US20070090855A1 - Method and apparatus for testing bumped die - Google Patents
Method and apparatus for testing bumped die Download PDFInfo
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- US20070090855A1 US20070090855A1 US11/600,994 US60099406A US2007090855A1 US 20070090855 A1 US20070090855 A1 US 20070090855A1 US 60099406 A US60099406 A US 60099406A US 2007090855 A1 US2007090855 A1 US 2007090855A1
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- ball
- metal traces
- contact
- die
- contact points
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R1/00—Details of instruments or arrangements of the types included in groups G01R5/00 - G01R13/00 and G01R31/00
- G01R1/02—General constructional details
- G01R1/06—Measuring leads; Measuring probes
- G01R1/067—Measuring probes
- G01R1/073—Multiple probes
- G01R1/07307—Multiple probes with individual probe elements, e.g. needles, cantilever beams or bump contacts, fixed in relation to each other, e.g. bed of nails fixture or probe card
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R1/00—Details of instruments or arrangements of the types included in groups G01R5/00 - G01R13/00 and G01R31/00
- G01R1/02—General constructional details
- G01R1/04—Housings; Supporting members; Arrangements of terminals
- G01R1/0408—Test fixtures or contact fields; Connectors or connecting adaptors; Test clips; Test sockets
- G01R1/0433—Sockets for IC's or transistors
- G01R1/0483—Sockets for un-leaded IC's having matrix type contact fields, e.g. BGA or PGA devices; Sockets for unpackaged, naked chips
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R31/00—Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
- G01R31/28—Testing of electronic circuits, e.g. by signal tracer
- G01R31/282—Testing of electronic circuits specially adapted for particular applications not provided for elsewhere
- G01R31/2831—Testing of materials or semi-finished products, e.g. semiconductor wafers or substrates
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R31/00—Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
- G01R31/28—Testing of electronic circuits, e.g. by signal tracer
- G01R31/2851—Testing of integrated circuits [IC]
- G01R31/2886—Features relating to contacting the IC under test, e.g. probe heads; chucks
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- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K3/00—Apparatus or processes for manufacturing printed circuits
- H05K3/30—Assembling printed circuits with electric components, e.g. with resistor
- H05K3/32—Assembling printed circuits with electric components, e.g. with resistor electrically connecting electric components or wires to printed circuits
- H05K3/325—Assembling printed circuits with electric components, e.g. with resistor electrically connecting electric components or wires to printed circuits by abutting or pinching, i.e. without alloying process; mechanical auxiliary parts therefor
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- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K3/00—Apparatus or processes for manufacturing printed circuits
- H05K3/40—Forming printed elements for providing electric connections to or between printed circuits
- H05K3/4007—Surface contacts, e.g. bumps
Definitions
- the present invention relates generally to semiconductor manufacturing and, more particularly, to methods for testing semiconductor dice having raised or bumped bond pads. More particularly still, the present invention relates to fabricating and using a testing grid suitable for testing solder balls used for bumped bond pads on an unpackaged semiconductor die.
- a bumped semiconductor die includes bond pads along with bumped solderable material such as a lead-tin alloy. These typically are manufactured from solder balls made of a lead-tin alloy. Bumped dies are often used for flip-chip bonding where the die is mounted face down on the substrate, such as a printed circuit board, and then the die is attached to the substrate by welding or soldering.
- the bumps are formed as balls of materials that are circular in a cross-sectional plane parallel to the face of the die.
- the bumps typically have a diameter of from 50 micrometers ( ⁇ m) to 100 ⁇ m.
- the sides of the bumps typically bow or curve outwardly from a flat top surface.
- the flat top surface forms the actual region of contact with a mating electrode on the printed circuit board or other substrate.
- a temporary electrical connection must be made between the ball contact locations or bond pads on the die and the external test circuitry associated with the testing apparatus.
- the bond pads provide a connection point for testing an integrated circuit on the die. Likewise, the integrity of each bump must be tested as well.
- a bond pad typically has a metal oxide layer formed over it that must be penetrated to make the ohmic contact.
- Some prior art contact structures such as probe cards, scrape the bond pads and wipe away the oxide layer. This causes excess layer damage to the bond pads.
- Other interconnect structures such as probe tips, may pierce the oxide layer and metal bond pad and leave a deep gouge.
