Background of the Invention
1. Field of the Invention
This invention relates to improved methods for compliant bonding, and more particularly to methods for producing compliant bonds between beam-lead semiconductor devices and metallic patterns on substrates.
2. Description of the Prior Art
When bonding beam-lead semiconductor articles, such as integrated-circuit chips, to substrates, it is highly advantageous to employ a technique known as compliant bonding. Compliant bonding is described in U.S. Pat. No. 3,533,155 issued to A. Coucoulas on Oct. 13, 1970.
A particularly efficient technique for adapting compliant bonding to high-speed production operations is described in patent application Ser. No. 863,259 filed in the name of D. P. Ludwig on Oct. 2, 1969 now U.S. Pat. No. 3,690,444 and assigned to the assignee of record of this application. The system described in the Ludwig application involves sequentially placing an unused portion of a compliant bonding strip onto a bonding axis with each successive bonding operation. This is accomplished by preliminarily engaging the compliant member with portions of a heated turret-like bonding head and then subsequently rotating the bonding head to bring various bonding tips of the head into position on a bonding axis.
While the Ludwig system is fully workable, there is some desire to provide a bonding apparatus which will operate with not only all of the advantages of the Ludwig system, but also will operate with greater accuracy and reliability.
Summary of the Invention
It is therefore an object of this invention to provide a bonding system which will facilitate compliant bonding with a sequentially indexable compliant bonding strip wherein such bonding is performed with a single bonding tip.
Another object of the invention is to accomplish such bonding without causing preliminary heating of a bonding portion of a compliant member before placing the portion in a bonding position.
These objects are achieved by a method of compliant bonding, wherein a compliant member is indexably positionable between a bonding tip and a workpiece to be bonded. The method may include indexing the compliant member relative to the tip and sequentially operating the bonding tip to move it linearly along its axis. Such movement results in engaging the bonding tip with one side of the compliant member and engaging the workpiece with the other side of the compliant member and removably mounting the workpiece to such side. This movement also results in bonding the workpiece and releasing it from the compliant member, and in releasing the tip from the compliant member to enable further indexing of the tip.
Brief Description of the Drawings
Other objects and features of the present invention will be more readily understood from the following detailed description of specific embodiments thereof, when read in conjunction with the appended drawings in which:
FIG. 1 is a perspective view of a bonding apparatus employing an inventive single-tip, indexable compliant-bonding head;
FIG. 2 is an elevational view of the inventive bonding head showing the movable bonding tip in an extended or engaged position;
FIG. 3 is an enlarged view of an encircled portion of the bonding tip of FIG. 2.
FIG. 4 is an elevational view of the bonding head of FIG. 2 showing a bonding tip in an retracted or disengaged position.
FIG. 5 is an enlarged view of an encircled portion of the bonding tip of FIG. 4.
FIG. 6 is a timing diagram showing the interrelation of various mechanical motions of the machine of FIG. 1.
Detailed Description
A bonding machine, designated generally by the numeral 10, is illustrated in FIG. 1. The machine 10 includes a bonding head, designated generally by the numeral 12. The bonding head 12 is arranged to be moved up and down along a bonding axis 14.
The purpose of the bonding machine 10 is to provide sound thermocompression bonds between beam leads of semiconductor devices or chips, designated generally by the numeral 18, and metallic patterns formed on substrates 22. The desired bonding is accomplished by compressing the leads against the metallic pattern with a compliant strip or member 24 is described in Coucoulas U.S. Pat. No. 3,533,155 and the aforementioned D. P. Ludwig application Ser. No. 863,259, now U.S. Pat. No. 3,771,711.
As described in the Ludwig application, it is desirable to perform each bonding operation with an unused portion of the compliant member 24. Thus, it is convenient to operate the machine 10 with a continuous strip of the compliant member which is continuously supplied from a reel 26 and wound onto a reel 28.
The machine 10 operates in accordance with a timing sequence illustrated in FIG. 6.
The operation involves indexing of the compliant member 24 across the bonding head 12. This is accomplished by driving the member 24 with sprockets 30. Each of the sprockets 30 is provided with projections 32 which engage with sprocket holes 34 punched in the compliant member 24. A conventional drive system 35 is provided to index the sprockets 30 in predetermined rotational steps to accomplish an accurate positioning of successive bonding apertures 36 onto the bonding axis 14.
After one of the apertures 36 is positioned on the bonding axis 14, the drive system 35 moves a heated bonding tip 40 against the compliant member 24 to produce tension in that portion of the member which is suspended between the two vertical supporting devices of the housing that are on opposite sides of the tip 40 and between the two sprockets 30. The movement of the tip 40 and the tensioning of the member 24 is accomplished prior to any movement of the bonding head 12 toward the chips 18. One of the chips 18 is then positioned on the bonding axis 14 by an operator using a conventional manipulator assembly, designated generally by the numeral 41, and a prism-type optical system 42 combined with a microscope (not shown). The aligned chip 18 is engaged with the compliant member 24 by utilizing a vacuum source (not shown) operating through a vacuum port 44 in the bonding tip 40 (see FIG. 3). One of the substrates 22 is then aligned to the engaged chip 18 using the conventional manipulator assembly 41.
