FLIP-OVER ALIGNMENT STATION FOR PROBE NEEDLE ADJUSTMENT
An alignment station for aligning probe needles on a probe card prior to testing of integrated circuits on a wafer. The alignment station includes a probe card support or chuck for receiving a probe card and mask carrier arms which support a needle alignment mask and are operable to selectively place the mask into contact with the probe needles and raise the mask out of contact with the probe needles.
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The present invention relates to wafer probe cards used to test electrical characteristics of integrated circuits fabricated on semiconductor wafer substrates. More particularly, the present invention relates to a flip-over alignment station which includes a mask carrier that is operable to move a glass mask into and out of contact with an inverted wafer probe card in the alignment adjustment of probe needles on the card.
BACKGROUND OF THE INVENTION A conventional method used by the semiconductor industry in the manufacturing of semiconductor integrated circuits includes the steps of fabrication, wafer sort, assembly and test, respectively. As shown in
At the wafer sort step, the dies are tested to establish which dies on the wafer function properly. Each die is tested to all functional product specifications for both DC and AC parameters. Four testing objectives are pursued: (1) chip functionality, in which all chip functions are tested to ensure that only fully-functional chips are assembled and packaged in subsequent steps; (2) chip sorting, in which chips are separated or sorted on the basis of their operating speed performance under various voltage and timing conditions; (3) fab yield response, which yields important information that may lead to improvements in the overall fabrication process; and (4) test coverage, in which high test coverage of the internal device nodes is achieved at the lowest possible cost. The wafer sort procedure is similar to the in-line parametric test except that every die on the wafer is tested, in many cases using the same automated test equipment (ATE). Furthermore, the wafer sort procedure is usually located in a separate facility under less stringent purity conditions than those in which the parametric test is carried out, since wafer fabrication is essentially complete.
In automated wafer handling during wafer sort, a correlation wafer is used to verify tester setup. The correlation wafer is a control wafer the functionality of which has been verified and ensures that the testing system is working properly. After indexing from the cassette to the prober, the wafers are mounted on a vacuum chuck with Z (vertical) positioning. Using software, mechanical probe needles are aligned and contacted with bond pads on the wafer to establish electrical communication between the testing equipment and the dies on the wafer. The probes are interfaced with the ATE to perform the range of AC functional tests based on test algorithms. The type, number and order of tests are defined by the test program.
After testing, die found to be defective are labeled in a computer database to exclude the die from subsequent packaging steps. The labeling method is typically performed by placing a drop of ink on each unacceptable die. Because the ink marking process can be messy and introduce possible contaminants onto the chip, electronic wafer maps are increasingly being used to create a computer image of chip location and test results to categorize good and bad die on the wafer. At the chip assembly stations, the electronic wafer maps are downloaded into an equipment database to ensure that defective chips will not be packaged.
As further shown in
Immediately following manufacture of the IC, the electrical characteristics of the device must be tested using a test probe assembly which includes a test probe card consisting of a printed circuit board having an opening therein to provide access to an IC pattern. The opening is surrounded by a ring of conductive pads connected by the printed circuit card to terminals for connection to test equipment appropriate for testing the circuit. The number of pads in the ring determines the maximum capacity of the probe card.
During testing of IC devices, the wafer on which the devices are fabricated is supported on a wafer chuck. Typically, the probe needles on the probe card are inclined relative to the bonding pads on the integrated circuit devices. After the probe needles have been aligned with the bonding pads, the wafer chuck is raised through an “over-travel distance” of approximately 3 mils past the point at which the probe tips first contact the pads, such that the typically inclined probe needles slide or “scrub” on the bonding pads of the die to allow optimum mechanical and electrical contact between the probe needles and the bonding pads.
A higher degree of integration in recent semiconductor devices has led to an increase in the number of electrodes in ICs and to a decrease in the size of the electrode pads which are contacted by the probe needles. The reduction in size and increase in density of the probe needles has inevitably made the manufacture and mounting of the needles on the probe card troublesome. The tips of the probe needles are ideally all disposed at the same height level and same angle, but these and other parameters of the needles fluctuate somewhat for a number of reasons. These variations in probe needle parameters reduce test precision and reliability.
In the course of manufacturing a probe card, the probe needles on the card are aligned with dots or targets imprinted on a needle alignment mask. The locations of the dots or targets correspond precisely to the bonding pads on the die to be probed. As stated above, during testing of integrated circuit die, the probe needles are “overdriven” by approximately 3 mils. This renders it necessary to provide the same 3 mils of overdrive during alignment of the probe needles with the dots on the mask.
