The present disclosure relates to the field of display technologies, and more particularly to an organic light-emitting diode display.
Organic light-emitting diode (OLED) displays have broad application prospects. OLED displays emit light by injecting and recombining carriers by driving an organic semiconductor luminescent material under an electric field. According to driving method, OLED displays can be divided into two categories including a passive driving and an active driving, i.e., direct addressing and thin film transistor (TFT) matrix addressing. Active-driven OLED displays are also referred to as active-matrix organic light-emitting diode (AMOLED) displays. Each lighting unit is independently controlled by TFT addressing. For large screen and high resolution displays, active-matrix driving method is often used.
OLED displays can be classified into two types including a bottom emission-type and a top emission-type according to the different emissions of the light. The light emitted by the bottom emission-type OLED is emitted from one side of an underlay substrate, and the light of the top emission-type OLED display is emitted from a top. However, if the OLED display of the bottom emission-type structure is used, an opening area of the OLED display should be disposed away from an area of the TFT, which causes a serious reduction in an aperture of the panel and affects a display performance. On the other hand, it is limited by pixel definition areas of a backplane, fine metal mask openings, and engineering factors such as an alignment accuracy, even if the OLED display of the top emission-type structure is used, the aperture of the display panel is much less than 80%. Therefore, the existing AMOLED display products still have not fully utilized a potential of OLED displays.
Accordingly, it is necessary to provide an OLED device having a high aperture to solve the technical problem in the prior art.
In order to solve technical problems mentioned above, an object of the present disclosure is to provide an OLED device, which integrates structures of a bottom emission-type and a top emission-type, effective light-emitting areas are alternately arranged, thereby increasing a ratio of the effective light-emitting areas and increasing an aperture of the display panel.
In order to achieve the object described above, the present disclosure provides an organic light-emitting diode display, including: a transparent substrate including a first side and a second side opposite to the first side, a top emission-type light-emitting device disposed on the first side of the transparent substrate, and a bottom emission-type light-emitting device disposed on the second side of the transparent substrate. The top emission-type light-emitting device includes: a first thin film transistor, a first passivation layer disposed on the first thin film transistor, a first reflective layer disposed on the first passivation layer and electrically connected to the first thin film transistor, a first organic light-emitting diode layer disposed on the first reflective layer, and a first transparent conductive layer disposed on the first organic light-emitting diode layer. The bottom emission-type light-emitting device includes: a second thin film transistor, a second passivation layer disposed on the second thin film transistor, a second transparent conductive layer disposed on the second passivation layer and electrically connected to second thin film transistor, a second organic light-emitting diode layer disposed on the second transparent conductive layer, and a second reflective layer disposed on the second organic light-emitting diode layer. An orthographic projection of the second thin film transistor of the bottom emission-type light-emitting device on the top emission-type light-emitting device overlaps at least a portion of the first thin film transistor.
In one preferable embodiment of the present disclosure, a light emission direction of the top emission-type light-emitting device is the same as that of the bottom emission-type light-emitting device.
In one preferable embodiment of the present disclosure, the first reflective layer serves as an anode of the top emission-type light-emitting device, and the first transparent conductive layer serves as a cathode of the top emission-type light-emitting device.
In one preferable embodiment of the present disclosure, the organic light-emitting also includes a plurality of top emission-type light-emitting devices and a first pixel definition layer disposed between two adjacent top emission-type light-emitting devices.
In one preferable embodiment of the present disclosure, the second transparent conductive layer serves as an anode of the bottom emission-type light-emitting device, and the second reflective layer serves as a cathode of the bottom emission-type light-emitting device.
In one preferable embodiment of the present disclosure, an orthographic projection of the second thin film transistor on the transparent substrate is prevented from mutually overlapping on another orthographic projection of the second transparent conductive layer on the transparent substrate, or they only overlap each other in a portion that are connected.
In one preferable embodiment of the present disclosure, the organic light-emitting diode display also includes a plurality of bottom emission-type light-emitting devices and a second pixel definition layer disposed between two adjacent bottom emission-type light-emitting devices.
In one preferable embodiment of the present disclosure, an orthographic projection of the first reflective layer on the transparent substrate is prevented from mutually overlapping on another orthographic projection of the second reflective layer on the transparent substrate.