- bond pad integrity testing systems have been developed in the prior art. Typically, these testing systems use optical imaging to determine the integrity of the weld connection on the bumped sites.
- One type of system is a profiling system that uses interferometry with robotic wafer handling to automate the testing step. The testing step develops a profile for measuring solder bump heights.
- the interferometry system does not damage the device in any way, the time required for analyzing each bump location can take from two to four minutes. This type of throughput is unacceptable when a high speed system is necessary.
- a method and apparatus for testing unpackaged semiconductor dice having raised ball contact locations are disclosed.
- the apparatus uses a temporary interconnect wafer that is adapted to establish an electrical connection with the raised ball contact locations on the die without damage to the ball contacts.
- the interconnect wafer is fabricated on a substrate, such as silicon, where contact members are formed in a pattern that matches the size and spacing of the ball contact locations on the die to be tested.
- the contact members on the interconnect wafer are formed as either pits, troughs, or spike contacts.
- the spike contacts penetrate through the oxide layer formed on the raised ball contact location.
- Conductive traces are provided in both rows and columns and are terminated on the inner edges of the walls of the pits formed in the substrate. This arrangement allows a system to measure the continuity across the bump pad or ball contact locations of the integrated circuit die in order to establish that each ball contact location is properly attached. This also allows the system to test for the presence and quality of the bump or ball contact locations on the particular die being tested.
- FIG. 1 is a schematic cross-sectional diagram of a pit formed in a substrate wherein a solder ball is received;
- FIG. 2 is a cross-sectional perspective schematic view of the pit according to FIG. 1 ;
- FIG. 3 is a top plan view of an array of pits according to that of FIG. 1 having a metal interconnect in a form of rows and columns;
- FIG. 4 is an alternative embodiment of the pit of FIG. 1 wherein raised supports are provided along with sharp blades for penetrating the ball;
- FIG. 5 is an alternative embodiment of the pit of FIG. 1 wherein raised portions are provided for penetrating the solder balls;
- FIG. 6 is an example of a solder ball being out of place and failing to make adequate connection between adjacent metal bonds
- FIG. 7 is an example of when a ball that is too small has been identified
- FIG. 8 is a schematic cross-sectional view of a device under test where mismatched balls are adjacent to one another.
- FIG. 9 is a block diagram of a test apparatus using the bump plate according to FIG. 3 .
- FIG. 1 is a cross-sectional schematic view of a bump plate 10 for testing the connect conductivity and quality of a solder ball on an unpackaged semiconductor die.
- Bump plate 10 is fabricated in a semiconductor substrate 12 , such as, for example, silicon, gallium arsenide, or silicon on sapphire, to name a few.
- a plurality of receiving pits 14 is formed in the surface of substrate 12 .
- Receiving pit 14 can be any desired polygonal or curved shape, but is preferred to be square with four sloped sidewalls 16 .
- Each sidewall 16 is at an angle of 54° from horizontal, conforming to the plane of the surface of the silicon substrate that can be used in fabricating bump plate 10 .
- the surface of the plate is coated with a thin layer insulator of about 200-300 Angstroms (such as Si Oxide) before the metal traces are formed. Electrical connection for testing for the presence of the solder balls on the die is provided by metal traces 18 .
- Metal traces 18 are made from a suitable metal and extend across the surface of substrate 12 and down sidewalls 16 of receiving pit 14 .
- a solder ball or bump 20 can then be positioned within receiving pit 14 and contact all four sloped sidewalls 16 .
- Ball 20 is placed within receiving pit 14 when a die under test is mated with bump plate 10 . Since a metal trace 18 is placed on each sidewall 16 and extends across the surface of substrate 12 to an adjacent receiving pit 14 , an applied electric current can flow through metal traces 18 provided the solder ball 20 contacts both sides of sidewall 16 and metal trace 18 thereon.
- FIG. 2 depicts, in a cross-sectional perspective view, receiving pit 14 prior to the addition of metal trace 18 of FIG. 1 .
- Receiving pit 14 has a substantially flat bottom surface that is non-conductive as well as four adjacent sidewalls 16 , again having the slope angle that naturally slopes 54° in the surface plane of silicon substrate 12 as it is etched.
