1. Field of the Invention
The present invention relates to a data driver (source driver) and, more particularly, to a current driver system with high uniformity reference current adapted for flat panel displays, and its current driver.
2. Description of Related Art
Technologies have originated from humanity chase for the ultimate goal of more safe and comfortable living. In daily life, image transmission brings a lot of funs to people in addition to digital communication function. Typical image transmission interface employs cathode ray tubes (CRTs) for display. However, the CRT may produce radiation and has a large volume. Therefore, CRTs are increasingly replacing by flat panel displays (such as liquid crystal displays (LCDs) and organic light-emitting diodes (OLEDs)).
Driving used by existing drivers can essentially be divided into voltage driving (e.g., LCDs) and current driving (e.g., OLEDs). In a voltage driving panel, drivers need the same reference voltage such that their analog output voltages are the same. In a current driving panel, drivers need the same reference current such that their output currents are the same, thus obtaining preferred frame uniformity.
However, control voltage can be provided by an external circuit or corresponding current-type source driver itself. In this case, control voltages for the current-type source drivers 21, 22, 23 may have certain difference. Further, for convenience of regulating the reference current, input resistors 211, 212, 213 are external in general. However, values of the input resistors are impossible to be identical, which can have a variance from about +/−1% to about +/−5%. Accordingly, reference currents for current-type source drivers 21, 22, 23 are different, which causes outputting different currents and thus presents uneven frames so that a uniformity requirement for a resolution over 6 bits cannot be met.
Therefore, it is desirable to provide improved current-type source drivers with the same reference current, to mitigate and/or obviate the aforementioned problems and obtain preferred uniform frames.
The object of the present invention is to provide a current drive system with high uniformity reference current and its current driver, which can output the same current to obtain preferred display uniformity.
According to a feature of the present invention, a current drive system with high uniformity reference current is provided. The system includes a first current driver and at least one second current driver. The first current driver has a first reference current generator unit and a first current mirror unit. The first reference current generator unit generates a pre-stage reference current Iref and a first reference current I1, where I1=K1*Iref and K1 is a current regulating parameter of the first reference current generator unit. The first current mirror unit receives the first reference current I1 and accordingly generates a second reference current I2=K2*I1, where K2 is a current copy parameter of the first current mirror unit. The second current driver has a second reference current generator unit. The second reference generator unit receives the second reference current I2 and accordingly generates a third reference current I3=K3*I2, where K3 is a current regulating parameter of the second reference current generator unit and K2*K3=1.
According to another feature of the present invention, a current driver is provided to connect in series to a next current driver in order to form a current driving system, which provides an output current to drive a display panel. The current driver includes a reference current generator unit and a current mirror unit. The reference current generator unit generates a pre-stage reference current Iref and accordingly generates a first reference current I1=K1*Iref, where K1 is a current regulating parameter of the reference current generator unit. The current mirror unit inputs the first reference current I1 and accordingly generates a second reference current I2=K2*I1, where K2 is a current copy parameter of the current mirror unit. The second reference current I2 is inputted to the next current driver in order to generate a third reference current I3=K3*I2, where K3 is a current regulating parameter of reference current generator unit of the next current driver and K2*K3=1.
Other objects, advantages, and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
In the inventive preferred embodiment, an example of data drivers (source drivers) on an organic light-emitting diode (OLED) panel is given. In this case, data driver is a current driver.
An input terminal 3121 of the current mirror unit 312 is connected to an output terminal 3112 of the reference current generator unit 311. An output terminal 3122 of the current mirror unit 312 is connected to an input terminal 3211 of the reference current generator unit 321 of the second current driver 32. An output terminal 3212 of the reference current generator unit 321 is connected to an input terminal 3221 of the current mirror unit 322. An output terminal 3222 of the current mirror unit 322 is connected to an input terminal of reference current generator unit of next current driver. Namely, connection between the inventive current drivers 31, 32 is cascade, such that the post-stage current driver 32 can receive an output current of the pre-stage current driver 31 for being used as the reference current Iref for operation. Operations between the current drivers 31 and 32 are further described as follows.
In the first current driver 31, the reference current generator unit 311 can generate the reference current Iref through the reference resistor Rref and the reference voltage Vref and then generate the reference current I1 through its internal circuitry. Thus, the reference current generator unit 311 can operate in accordance with the reference current I1 and accordingly generate an output driving current to drive an OLED panel. The reference voltage Vref can be provided by an external circuit or a reference voltage source generated by the current driver 31. Because the reference current generator unit 311 has the current regulating parameter K1, this results in the reference current I1=K1×Iref. The current mirror unit 312 has a current copy parameter K2 and accordingly outputs a reference current I2=K2×I1. Values of the current regulating parameter K1 and the current copy parameter K2 can be controlled by an area ratio of transistor, i.e., a ratio of W/L. The reference current I2 is inputted to the reference current generator unit 321 of the next current driver 32 as the reference current Iref.
Because the current drivers 31 and 32 are cascaded, input current received by the reference current generator unit 321 is the same as output current of the current mirror unit 312. Namely, the reference current generator unit 321 regards the reference current I2 outputted by the current mirror unit 312 as the reference current Iref. The reference current generator unit 321 has a current regulating parameter K3 and accordingly outputs a reference current I3=K3×I2. The reference currents I3 and I1 have the same value, i.e., I3=I1=K2×I2=K2×K3×I1 and K2×K3=1. As such, when K2×K3=1 is met by regulating the parameter K2 or K3, the current drivers 31 and 32 can obtain the same reference current, i.e., I1=I3.
The reference current I3 generated by the reference current generator unit 321 generates a driving current for output to drive an OLED panel and input to the current mirror unit 322 to further generate a reference current I4. The reference current I4 is outputted to next current driver (not shown) after the current driver 32. The current mirror unit 322 has a current copy parameter K4 and accordingly output a reference current I4=K4×I3.
The current mirror unit 312 is a cascade mirror circuit consisting of 4 N-type MOSFETs (NMOSFETs) 3125, 3126, 3127, 3128. A multiple (K2) of the output current I2 to input current I1 of the current mirror unit 312 is determined by geometric profile of the NMOSFETs, such as an area ratio of NMOSFET 3126 to NMOSFET 3128.
Similarly, the reference current generator unit 321 of the current driver 32 consists of an operating amplifier 3213 and PMOSFETs 3214, 3215, 3216, 3217. The unit 321 does not need to connect an external reference resistor but inputs the reference current I2 generated by the pre-stage current mirror unit 312 for generating the reference current I3 to the current mirror unit 322 as an input, which results in I3=K3×I2. A value of the regulating parameter K3 is determined by an area ratio of PMOSFETs 3214, 3215 to PMOSFETs 3216, 3217. Thus, K2×K3=1 is obtained by arranging values of the current copy parameter K2 and the current regulating parameter K3, such that the reference current I1 equals to the reference current I3.
The cited PMOSFETs of the current drivers 31, 32 can be replaced with NMOSFETs, as shown in circuitry of
Cascade number of current drivers is implemented based on required resolution. Other circuitry inside the current drivers is known to those skilled in the art and thus a detailed description is deemed unnecessary.
In view of the foregoing, it is known that the invention implements a reference current generator unit and a current mirror unit in each current driver (source driver or data driver), such that current copy parameter and current regulating parameter are applied to enable different current drivers to have the same reference current and accordingly have the same output current, thereby obtaining display uniformity.
Although the present invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.
Number | Date | Country | Kind |
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92121468 | Aug 2003 | TW | national |