As shown in
One of the problems associated with the conventional alignment station 10 is that certain types of probe cards are not amenable to probe needle alignment on the station 10. These include multi-DUT (Die Under Test), stagger-type probe cards in which the probe needles are arranged in a staggered configuration for contact with multiple rows of contact pads on a wafer. Accordingly, an alignment station is needed which is suitable for testing probe needles on a variety of different types of probe cards and which is characterized by enhanced alignment efficiency.
An object of the present invention is to provide a new and improved alignment station for aligning probe needles on a probe card.
Another object of the present invention is to provide a new and improved alignment station which may be used to align probe needles on multi-DUT, stagger-type probe cards.
Still another object of the present invention is to provide a new and improved alignment station in which probe needles on a probe card extend upwardly and are contacted with dots on a mask to ascertain whether the probe needles on the probe card are properly aligned for testing devices on a wafer.
Yet another object of the present invention is to provide a new and improved alignment station which includes a probe card support for receiving a probe card and a mask carrier which supports a needle alignment mask and is operable to selectively lower the mask into contact with the probe needles to ascertain whether the probe needles are properly aligned and raise the mask out of contact with the probe needles to facilitate alignment adjustment of the probe needles, as needed.
A still further object of the present invention is to provide a new and improved alignment station which is characterized by enhanced alignment efficiency.
Yet another object of the present invention is to provide a new and improved alignment station for aligning probe needles on a probe card, which alignment station is capable of selectively moving probe needles on a probe card into contact with alignment dots on a needle alignment mask and moving the probe card away from the alignment mask to facilitate proper alignment of the probe needles for subsequent testing of integrated circuits on a wafer.
SUMMARY OF THE INVENTIONIn accordance with these and other objects and advantages, the present invention is generally directed to a new and improved alignment station for aligning probe needles on a probe card prior to testing of integrated circuits on a wafer. The alignment station includes a probe card support or chuck for receiving a probe card and mask carrier arms which support a needle alignment mask and are operable to selectively place the mask into contact with the probe needles and raise the mask out of contact with the probe needles. The alignment station is well-suited to probe cards having multi-DUT (Device Under Test), stagger-type probe needles and facilitates enhanced precision of alignment between alignment dots on a needle alignment mask and the probe needles on the probe card. The alignment station enables selective placement of the probe card into operable engagement with the mask and removal of the probe card from the mask to facilitate corrective adjustments in the alignment of the probe needles on the probe card, as needed.
BRIEF DESCRIPTION OF THE DRAWINGSThe invention will be better understood, by way of example, with reference to the accompanying drawings, in which:
The present invention is directed to a novel alignment station for the alignment of probe needles on a probe card in order to facilitate optimum contact between the probe needles and contact pads on a semiconductor wafer during the subsequent testing of integrated circuit dies on the wafer. The alignment station is well-suited to the alignment of probe needles on a variety of probe cards including those having multi-DUT (Device Under Test), stagger-type probe needles. The alignment station facilitates selective operable engagement of the probe needles on the probe card with alignment dots on a transparent glass needle alignment mask to ascertain whether the probe needles are properly aligned, and movement of the probe card away from the mask for making corrective adjustments in the alignments of the probe needles, as needed.
Referring to
As further shown in
As shown in
As shown in
In typical operation of the alignment station 20, the mask carrier arms 34 are initially positioned in the raised configuration on the platform support arms 28, as shown in
After the probe card 40 has been properly positioned on the chuck 38, the mask carrier arms 34, with the needle alignment mask 36 mounted thereon, are lowered from the raised, non-functional position of
While the preferred embodiments of the invention have been described above, it will be recognized and understood that various modifications can be made to the invention and the appended claims are intended to cover all such modifications which may fall within the spirit and scope of the invention.
Claims
1. An alignment station for aligning probe needles on a probe card, comprising:
- a support for receiving the probe card;
- a platform support arm disposed above and adjacent to said support;
- a mask carrier pivotally carried by said platform support arm for receiving a needle alignment mask; and
- wherein said mask carrier is positional between a lowered configuration for positioning the needle alignment mask into contact with the probe needles and a raised configuration for moving the needle alignment mask away from the probe needles.
2. The alignment station of claim 1 further comprising a second platform support arm disposed above and adjacent to said support opposite said platform support arm and wherein said mask carrier comprises first and second mask carrier arms pivotally carried by said platform support arm and said second platform support arm, respectively.