- the sloped sidewall 16 allows for a spherical ball 20 to seat within receiving pit 14 without damaging the bottom curvature of ball 20 while still contacting metal trace 18 that extends down the slope of sidewall 16 .
- Bump plate 10 has a plurality of receiving pits 14 and is shown in the schematic diagram of FIG. 3 .
- Bump plate 10 actually is an array of receiving pits 14 that is electrically connected in rows and columns using metal traces 18 .
- Horizontal metal traces 18 run across the surface of substrate 12 and down the sloped sidewalls 16 of the receiving pits 14 . It is important that metal traces 18 do not connect with one another within receiving pits 14 .
- As an electric current is placed across each row and down each column in a sequential manner it becomes readily apparent at each receiving pit 14 location whether a ball exists or the connection is of such poor quality as to provide no conduction across the row or down the column. From this information, a grid map of the defects can be established that will allow repair of the missing or poor quality bumped locations at a subsequent repair stage.
- FIG. 4 illustrates a raised ball contact location 30 for contacting the bottom surface of a solder ball 20 .
- Each raised ball contact location 30 comprises a set of side bumps 32 that form a valley 36 .
- a plurality of sharpened projections 34 is formed within valley 36 and is designed to pierce the oxide layer formed over ball 20 and can be attached to adjacent metal traces 18 for providing good ohmic contact to adjacent metal traces 18 with ball 20 for testing purposes.
- Ball contact location 30 can be in the shape of a polygon or circle and can be combined with receiving pits 14 of FIG. 3 .
- FIG. 5 is an alternative embodiment where each receiving pit 14 is replaced with a post trough 40 , which is formed by a plurality of posts 42 to form a polygon, such as a square.
- Posts 42 are formed such that a valley 44 is formed in post trough 40 .
- Metal traces are formed up and down the sides of post 42 , but not connecting one another in the same manner as traces 18 in FIG. 3 .
- post trough 40 can be in the shape of a polygon or circle and can be combined with receiving pits 14 of FIG. 3 or ball contact locations 30 of FIG. 4 .
- FIGS. 1-5 are capable of testing for various types of solder ball conditions. The most significant is when a missing ball occurs. This is simple to detect in that no current will flow either across the column or down the row when the test current is applied. Other examples are also possible and are illustrated in FIGS. 6, 7 , and 8 .
- FIG. 6 is an example of when a solder ball 20 is off center and only contacts one or two sides of receiving pit 14 , thus preventing a good current signal from passing either across the column or down the row.
- FIG. 7 is an example of a ball 20 too small to touch any sides in receiving pit 14 . In this condition, no current can pass and it is viewed as being that no solder ball is present.
- FIG. 6 is an example of when a solder ball 20 is off center and only contacts one or two sides of receiving pit 14 , thus preventing a good current signal from passing either across the column or down the row.
- FIG. 7 is an example of a ball 20 too small to touch any sides in receiving pit 14 . In this condition,
- a first ball 20 has a first diameter and a second ball 52 has a second diameter, which is much smaller than the first diameter of ball 20 .
- ball 20 is an appropriate size and contacts well with the sides of receiving pit 14 .
- ball 52 is too small to even reach receiving pit 14 , so the current signal test shows it as not being present at all.
- ball 52 is actually the desired size of the balls while ball 20 is an aberration and is much larger than desired. This would also be evident in that many balls would be seen as not being present as the diameter of ball 20 would prevent several adjacent balls from contacting in their respective pits.
- FIG. 9 depicts a test apparatus 54 that uses a bump plate 10 .
- Apparatus 54 comprises a signal processor, such as a computer system 56 , that attaches to a bump plate 10 . Electrical signals or current are passed to bump plate 10 along the rows and columns of the metal traces 18 to establish a test pattern.
- a device under test (DUT) 58 is pressed upon bump plate 10 to match the solder ball pattern to the identical pattern fabricated on bump plate 10 . Once contact is made, the test is begun and the results are obtained more quickly compared to prior art test apparatus using optical or other mechanical means previously described.
- DUT device under test
- the bump die wafer inspection apparatus of the present invention offers the following advantages over the prior art. As the electronic world moves toward stencification miniaturization, better methods for testing these technologies are needed and this solution provides an advancement over those previously available and, using semiconductor fabrication techniques, a bump plate matching a desired solder ball pattern for a particular die can be generated.
