1. Field of the Invention
Embodiments of the present invention generally relate to electron beam testing systems for semiconductor devices on substrates. More particularly, embodiments of the present invention generally relate to an improved prober for conducting a thin film transistor liquid crystal display array test on a variety of glass panel substrate designs.
2. Description of the Related Art
Active matrix liquid crystal displays (LCDs) are commonly used for applications such as computer and television monitors, cell phone displays, personal digital assistants (PDAs), and an increasing number of other devices. Generally, an active matrix LCD comprises two glass plates having a layer of liquid crystal materials sandwiched therebetween. One of the glass plates typically includes a conductive film disposed thereon. The other glass plate typically includes an array of thin film transistors (TFTs) coupled to an electrical power source. Each TFT may be switched on or off to generate an electrical field between a TFT and the conductive film. The electrical field changes the orientation of the liquid crystal material, creating a pattern on the LCD.
The demand for larger displays, increased production and lower manufacturing costs has created a need for new manufacturing systems that can accommodate larger substrate sizes. Current TFT LCD processing equipment is generally configured to accommodate substrates up to about 1.5×1.8 meters. However, processing equipment configured to accommodate substrate sizes up to and exceeding 1.9×2.2 meters is envisioned in the immediate future. Therefore, the size of the processing equipment as well as the process throughput time is a great concern to TFT LCD manufacturers, both from a financial standpoint and a design standpoint.
In order to provide quality control for thin film transistors on a large area glass substrate, it is desirable to conduct a liquid crystal display “array test.” The array test allows a TFT LCD manufacturer to monitor and correct defects in the pixels during processing. A known method of testing pixels is known as electron beam testing, or “EBT.” During testing, each TFT is positioned under an electron beam. This is accomplished by positioning a substrate on a table positioned below the beam, and moving the table in “x” and “y” directions to sequentially position each TFT on the substrate below the electron beam test device. One such device which enables flat panel display fabricators to test devices formed on flat panels is a PUMA™ electron beam tester available from AKT, Inc., a division of Applied Materials, Inc. located in Santa Clara, Calif.
In order for the LCD array test to be conducted, a “prober” is used. A typical prober consists of a frame that usually covers the entire substrate under investigation. The frame has a plurality of pogo pins thereon at locations that match the contact pads of the substrate. Electrical connection to the pogo pins is accomplished by fine wire connections to an electronics driver board. The board is usually software controlled.
In operation, the substrate is raised into contact with the prober. More specifically, the contact pads of the substrate are placed into contact with the pogo pins of the prober. The contact pads, in turn, are in electrical communication with a pre-defined set of the thin film transistors, or “pixels.” An electrical current is delivered through the pogo pins and to the contact pads. The current travels to and electrically excites the corresponding pixels. An electron beam senses voltages in the excited pixels in order to confirm operability of the various thin film transistors on the substrate.
In the past, each prober has been custom made for a particular display layout design. This means that each semiconductor device and substrate layout has required a different prober having the matching configuration for the device array. The result is that the purchaser of semiconductor fabrication machinery must also purchase a compatible prober in order to test the fabricated pixels. Moreover, the customer may desire to purchase more than one prober to serve as a backup or to simultaneously test multiple substrates.
Modification of an individual prober for a new device layout is expensive. Therefore, it is desirable to provide a prober that is configurable to match a new device layout.
The present invention generally provides an improved apparatus and method for an electronic devices test system. The apparatus includes a prober, which operates to test electronic devices, such as pixels on a substrate. The prober is “configurable,” meaning that it can be adapted for different device layouts and substrate sizes.
In one embodiment, a method of testing electronic devices on substrates is described. The method includes placing a configurable prober over a first substrate, testing the first substrate, re-configuring the configurable prober, placing the configurable prober over a second substrate, and testing the second substrate.
In another embodiment, a method of testing electronic devices on rectangular substrates is described. The method includes placing a configurable prober over a first rectangular substrate, adjusting the configurable prober based on a pattern of electronic devices on the first rectangular substrate, testing the first rectangular substrate, placing the configurable prober over a second rectangular substrate, re-configuring the configurable prober by an adjustment based on a pattern of electronic devices on the second rectangular substrate, and testing the second rectangular substrate.