After alignment of the chip 18 and the metallic pattern of the substrate 22, the bonding head 12, including the bonding tip 40 and the compliant member 24, is lowered along the axis 14 to accomplish compliant bonding between the leads and the metallic pattern. Upon completion of the bond, the head 12 is raised and the tip 40 is released from the compliant member 24, thereby eliminating the tension in the span of the member between the sprockets 30. The sprockets 30 are rotatably indexed to bring a subsequent one of the apertures 36 into the bonding axis 14 and a new cycle of bonding begins. Thus, the tip 40 operates synchronously with the indexing of the compliant member 24.
It can be readily seen that the portion of the member 24 which is to be involved in bonding is not subjected to any heating until that portion is positioned on the bonding axis 14. The portion of the member 24 engaged with the sprockets 30 remains at ambient temperature. Since the sprockets 30 engage with a portion of the member 24 at ambient temperature there is no need to allow for thermal expansion differentials which occur when the compliant member is formed of a material different than the sprockets 30. The inventive design of the machine 10 provides accurate indexing of the compliant member 24 irrespective of the coefficient of thermal expansion of the material used for the member 24.
FIGS. 2 through 5 illustrate one desirable embodiment of the bonding head 12 in which the bonding tip 40 is movable with respect to the head to alternately produce and release tension within the span of the compliant member 24 suspended between the vertically supporting devices and the sprockets 30. The head 12 illustrated in FIGS. 2 through 5 utilizes a toggle linkage to move the bonding tip 40 along the axis 14.
A cam 46 operates the toggle linkage by driving a cam follower arm 48 outwardly when it is desired to lower the bonding tip 40 along the axis. The follower arm 48 is connected to a link 50 which is, in turn, connected to a link 52 which is, still in turn, connected to a pivotal link 54 that pivots about a pivot screw 56. As the link 54 rotates in a counterclockwise direction, a horizontal connecting link 58 positions a toggle pivot point 60 onto the bonding axis 14. When the point 60 is on the bonding axis, toggle bar members 62 and 64 are aligned with the axis and the bonding tip 40 is in its lowermost position. A spring-biased catch assembly 66 provides the necessary snap action to the toggle operation.
The vertical position of the toggle members 62 and 64 is adjustable through slotted holes 68 in a member 70 to which the toggle member 64 is mounted. By adjusting the vertical position of the toggle members 62 and 64, the position of the bonding tip 40 can be accurately controlled.
When the tip 40 is engaged with the compliant member 24, as shown in FIG. 3, the engaged portion of the compliant member can be accurately aligned to the semiconductor chips 18 and the substrates 22 for bonding. It is necessary to provide the tension-induced engagement between the member 24 and the tip 40 in order to establish a uniformly flat surface across the engaged portion of the compliant member. If the compliant member 24 were not flat and tightly engaged with the tip 40, it would be virtually impossible to achieve accurate alignment between the chips 18 and the metallic pattern of the substrates 22. It should be noted that the establishing of the flat surface is accomplished prior to moving or lowering the bonding head 12.
It is apparent that indexing of the compliant member 24 cannot be accomplished when there is a tight engagement between the compliant member and the tip 40. Thus, it is necessary to release the tip 40 from the compliant member 24 after a bond is completed so that an unused portion of the compliant member can be brought onto the bonding axis 14. The release of the bonding tip 40 as shown in FIGS. 4 and 5 is accomplished by further rotation of the cam 46 to permit the cam follower arm 48 to move inwardly. The inward motion of the cam follower arm 48 reverses the movement of the various linkage members and causes the toggle assembly to shorten and thus retract the bonding tip 40.
Additional advantages in achieving precise alignment can be derived from pre-forming or embossing the compliant member with pocket-like depressions 72 within the area of the bonding aperture 36. Such an arrangement is illustrated in FIGS. 3 and 5. The depressions 72 help to position the bonding apertures 36 with respect to the bonding tip 40 when the tip is engaged with the member 24. Additionally the structural configuration of the depressions 72 provides an increased probability for achieving perfectly flat contact between the tip 40 and the member 24.
It is to be understood that the toggle mechanism described for moving the bonding tip 40 with respect to the head 12 is only one of a number of possible arrangements that can be used for accomplishing the desired motion.
Although certain embodiments of the invention have been shown in the drawings and described in the specification, it is to be understood that the invention is not limited thereto, is capable of modification and can be arranged without departing from the spirit and scope of the invention.