This non-provisional application is based on and claims priority under 35 U.S.C. ยง119(a) from Patent Application No. 98115936 filed in Taiwan, Republic of China on May 13, 2009, the entire content of which is hereby incorporated by reference.
1. Technical Field
The disclosure relates to a touch panel and a touch display apparatus.
2. Related Art
With the progress of technology, various information apparatuses are created and presented to the public day by day. Among such apparatuses, keyboards and mice or other pointing devices are used to input data in the past few decades. Recently, the touch control technology has been developed and become another popular choice for data input. Moreover, owing to the recent great progress of touch sensors, touch panels using touch sensors gradually become a good tool of human-machine interface.
On the other hand, traditional data input devices, such as keyboards or mice, bring certain difficulty to the users who are not familiar to computers, and this makes an obstacle to popularization of computers. So, to provide an intuitive operating device, touch panels have been developed. The touch panel is a user-friendly input interface, so that users at any age can directly input data or select function items on a touch screen by fingers or a touch pan.
In general, a touch panel includes a display panel (e.g., an LCD panel) and a touch plate disposed on the display surface of the display panel. However, this structure of attaching the touch plate on the display panel not only increases the thickness of the touch panel but also increases the manufacturing cost. Recently, the touch plate is integrated into the display panel to save the manufacturing cost and to decrease the thickness of the touch panel.
As shown in
The TFT substrate 101 is disposed opposite to the CF substrate 102. The driving unit 104 and the active device 108 are disposed on the TFT substrate 101. The active device 108 includes a plurality of TFTs and pixel electrodes. The driving unit 104 outputs a driving signal for driving the TFTs. The touch sensing control unit 103 and the common electrode 105 are disposed on the CF substrate 102.
In the touch panel 1, to reduce the distance from the TFT substrate 101 to the CF substrate 102 to be less than the sum of the heights of the touch sensing control unit 103 and the driving unit 104, the touch sensing control unit 103 and the driving unit 104 need to be staggered. However, the staggered touch sensing control unit 103 and driving unit 104 increase the size of the touch panel 1, contrary to the present trend of compact information apparatuses.
Besides, because the touch sensing control unit 103 and the driving unit 104 are disposed on the CF substrate 102 and the TFT substrate 101, respectively, two bonding processes of disposing the touch sensing control unit 103 on the CF substrate 102 and disposing the driving unit 104 on the TFT substrate 101 are necessary, thereby increasing the number of manufacturing processes and the manufacturing difficulty.
Therefore, there is a need to provide a touch panel and a touch display apparatus with a reduced size and a simplified manufacturing process.
In an aspect, a touch panel includes a TFT substrate, a CF substrate, at least a first touch sensing electrode and at least a first conductive bump. The CF substrate is disposed opposite to the TFT substrate. The first touch sensing electrode is disposed on the CF substrate at a side that faces the TFT substrate. The first conductive bump is disposed between the CF substrate and the TFT substrate and electrically connecting the first touch sensing electrode and the TFT substrate.
In another aspect, a touch display apparatus includes a backlight module and a touch panel. The touch panel is disposed opposite to the backlight module and includes a TFT substrate, a CF substrate, at least a first touch sensing electrode and at least a first conductive bump. The CF substrate is disposed opposite to the TFT substrate. The first touch sensing electrode is disposed on the CF substrate at a side that faces the TFT substrate. The first conductive bump is disposed between the CF substrate and the TFT substrate and electrically connecting the first touch sensing electrode and the TFT substrate.
In a further aspect, a touch display apparatus includes a first substrate and a second, transparent substrate disposed opposite to the first substrate. At least a touch sensing electrode is disposed on the second substrate. At least a conductive bump is disposed between the first and second substrates and electrically connects the touch sensing electrode and the first substrate. A touch sensing control unit is disposed on the first substrate and electrically connected with the touch sensing electrode disposed on the second substrate through the conductive bump. A driving unit is disposed on the first substrate for generating a driving signal to drive the touch display apparatus to display an image viewable through the second, transparent substrate.
Exemplary embodiments of the invention will be described in the following detailed description with reference to the accompanying drawings, which are given for illustration only, and thus are not limitative of the present invention, wherein the same references relate to the same elements and wherein:
Touch panel technology can be divided into a resistive type, a capacitive type, a surface acoustic wave type and an optics type based on sensing principles, and hereinafter, the capacitive type, which is more widely applied in the touch panel and touch display apparatus, will be described for example. The present invention, however, is not limited to the capacitive type of touch panel technology, and covers any and all other types of touch panel technology including those listed above.
The TFT substrate 201 is disposed opposite to the CF substrate 202. In various embodiments, the TFT substrate 201 and/or the CF substrate 202 is/are made of various materials according to the actual demands, for example, glass or plastic.