- the silicon or other similar substrates serve as a rigid medium, and as a result of this rigidity, they have a fixed dimensional test capability for each bump/ball testing site. This limits its use with regard to the range of the dimensional tolerances that it can test. This is significant in that the bumps, or balls, or both, require tight dimensional tolerances to pass such testing.
- the silicon micro-machining and photolithography processes allow much more precise geometry control than the printed circuit board (PCB) or film technologies found in the prior art. Hence, a more definitive distinction and grading is made for each ball shape and position. Additionally, the present apparatus provides a unique methodology for electronically mapping the failing ball sites and then utilizing this map to direct a repair or rework system to correct each failing site. These operations of testing, mapping, and subsequent repair can be combined in a highly automated in-line process, thus reducing the necessary steps previously required in the prior art of removing the bad boards and sending them to the rework section of the fabrication operation.
- Another advantage is since the semiconductor substrate can be planarized to a uniform flatness compared to the PCB and other processing solutions, less damage is caused to the good solder balls attached to the DUT.
- the invention provides an improved method and system for testing a discrete, unpackaged semiconductor die having raised bond pads.
- specific materials have been described, it is understood that other materials can be utilized.
- the method of the invention has been described with reference to certain specific embodiments as will be apparent to those skilled in the art, modifications can be made without departing from the scope of the invention as defined in the following claims.
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- General Physics & Mathematics (AREA)
- Engineering & Computer Science (AREA)
- Computer Hardware Design (AREA)
- Microelectronics & Electronic Packaging (AREA)
- Testing Or Measuring Of Semiconductors Or The Like (AREA)
- Measuring Leads Or Probes (AREA)
- Testing Of Individual Semiconductor Devices (AREA)
Abstract
An apparatus for testing unpackaged semiconductor dice having raised ball contact locations is disclosed. The apparatus uses a temporary interconnect wafer that is adapted to establish an electrical connection with the raised ball contact locations on the die without damage to the ball contact locations. The interconnect is fabricated on a substrate, such as silicon, where contact members are formed in a pattern that matches the size and spacing of the ball contact locations on the die to be tested. The contact members on the interconnect wafer are formed as either pits, troughs, or spike contacts. The spike contacts penetrate through the oxide layer formed on the raised ball contact locations. Conductive traces are provided in both rows and columns and are terminated on the inner edges of the walls of the pits formed in the substrate.
Description
- This application is a divisional of application Ser. No. 11/101,220, filed Apr. 7, 2005, pending, which is a continuation of application Ser. No. 10/218,379, filed Aug. 13, 2002, now U.S. Pat. No. 6,927,589, issued Aug. 9, 2005, which is a continuation of application Ser. No. 09/923,688, filed Aug. 6, 2001, now U.S. Pat. No. 6,486,552, issued Nov. 26, 2002, which is a continuation of application Ser. No. 09/521,592, filed Mar. 9, 2000, now U.S. Pat. No. 6,303,993, issued Oct. 16, 2001, which is a divisional of application Ser. No. 08/994,004, filed Dec. 18, 1997, now U.S. Pat. No. 6,140,827, issued Oct. 31, 2000.
- The present invention relates generally to semiconductor manufacturing and, more particularly, to methods for testing semiconductor dice having raised or bumped bond pads. More particularly still, the present invention relates to fabricating and using a testing grid suitable for testing solder balls used for bumped bond pads on an unpackaged semiconductor die.
- Semiconductor dice are being fabricated with raised bond pads and are known as bumped semiconductor die. A bumped semiconductor die includes bond pads along with bumped solderable material such as a lead-tin alloy. These typically are manufactured from solder balls made of a lead-tin alloy. Bumped dies are often used for flip-chip bonding where the die is mounted face down on the substrate, such as a printed circuit board, and then the die is attached to the substrate by welding or soldering. Typically, the bumps are formed as balls of materials that are circular in a cross-sectional plane parallel to the face of the die. The bumps typically have a diameter of from 50 micrometers (μm) to 100 μm. The sides of the bumps typically bow or curve outwardly from a flat top surface. The flat top surface forms the actual region of contact with a mating electrode on the printed circuit board or other substrate. In testing the attached solder bumps, a temporary electrical connection must be made between the ball contact locations or bond pads on the die and the external test circuitry associated with the testing apparatus. The bond pads provide a connection point for testing an integrated circuit on the die. Likewise, the integrity of each bump must be tested as well.
