. This application is intended to cover any variations, uses, or adaptations of the disclosure following the general principles thereof and including such departures from the present disclosure as come within known or customary practice in the art. It is intended that the specification and examples be considered as exemplary only, with a true scope and spirit of the invention being indicated by the following claims.
It will be appreciated that the disclosure is not limited to the exact construction that has been described above and illustrated in the accompanying drawings, and that various modifications and changes can be made without departing from the scope thereof. It is intended that the scope of the invention only be limited by the appended claims.
Number | Date | Country | Kind |
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201510835111.9 | Nov 2015 | CN | national |