The first touch sensing electrode 203 and the common electrode 205 are disposed on the CF substrate 202, at the side that faces the TFT substrate 201. The first conductive bump 204 is disposed between the CF substrate 202 and the TFT substrate 201, and is electrically connected with the first touch sensing electrode 203 and the TFT substrate 201. The material of the first conductive bump 204 in some embodiments includes at least one of gold, tin, copper, and alloys thereof. In further embodiments, the first conductive bump 204 is made of other conductive materials. In an exemplary embodiment, the first conductive bump 204 is formed by adding and mixing conductive gold balls into adhesive.
Referring to
The photoresist layer 206 is disposed between the first touch sensing electrode 203 and the common electrode 205. The pixel electrode 208 is disposed on the TFT substrate 201, at the side that faces the CF substrate 202. The liquid crystal layer 207 is disposed between the common electrode 205 and the pixel electrode 208. The photoresist layer 206 functions as color filters and includes a red photoresist, a green photoresist, a blue photoresist, a planarization photoresist, or any of their combinations. Color filter materials other than photoresist are within the scope of the invention.
The sealant 209 is disposed between the TFT substrate 201 and the CF substrate 202 for preventing the liquid crystal layer 207 from leaking out. The BM 210 is disposed between the CF substrate 202 and the first touch sensing electrode 203 for shielding the non-display area. The polarizing plate 211 is disposed on the CF substrate 202, at the side that faces away from the TFT substrate 201. In some embodiments, the BM 210 is integrated with the photoresist layer 206, for example.
Besides, the touch panel 2 further includes a driving unit 213 and a touch sensing control unit 214, both of which are electrically connected with the conductive pattern for transmitting signals. When someone touches the touch panel 2, the first touch sensing electrode 203 generates signals, which are transmitted to the TFT substrate 201 through the first conductive bump 204 and the second conductive bump 212, and then transmitted to the touch sensing control unit 214 through the proper conductive pattern.
The driving unit 213 and the touch sensing control unit 214 are disposed on the TFT substrate 201. The driving unit 213 generates a driving signal to drive at least one thin film transistor of the TFT substrate 201. In some embodiments, the driving unit 213 and the touch sensing control unit 214 include separate chips or integrated circuits (ICs). In further embodiments, the driving unit 213 and the touch sensing control unit 214 are integrated to the same chip or IC.
Without a human body part touching the touch panel 2, the whole first touch sensing electrode 203 is equipotential and no current occurs on the first touch sensing electrode 203. When a human body part, which always carries electric charges, touches the touch panel 2, the static electricity in the human body part is grounded through the touch panel 2 and a weak current is generated and passes through the first touch sensing electrode 203. Meanwhile, the touch sensing control unit 214 receives the sensing signal from the first touch sensing electrode 203 through the first conductive bump 204 and the TFT substrate 201, and determines the touch location according to the variation of electric charges on the first touch sensing electrode 203.
The touch panel 2 is configured in some embodiments to have a single piece of the touch sensing electrode as mentioned above. In further embodiments, it is configured to have the touch sensing electrodes staggered.
Referring to
In the case of the touch sensing electrodes intersecting with each other, the gap between the touch sensing electrodes 203, 215 will change when the touch panel is touched, and this leads to a resistance-capacitance delay (RC delay) by which the touch sensing control unit 214 can determine which point is touched.
To be noted, the first touch sensing electrode 203 and/or the second touch sensing electrode 215 has a narrow width in the area C (
As shown in
In general, the backlight module 32 is a direct type or a side-edge type according to the arrangement of the light source(s). The backlight module 32 of the embodiment specifically illustrated in
The light source 321 generates light rays L1 that pass through the diffusing plate 322 and the set of optical films 323 sequentially to turn into well mixed light rays, which then reach the touch panel 31.
Because the touch panel 31 has the features of the touch panel 2 as mentioned in the above embodiments, detailed descriptions are omitted here.
In summary, for the touch panel and the touch display apparatus according to embodiments of the invention, a sensing signal of the first touch sensing electrode is transmitted to the TFT substrate through at least the first conductive bump, and then transmitted to the touch sensing control unit. In comparison with the known arrangement, the driving unit and the touch sensing control unit can be disposed on the same substrate, and can be even integrated to the same IC, thereby reducing the height as well as the size of the touch panel and the touch display apparatus, and simplifying the manufacturing process thereof.
It should be noted that while the exemplary embodiments specifically disclosed herein include LCD displays, it is within the scope of the present invention to provide embodiments that use other types of display device including, but not limited to, plasma displays, organic light emitting diode displays (OLEDs), electroluminescent displays (ELDs) etc. Likewise, while the exemplary embodiments specifically disclosed herein include backlight modules, it is within the scope of the present invention to provide embodiments that do not need a backlight modules depending on the display technology being used, e.g., OLED or ELD, etc.
Although specific embodiments have been described, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiments, as well as alternative embodiments, will be apparent to persons skilled in the art. It is, therefore, contemplated that the appended claims will cover all modifications that fall within the true scope of the invention.
Number | Date | Country | Kind |
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98115936 | May 2009 | TW | national |