- In making this temporary electrical connection, it is desirable to effect a connection that causes as little damage as possible to the bumped die. If the temporary connection to the bumped bond pad damages the pad, the entire die may be ruined. This is difficult to accomplish because the connection must also produce a low resistance or ohmic contact with the bumped bond pad. A bond pad, with or without a bump, typically has a metal oxide layer formed over it that must be penetrated to make the ohmic contact.
- Some prior art contact structures, such as probe cards, scrape the bond pads and wipe away the oxide layer. This causes excess layer damage to the bond pads. Other interconnect structures, such as probe tips, may pierce the oxide layer and metal bond pad and leave a deep gouge. Still other interconnect structures, such as micro bumps, cannot even pierce the oxide layer, preventing the formation of an ohmic contact.
- In the past, following testing of a bump pad die, it has been necessary to reflow the bumps, which are typically damaged by the procedure. This is an additional process step that adds to the expense and complexity of the testing process. Furthermore, it requires heating the tested die that can adversely affect the integrated circuitry formed on the die.
- Other bond pad integrity testing systems have been developed in the prior art. Typically, these testing systems use optical imaging to determine the integrity of the weld connection on the bumped sites. One type of system is a profiling system that uses interferometry with robotic wafer handling to automate the testing step. The testing step develops a profile for measuring solder bump heights. Unfortunately, although the interferometry system does not damage the device in any way, the time required for analyzing each bump location can take from two to four minutes. This type of throughput is unacceptable when a high speed system is necessary.
- Accordingly, what is needed is a method and system for testing solder bumps in bond pad locations that does not damage the bond pads while improving throughput.
- According to the present invention, a method and apparatus for testing unpackaged semiconductor dice having raised ball contact locations are disclosed. The apparatus uses a temporary interconnect wafer that is adapted to establish an electrical connection with the raised ball contact locations on the die without damage to the ball contacts. The interconnect wafer is fabricated on a substrate, such as silicon, where contact members are formed in a pattern that matches the size and spacing of the ball contact locations on the die to be tested. The contact members on the interconnect wafer are formed as either pits, troughs, or spike contacts. The spike contacts penetrate through the oxide layer formed on the raised ball contact location. Conductive traces are provided in both rows and columns and are terminated on the inner edges of the walls of the pits formed in the substrate. This arrangement allows a system to measure the continuity across the bump pad or ball contact locations of the integrated circuit die in order to establish that each ball contact location is properly attached. This also allows the system to test for the presence and quality of the bump or ball contact locations on the particular die being tested.
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FIG. 1 is a schematic cross-sectional diagram of a pit formed in a substrate wherein a solder ball is received; -
FIG. 2 is a cross-sectional perspective schematic view of the pit according toFIG. 1 ; -
FIG. 3 is a top plan view of an array of pits according to that ofFIG. 1 having a metal interconnect in a form of rows and columns; -
FIG. 4 is an alternative embodiment of the pit ofFIG. 1 wherein raised supports are provided along with sharp blades for penetrating the ball; -
FIG. 5 is an alternative embodiment of the pit ofFIG. 1 wherein raised portions are provided for penetrating the solder balls; -
FIG. 6 is an example of a solder ball being out of place and failing to make adequate connection between adjacent metal bonds; -
FIG. 7 is an example of when a ball that is too small has been identified; -
FIG. 8 is a schematic cross-sectional view of a device under test where mismatched balls are adjacent to one another; and, -
FIG. 9 is a block diagram of a test apparatus using the bump plate according toFIG. 3 . -
FIG. 1 is a cross-sectional schematic view of abump plate 10 for testing the connect conductivity and quality of a solder ball on an unpackaged semiconductor die.Bump plate 10 is fabricated in asemiconductor substrate 12, such as, for example, silicon, gallium arsenide, or silicon on sapphire, to name a few. - A plurality of receiving