In another embodiment, a method of testing electronic devices on rectangular substrates is described. The method includes placing a first rectangular substrate on a test table disposed below a plurality of testing columns, placing a configurable prober over the first rectangular substrate, adjusting the configurable prober based on a pattern of electronic devices on the first rectangular substrate, testing the first rectangular substrate, placing a second rectangular substrate on the test table, placing the configurable prober over the second rectangular substrate, re-configuring the configurable prober by an adjustment based on a pattern of electronic devices on the second rectangular substrate, and testing the second rectangular substrate.
So that the manner in which the above recited features of the present invention can be understood in detail, a more particular description of the invention, briefly summarized above, may be had by reference to embodiments, some of which are illustrated in the appended drawings. It is to be noted, however, that the appended drawings illustrate only typical embodiments of this invention and are therefore not to be considered limiting of its scope, for the invention may admit to other equally effective embodiments.
The present invention generally provides an improved prober for an electronic devices test system. For purposes of this disclosure, the term “test system” means any system that may be used to test electronic devices on a substrate. Such a test system may include optical inspection systems, electron beam test systems, systems that detect color changes, and others. The prober for the electronic devices test system is “configurable,” meaning that it can be adapted for different device layouts and substrate sizes.
The table 110 supports various plates 120, 130, 140 that translate the prober 400 in different dimensions. The three plates 120, 130, and 140 are planar monoliths or substantially planar monoliths, and are stacked on one another. The three stacked plates are seen in cross-section in
In one aspect, each of the three plates 120, 130, 140 is independently movable along orthogonal axes or dimensions. The first plate supports the second 130 and third 140 plates, as well as the prober 400. The first plate moves the supported second 130 and third 140 plates along a “y” axis.
The second plate 130 supports the third plate 140, and moves the third plate 140 and prober 400 in an “x” axis. Linear bearing surfaces 132 are provided along the “x” axis for the second plate 130. The second plate 130 supports the prober 400 through a collar 135.
Finally, the third plate 140 supports the substrate. A substrate is shown at 150 in
As indicated, a substrate 150 is shown in
It is also understood that the test system 100 contains numerous other features and components. Where the test system is an electron beam test system, the system 100 may include a prober transfer assembly, a load lock chamber, a testing chamber and, optionally, a prober storage assembly, for example. The testing chamber will have electron beam columns for directing electron beams down onto the pixels under inspection. These various features are not shown in
Referring again to
The prober 400 is shown schematically on the table 110, supported by the plates 120, 130, 140. The plates 120, 130, 140 selectively translate the prober 400 in different dimensions. In the illustrative system 100, the prober 400 may be moved in “x,” “y” directions. Operation of the test system 100 in order to move the prober 400 is described in U.S. Pat. No. 6,833,717, which was previously incorporated by reference. As noted above, U.S. Pat. No. 6,833,717, which was previously incorporated by reference, is referred to and incorporated by reference herein to the extent its disclosure is not inconsistent with the present disclosure.
It should be noted that the test system 100 further includes an end effector 170. A portion of the end effector is shown in cross-section in
The end effector 170 cooperates with the third plate 140 during substrate transfer. In this respect, the third plate contains one or more z-axis lifts 142 coupled to the plate 140. Each z-axis lift 142 is disposed within a channel 146. A bellows 148 is arranged about each lift 142 to reduce particle contamination within the testing chamber. The z-axis lift 142 moves up and down vertically and may be actuated pneumatically or electrically. The bellows 148, in turn, compress and expand in response to the movement of the corresponding lifts 142. In the view of
The illustrative test system 100 of
Moving now to
The prober 400 also includes one or more prober bars 420. In the view of
The position of the prober bars 420 along the frame 410 may be changed. In this respect, the connection between the respective prober bars 420 and the frame 410 is releasable and relocatable. To provide for this feature, a frame connection mechanism 412 is provided that allows for ready relocation of at least one prober bar 420 to the frame 410 at a selected coordinate along the “x” or “y” axes of the frame. In one embodiment, the frame connection mechanism 412 is a plurality of through-holes placed along or formed within the inner surface of the frame 410. Exemplary through-holes are shown at 414 in the enlarged view of
In order to relocate a prober bar 420 along the frame 410, the bolts 444 are backed out of the holes 414 of the frame 410, and then advanced into different holes 414 located in the frame connection mechanism 412. In this manner, the position of the prober bars 420 along the “x” axis of the frame 410 may be adjusted. This, in turn, permits the user to employ the same prober 400 for different substrate sizes and for different device configurations.