The present disclosure also provides an organic light-emitting diode display includes: a transparent substrate including a first side and a second side opposite to the first side, a top emission-type light-emitting device disposed on the first side of the transparent substrate, and a bottom emission-type light-emitting device disposed on the second side of the transparent substrate. The top emission-type light-emitting device includes a first thin film transistor. The bottom emission-type light-emitting device includes a second thin film transistor. An orthographic projection of the second thin film transistor of the bottom emission-type light-emitting device on the top emission-type light-emitting device overlaps at least a portion of the first thin film transistor.
In one preferable embodiment of the present disclosure, a light emission direction of the top emission-type light-emitting device is the same as that of the bottom emission-type light-emitting device.
In one preferable embodiment of the present disclosure, the top emission-type light-emitting device also includes: a first passivation layer disposed on the first thin film transistor, a first reflective layer disposed on the first passivation layer and electrically connected to the first thin film transistor, a first organic light-emitting diode layer disposed on the first reflective layer, and a first transparent conductive layer disposed on the first organic light-emitting diode layer.
In one preferable embodiment of the present disclosure, the first reflective layer serves as an anode of the top emission-type light-emitting device, and the first transparent conductive layer serves as a cathode of the top emission-type light-emitting device.
In one preferable embodiment of the present disclosure, the organic light-emitting diode display also includes a plurality of top emission-type light-emitting devices and a first pixel definition layer disposed between two adjacent top emission-type light-emitting devices.
In one preferable embodiment of the present disclosure, the bottom emission-type light-emitting device also includes: a second passivation layer disposed on the second thin film transistor, a second transparent conductive layer disposed on the second passivation layer and electrically connected to second thin film transistor, a second organic light-emitting diode layer disposed on the second transparent conductive layer, and a second reflective layer disposed on the second organic light-emitting diode layer.
In one preferable embodiment of the present disclosure, the second transparent conductive layer serves as an anode of the bottom emission-type light-emitting device, and the second reflective layer serves as a cathode of the bottom emission-type light-emitting device.
In one preferable embodiment of the present disclosure, an orthographic projection of the second thin film transistor on the transparent substrate is prevented from mutually overlapping on another orthographic projection of the second transparent conductive layer on the transparent substrate, or they only overlap each other in a portion that are connected.
In one preferable embodiment of the present disclosure, the organic light-emitting diode display also includes a plurality of bottom emission-type light-emitting devices and a second pixel definition layer disposed between two adjacent bottom emission-type light-emitting devices.
In one preferable embodiment of the present disclosure, the top emission-type light-emitting device also includes a first reflective layer, and the bottom emission-type light-emitting device also includes a second reflective layer, and an orthographic projection of the first reflective layer on the transparent substrate is prevented from mutually overlapping on another orthographic projection of the second reflective layer on the transparent substrate.
In comparison to prior art, the present disclosure forms an organic light-emitting diode display into an AMOLED display panel integrating structures of a top emission-type device and a bottom emission-type device. When the organic light-emitting diode display is in operation, a top emission-type light-emitting device and a bottom emission-type light-emitting device on both sides of a transparent substrate emit light in the same direction. The organic light-emitting diode display of the present disclosure has a higher aperture and a doubling of pixel density as compared to the prior art.
The structure and the technical means adopted by the present disclosure to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings.
Please refer to
As shown in
As shown in
As shown in
As shown in
As shown in
In conclusion, the present disclosure forms the organic light-emitting diode display 1 into an AMOLED display panel integrating structures of a top emission-type device and a bottom emission-type device. When the organic light-emitting diode display 1 is in operation, the top emission-type light-emitting device 20 and the bottom emission-type light-emitting device 30 on both sides of the transparent substrate 10 emit light in the same direction. The organic light-emitting diode display 1 of the present disclosure has a higher aperture and a doubling of a pixel density as compared to the prior art,
The above descriptions are merely preferable embodiments of the present disclosure, and are not intended to limit the scope of the present disclosure. Any modification or replacement made by those skilled in the art without departing from the spirit and principle of the present disclosure should fall within the protection scope of the present disclosure.
Number | Date | Country | Kind |
---|---|---|---|
201910466602.9 | May 2019 | CN | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/CN2019/115271 | 11/4/2019 | WO | 00 |