3. The alignment station of claim 1 further comprising a microscope disposed above said support.
4. The alignment station of claim 3 further comprising a second platform support arm disposed above and adjacent to said support opposite said platform support arm and wherein said mask carrier comprises first and second mask carrier arms pivotally carried by said platform support arm and said second platform support arm, respectively.
5. The alignment station of claim 1 further comprising a pair of bearing arms each having a proximal end pivotally carried by said platform support arm and a distal end pivotally carried by said mask carrier for pivotally mounting said mask carrier on said platform support arm.
6. The alignment station of claim 5 further comprising a second platform support arm disposed above and adjacent to said support opposite said platform support arm and wherein said mask carrier comprises first and second mask carrier arms pivotally carried by said platform support arm and said second platform support arm, respectively, and said pair of bearing arms pivotally attaches said first mask carrier arm to said platform support arm; and further comprising a second pair of bearing arms each having a proximal end pivotally carried by said second platform support arm and a distal end carried by said second mask carrier arm for pivotally mounting said second mask carrier arm on said second platform support arm.
7. The alignment station of claim 5 further comprising a microscope disposed above said support.
8. The alignment station of claim 7 further comprising a second platform support arm disposed above and adjacent to said support opposite said platform support arm and wherein said mask carrier comprises first and second mask carrier arms pivotally carried by said platform support arm and said second platform support arm, respectively, and said pair of bearing arms pivotally attaches said first mask carrier arm to said platform support arm; and further comprising a second pair of bearing arms each having a proximal end pivotally carried by said second platform support arm and a distal end carried by said second mask carrier arm for pivotally mounting said second mask carrier arm on said second platform support arm.
9. An alignment station for aligning probe needles on a probe card, comprising:
- a base;
- a support carried by said base for receiving the probe card;
- a mask carrier pivotally supported by said base for receiving a needle alignment mask; and
- wherein said mask carrier is positional between a lowered configuration for positioning the needle alignment mask into contact with the probe needles and a raised configuration for moving the needle alignment mask away from the probe needles.
10. The alignment station of claim 9 further comprising first and second platform support arms carried by said-base and disposed above and on opposite sides of said support and wherein said mask carrier is pivotally carried by said first and second platform support arms.
11. The alignment station of claim 9 further comprising a microscope carried by said base above said support.
12. The alignment station of claim 11 further comprising first and second platform support arms carried by said base and disposed above and on opposite sides of said support and wherein said mask carrier is pivotally carried by said first and second platform support arms.
13. The alignment station of claim 10 further comprising a first pair of bearing arms each having a proximal end pivotally carried by said first platform support arm and a distal end pivotally carried by said mask carrier for pivotally mounting said mask carrier on said platform support arm, and a second pair of bearing arms each having a proximal end pivotally carried by said second platform support arm and a distal end pivotally carried by said mask carrier for pivotally mounting said mask carrier on said second platform support arm.
14. The alignment station of claim 13 further comprising a microscope carried by said base above said support.
15. The alignment station of claim 13 wherein said mask carrier comprises a first mask carrier arm pivotally carried by said first pair of bearing arms and a second mask carrier arm pivotally carried by said second pair of bearing arms.
16. The alignment station of claim 15 further comprising a microscope carried by said base above said support.
17. An alignment station for aligning probe needles on a probe card, comprising:
- a base;
- a support carried by said base for receiving the probe card;
- a mask carrier platform carried by said base;
- a mask carrier pivotally carried by said mask carrier platform for receiving a needle alignment mask; and
- wherein said mask carrier is positional between a lowered configuration for positioning the needle alignment mask into contact with the probe needles and a raised configuration for moving the needle alignment mask away from the probe needles.
18. The alignment station of claim 17 further comprising a microscope platform carried by said base above said mask carrier platform and a microscope carried by said microscope, platform above said support.
19. The alignment station of claim 17 further comprising first and second platform support arms carried by said mask carrier platform and disposed above and on opposite sides of said support and wherein said mask carrier comprises first and second mask carrier arms pivotally carried by said first and second platform support arms, respectively.
20. The alignment station of claim 19 further comprising a first pair of bearing arms each having a proximal end pivotally carried by said first platform support arm and a distal end pivotally carried by said first mask carrier arm for pivotally mounting said first mask carrier arm on said first platform support arm, and a second pair of bearing arms each having a proximal end pivotally carried by said second platform support arm and a distal end pivotally carried by said second mask carrier arm for pivotally mounting said second mask carrier arm on said second platform support arm.
Type: Application
Filed: Aug 6, 2003
Publication Date: Feb 17, 2005
Applicant:
Inventor: Kuan-Min Lin (Taipei City)
Application Number: 10/636,949