In accordance with the present invention, prober bars 420 may also be positioned in the “x” direction of the prober frame 410, meaning that the prober bars are oriented parallel to the “x” axis.
As an additional option, “x” prober bars 430 may be placed between “y” prober bars 420, or between a “y” prober bar 420 and the frame 410 as shown in
The prober 400 has a plurality of electrical connection pads 472. The pads 472 are configured to place the frame 410 in electrical communication with the testing system 100. Each of the pads 472 has a plurality of “frame” pins 470 (seen in
The frame electrical connection is done in such a way as to allow for a wide range of possible display layouts, such as from 25 to 1 display per sheet, and from 14″ to about 50″ display. More generally, the electrical connection is configurable for any display configuration that the prober frame size will accommodate.
The prober 400 also has a plurality of electrical contact pins, or “pogo” pins 480. These pogo pins 480 are placed along each of the prober bars 420, 430.
The pogo pins 480 are configured to place the frame 410 in electrical communication with selected pixels or TFT's (or other devices) formed on the substrate 150. The pogo pins 480, in turn, are in electrical communication with the controller via the frame pins 470. As the substrate 150 is urged against the prober 400 (shown in
In one test protocol, the substrate 150 is tested by sequentially impinging at least one electron beam emitted from columns 200 (shown in
While the foregoing is directed to embodiments of the present invention, other and further embodiments of the invention may be devised without departing from the basic scope thereof. For example, the frame 410 may be provided of sufficient universal size to accommodate large area glass substrates of any dimension. When a user is faced with electron beam testing of a substrate having a different dimension or a different device layout, then the user may adjust the location of the bars 420 or 430 without having to purchase an entire new prober. Where additional bars are needed, then additional bars can be purchased at an expense that is much less than an entire new prober.
In addition, an electronic devices test system 100 has been described. The test system 100 is used to test electronic devices on a substrate, such as a glass substrate 150. The test system 100 utilizes a configurable prober 400 as described above in its various embodiments. The test system 100 includes both the prober 400 and the test system table 110. In one aspect, the test system 100 further has one or more electron beam columns.
A method for testing electronic devices is also provided. The method includes the steps of providing a test system table 110 in a test system 100; placing a “y” table 120 on the test system table 110, the “y” table 120 being selectively movable along the test system table 110 parallel to a “y” axis; placing an “x” table 130 on the “y” table 120, the “x” table 130 being selectively movable along the “y” table 120 parallel to an “x” axis; placing a configurable prober 400 on the “x” table 130; and placing a substrate 150 to be tested above the “x” table 130, the substrate 150 having contact pads (not visible) and a plurality of electronic devices (also not visible) in electrical communication with selected contact pads.
The prober 400 is in accordance with the prober 400 described above, in its various embodiments. Generally, the prober 400 has a frame 410, at least one prober bar 420 or 430 having a first end and a second end, a frame connection mechanism 412 that allows for ready relocation of the at least one prober bar 420 or 430 to the frame 410 at a selected coordinate along the frame 410, and a plurality of pogo pins 480 along the at least one prober bar 420 or 430 for placing selected electronic devices in electrical communication with a system controller during testing. In one aspect, the method further includes the step of placing at least some of the plurality of pogo pins 480 in electrical communication with the contact pads.
Preferably, the method further includes the step of placing a “z” plate 140 on the “x” plate 130. In this arrangement, the substrate 150 is placed on the “z” plate 140. In one embodiment, the method further includes the step of raising the “z” plate 140 in order to raise the substrate 150 and place the pogo pins 480 in electrical communication with the contact pads. Preferably, the substrate 150 is a glass plate, and each of the electronic devices is a thin film transistor.
This application is a continuation of U.S. patent application Ser. No. 10/889,695, filed Jul. 12, 2004, now U.S. Pat. No. 7,319,335 which is a continuation-in-part of U.S. patent application Ser. No. 10/778,982, filed Feb. 12, 2004, and issued on Dec. 21, 2004 as U.S. Pat. No. 6,833,717, both of which are incorporated by reference herein in their entirety.
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Number | Date | Country | |
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Child | 11940432 | US |
Number | Date | Country | |
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Child | 10889695 | US |