pits 14 is formed in the surface ofsubstrate 12. Receivingpit 14 can be any desired polygonal or curved shape, but is preferred to be square with four slopedsidewalls 16. Eachsidewall 16 is at an angle of 54° from horizontal, conforming to the plane of the surface of the silicon substrate that can be used in fabricatingbump plate 10. After pits or suitable features are etched (formed), the surface of the plate is coated with a thin layer insulator of about 200-300 Angstroms (such as Si Oxide) before the metal traces are formed. Electrical connection for testing for the presence of the solder balls on the die is provided by metal traces 18. Metal traces 18 are made from a suitable metal and extend across the surface ofsubstrate 12 and down sidewalls 16 of receivingpit 14. A solder ball or bump 20 can then be positioned within receivingpit 14 and contact all four slopedsidewalls 16.Ball 20 is placed within receivingpit 14 when a die under test is mated withbump plate 10. Since ametal trace 18 is placed on eachsidewall 16 and extends across the surface ofsubstrate 12 to anadjacent receiving pit 14, an applied electric current can flow through metal traces 18 provided thesolder ball 20 contacts both sides ofsidewall 16 andmetal trace 18 thereon. - A method that is adaptable for manufacturing
bump plate 10 is described in U.S. Pat. No. 5,592,736, “Fabricating An Interconnect For Testing Unpackaged Semiconductor Dice Having Raised Bond Pads,” commonly assigned to the same assignee as the present invention, and herein incorporated by reference for all purposes. -
FIG. 2 depicts, in a cross-sectional perspective view, receivingpit 14 prior to the addition ofmetal trace 18 ofFIG. 1 . Receivingpit 14 has a substantially flat bottom surface that is non-conductive as well as fouradjacent sidewalls 16, again having the slope angle that naturally slopes 54° in the surface plane ofsilicon substrate 12 as it is etched. The slopedsidewall 16 allows for aspherical ball 20 to seat within receivingpit 14 without damaging the bottom curvature ofball 20 while still contactingmetal trace 18 that extends down the slope ofsidewall 16. -
Bump plate 10 has a plurality of receivingpits 14 and is shown in the schematic diagram ofFIG. 3 .Bump plate 10 actually is an array of receivingpits 14 that is electrically connected in rows and columns using metal traces 18. Horizontal metal traces 18 run across the surface ofsubstrate 12 and down the sloped sidewalls 16 of the receiving pits 14. It is important that metal traces 18 do not connect with one another within receiving pits 14. As an electric current is placed across each row and down each column in a sequential manner, it becomes readily apparent at each receivingpit 14 location whether a ball exists or the connection is of such poor quality as to provide no conduction across the row or down the column. From this information, a grid map of the defects can be established that will allow repair of the missing or poor quality bumped locations at a subsequent repair stage. - Alternative embodiments to receiving
pits 14 within thesubstrate 12 are shown inFIGS. 4 and 5 .FIG. 4 illustrates a raisedball contact location 30 for contacting the bottom surface of asolder ball 20. Each raisedball contact location 30 comprises a set of side bumps 32 that form avalley 36. A plurality of sharpenedprojections 34 is formed withinvalley 36 and is designed to pierce the oxide layer formed overball 20 and can be attached to adjacent metal traces 18 for providing good ohmic contact to adjacent metal traces 18 withball 20 for testing purposes.Ball contact location 30 can be in the shape of a polygon or circle and can be combined with receivingpits 14 ofFIG. 3 . -
FIG. 5 is an alternative embodiment where each receivingpit 14 is replaced with apost trough 40, which is formed by a plurality ofposts 42 to form a polygon, such as a square.Posts 42 are formed such that avalley 44 is formed inpost trough 40. Metal traces are formed up and down the sides ofpost 42, but not connecting one another in the same manner as traces 18 inFIG. 3 . Thus, when aball 20 is placed in apost trough 40, a good ohmic connection forms betweenopposite traces 18 for conducting a test current. Further,post trough 40 can be in the shape of a polygon or circle and can be combined with receivingpits 14 ofFIG. 3 orball contact locations 30 ofFIG. 4 . - Each of the embodiments of
