This application claims the benefit of Taiwan application Serial No. 93,116,403, filed Jun. 8, 2004, the subject matter of which is incorporated herein by reference.
The invention relates in general to a digital to analog converter, and more particularly to a current-driven thermometer code digital to analog converter.
Organic light emitting diode (OLED) displays are among currently prevailing flat panel displays. Since the brightness of an OLED is proportional to the current conducted thereby, variations of current level have great impact on uniformity of an OLED display, and improvement of a current-driving structure increases display uniformity. Thus, the quality of a current-driven digital to analog converter is critical to current output and display quality.
A thermometer code digital to analog converter is current driven and has advantages such as fast response and accurate current output. The operational duration of current sources in a conventional structure, however, differ.
Take a 6-bit digital input data (011110) as an example. Operation of the current cell array 206 is shown in
Embodiments of the invention provide a thermometer code digital to analog converter. The operational duration of each current cell in the digital to analog converter is substantially equivalent. The lifetime of thin film devices can be longer and which are less affected by a current stress.
A digital to analog converter according to one embodiment of the invention includes a digital data input, a column decoder, a row decoder, a re-queuing circuit and a plurality of current cells. The digital data input receives digital input data. The decoder decodes the digital input data and generates decoded data. The re-queuing circuit changes sequence of bits of the decoded data and outputs re-queued data. Each current cell includes a current source and an internal logic gate. The internal logic gate determines whether the current source outputs the current according to the re-queued data.
A display, which may be an OLED display, according to another embodiment of the invention includes a pixel array, a scan driver and a data driver. The scan driver sequentially turns on a row of the pixels in the pixel array. The data driver includes a digital to analog converter. The digital to analog converter includes a digital data input, a column decoder, a row decoder, a re-queuing circuit and a plurality of current cells. The digital data input receives column or row digital input data. The column or row decoder decodes the column or row digital input data and generates column or row decoded data. The column or row re-queuing circuit changes sequence of bits in the column or row decoded data and outputs column or row re-queued data. Each current cell includes a current source and an internal logic gate. The internal logic gate determines whether the current source outputs the current according to the column or row re-queued data.
The invention provides a digital to analog converter. The vertical start pulse STV and horizontal start pulse STH of an OLED display are utilized to create a switch signal. The output data generated from the column decoder and the row decoder are re-queued according to the switch signal. Operating duration of each current cell in the digital to analog converter is thus substantially equivalent and circuit lifetime is longer. Output accuracy and reliability are both achieved by using the digital to analog converter according to embodiments of the invention.
The switch signal generator receives an input signal STX, which can be STV or STH. STV is a vertical start pulse and STH is a horizontal start pulse. Output signals of the switch signal generator 308 are complementary signals Bi_dir and XBi_dir. The row re-queuing circuit 310 and column re-queuing circuit 311 are controlled by the signal Bi_dir. The main function of the re-queuing circuits is to re-queue the signals C1˜C8 and R1˜R9 according to the signal Bi_dir and output C1′˜C8′, so-called column re-queued decoded data, and R1′˜R7′, so-called row re-queued decoded data. More specifically, the row re-queuing circuit 310 and column re-queuing circuit 311 are bi-directional circuits, which reverse the output sequence of signals C1˜C8 and R1˜R9 according to the signal Bi_dir. The switch module 314 includes switches SW-1˜SW-8, controlled by the signals Bi_dir and XBi_dir, respectively. Each of the switches SW-2˜SW-7 switches two of the signals R1′˜R7′ and provides the switched signals to the internal logic gates in the current cells in row 2 to row 7 according to the signal Bi_dir. Similarly, the switch SW-1 switches the signal R1′ and an output signal of a first logic gate 312 and provides the switched signals to the internal logic gates in the current cells in row 1 according to the signal Bi_dir. The switch SW-8 switches the signal R7′ and an output signal of a second logic gate 313 and provides the switched signals to the internal logic gates in the current cells in row 8 according to the signal Bi_dir. Alternatively, the switch module 314 is connected to the column re-queuing circuit 311 and the current cell array. The first logic gate 312 receives the signal Bi_dir and outputs a signal to the switch SW-1. The first logic gate 313 also receives the signal Bi_dir and outputs another signal to the switch SW-8. The current cell array includes 64 unit current cells A(1,1)˜A(8,8). Each of the current cells A(1,1)˜A(8,8) includes a current mirror CMR and an internal logic gate LG, as shown in
A display according to another embodiment of the invention is shown in
Embodiments of the invention provide a digital to analog converter. The vertical start pulse STV and horizontal start pulse STH of the OLED display are utilized to create a switch signal. The output data of the column decoder and the row decoder are re-queued according to the switch signal. The operational duration of each current cell in the digital to analog converter is thus substantially equivalent and circuit lifetime is longer. Output accuracy and reliability are both achieved by using the digital to analog converter according to embodiments of the invention.
While the invention has been described by way of example and in terms of preferred embodiment, it is to be understood that the invention is not limited thereto. To the contrary, it is intended to cover various modifications and (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications.
Number | Date | Country | Kind |
---|---|---|---|
93116403 A | Jun 2004 | TW | national |
Number | Name | Date | Kind |
---|---|---|---|
5453743 | Kang | Sep 1995 | A |
5831588 | Hotto | Nov 1998 | A |
5861869 | Scheffer et al. | Jan 1999 | A |
6163283 | Schofield | Dec 2000 | A |
6359467 | McCarroll et al. | Mar 2002 | B1 |
6567304 | Kleveland | May 2003 | B1 |
20020008684 | Udo et al. | Jan 2002 | A1 |
20040100399 | Sun | May 2004 | A1 |
Number | Date | Country |
---|---|---|
466870 | Sep 1988 | TW |
529299 | Oct 1989 | TW |
Number | Date | Country | |
---|---|---|---|
20050270209 A1 | Dec 2005 | US |