FIGS. 1-5 is capable of testing for various types of solder ball conditions. The most significant is when a missing ball occurs. This is simple to detect in that no current will flow either across the column or down the row when the test current is applied. Other examples are also possible and are illustrated inFIGS. 6, 7 , and 8.FIG. 6 is an example of when asolder ball 20 is off center and only contacts one or two sides of receivingpit 14, thus preventing a good current signal from passing either across the column or down the row.FIG. 7 is an example of aball 20 too small to touch any sides in receivingpit 14. In this condition, no current can pass and it is viewed as being that no solder ball is present.FIG. 8 depicts where adjacent balls of different sizes are attached to die 50. Afirst ball 20 has a first diameter and asecond ball 52 has a second diameter, which is much smaller than the first diameter ofball 20. As is shown,ball 20 is an appropriate size and contacts well with the sides of receivingpit 14. By contrast,ball 52 is too small to even reach receivingpit 14, so the current signal test shows it as not being present at all. Of course, the reverse can be true in thatball 52 is actually the desired size of the balls whileball 20 is an aberration and is much larger than desired. This would also be evident in that many balls would be seen as not being present as the diameter ofball 20 would prevent several adjacent balls from contacting in their respective pits. -
FIG. 9 depicts atest apparatus 54 that uses abump plate 10.Apparatus 54 comprises a signal processor, such as acomputer system 56, that attaches to abump plate 10. Electrical signals or current are passed to bumpplate 10 along the rows and columns of the metal traces 18 to establish a test pattern. A device under test (DUT) 58 is pressed uponbump plate 10 to match the solder ball pattern to the identical pattern fabricated onbump plate 10. Once contact is made, the test is begun and the results are obtained more quickly compared to prior art test apparatus using optical or other mechanical means previously described. - The bump die wafer inspection apparatus of the present invention offers the following advantages over the prior art. As the electronic world moves toward stencification miniaturization, better methods for testing these technologies are needed and this solution provides an advancement over those previously available and, using semiconductor fabrication techniques, a bump plate matching a desired solder ball pattern for a particular die can be generated. The silicon or other similar substrates serve as a rigid medium, and as a result of this rigidity, they have a fixed dimensional test capability for each bump/ball testing site. This limits its use with regard to the range of the dimensional tolerances that it can test. This is significant in that the bumps, or balls, or both, require tight dimensional tolerances to pass such testing. The silicon micro-machining and photolithography processes allow much more precise geometry control than the printed circuit board (PCB) or film technologies found in the prior art. Hence, a more definitive distinction and grading is made for each ball shape and position. Additionally, the present apparatus provides a unique methodology for electronically mapping the failing ball sites and then utilizing this map to direct a repair or rework system to correct each failing site. These operations of testing, mapping, and subsequent repair can be combined in a highly automated in-line process, thus reducing the necessary steps previously required in the prior art of removing the bad boards and sending them to the rework section of the fabrication operation.
- Another advantage is since the semiconductor substrate can be planarized to a uniform flatness compared to the PCB and other processing solutions, less damage is caused to the good solder balls attached to the DUT.
- Thus the invention provides an improved method and system for testing a discrete, unpackaged semiconductor die having raised bond pads. Although specific materials have been described, it is understood that other materials can be utilized. Furthermore, although the method of the invention has been described with reference to certain specific embodiments as will be apparent to those skilled in the art, modifications can be made without departing from the scope of the invention as defined in the following claims.
Claims (6)
1. An apparatus for testing for the presence of a ball in a plurality of balls located on the bond pads of a semiconductor die, comprising:
a signal processor; and
a bump wafer connected to the signal processor, comprising:
a plurality of contact points formed in a semiconductor substrate having a pattern essentially corresponding to a pattern of the plurality of balls on the semiconductor die;
a plurality of metal traces fabricated on the semiconductor substrate for at least one of the plurality of contact points such that the placement of a contact ball on the at least one of the plurality of contact points connects one of a first plurality of metal traces to a second plurality of metal traces.
2. The apparatus according to claim 1 , wherein the plurality of metal traces form an array of rows and columns interconnecting at least one of the plurality of contact points to at least one adjacent contact point.
3. The apparatus according to claim 1 , wherein the plurality of contact points comprise pits fabricated in the semiconductor substrate, each pit having opposing walls wherein some of the plurality of metal traces extend down the opposing walls without contacting one another.
4. The apparatus according to claim 1 , wherein the plurality of contact points comprise:
a plurality of risers, over which the plurality of metal traces extend; and
a plurality of blades, situated between the plurality of risers, to pierce an oxide layer on the contact ball.
5. The apparatus according to claim 1 , wherein at least one contact point of the plurality of contact points comprises:
a plurality of retaining posts, over each of which extends one of the plurality of metal traces and in which a bump seat is formed for receiving the contact ball.
6. The apparatus according to claim 1 , wherein the signal processor selectively applies and senses an electrical current to each of the plurality of metal traces.
Priority Applications (1)
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---|---|---|---|
US11/600,994 US20070090855A1 (en) | 1997-12-18 | 2006-11-17 | Method and apparatus for testing bumped die |
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US08/994,004 US6140827A (en) | 1997-12-18 | 1997-12-18 | Method and apparatus for testing bumped die |
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US10/218,379 US6927589B2 (en) | 1997-12-18 | 2002-08-13 | Apparatus for testing bumped die |
US11/101,220 US20050174134A1 (en) | 1997-12-18 | 2005-04-07 | Method and apparatus for testing bumped die |
US11/600,994 US20070090855A1 (en) | 1997-12-18 | 2006-11-17 | Method and apparatus for testing bumped die |
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US11/101,220 Division US20050174134A1 (en) | 1997-12-18 | 2005-04-07 | Method and apparatus for testing bumped die |
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US11/101,220 Abandoned US20050174134A1 (en) | 1997-12-18 | 2005-04-07 | Method and apparatus for testing bumped die |
US11/601,546 Abandoned US20070063722A1 (en) | 1997-12-18 | 2006-11-17 | Method and apparatus for testing bumped die |
US11/600,994 Abandoned US20070090855A1 (en) | 1997-12-18 | 2006-11-17 | Method and apparatus for testing bumped die |
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US09/521,332 Expired - Fee Related US6337574B1 (en) | 1997-12-18 | 2000-03-09 | Method and apparatus for testing bumped die |
US09/521,592 Expired - Fee Related US6303993B1 (en) | 1997-12-18 | 2000-03-09 | Method and apparatus for testing bumped die |
US09/521,932 Expired - Fee Related US6411118B1 (en) | 1997-12-18 | 2000-03-09 | Method and apparatus for testing bumped die |
US09/923,460 Expired - Lifetime US6472894B1 (en) | 1997-12-18 | 2001-08-06 | Apparatus for testing bumped die |
US09/923,688 Expired - Lifetime US6486552B2 (en) | 1997-12-18 | 2001-08-06 | Method and apparatus for testing bumped die |
US10/173,957 Expired - Fee Related US7005870B2 (en) | 1997-12-18 | 2002-06-17 | Interconnect bump plate |
US10/218,379 Expired - Fee Related US6927589B2 (en) | 1997-12-18 | 2002-08-13 | Apparatus for testing bumped die |
US10/218,278 Expired - Lifetime US6630837B2 (en) | 1997-12-18 | 2002-08-13 | Apparatus for testing bumped die |
US11/101,220 Abandoned US20050174134A1 (en) | 1997-12-18 | 2005-04-07 | Method and apparatus for testing bumped die |
US11/601,546 Abandoned US20070063722A1 (en) | 1997-12-18 | 2006-11-17 | Method and apparatus for testing bumped die |
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US (12) | US6140827A (en) |
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Also Published As
Publication number | Publication date |
---|---|
US7005870B2 (en) | 2006-02-28 |
US20010048153A1 (en) | 2001-12-06 |
US6337574B1 (en) | 2002-01-08 |
US20020158655A1 (en) | 2002-10-31 |
US20020185301A1 (en) | 2002-12-12 |
US20070063722A1 (en) | 2007-03-22 |
US6303993B1 (en) | 2001-10-16 |
US6411118B1 (en) | 2002-06-25 |
US6630837B2 (en) | 2003-10-07 |
US6140827A (en) | 2000-10-31 |
US6927589B2 (en) | 2005-08-09 |
US6486552B2 (en) | 2002-11-26 |
US20020196041A1 (en) | 2002-12-26 |
US6472894B1 (en) | 2002-10-29 |
US20050174134A1 (en) | 2005-08-11 |
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