Joint, circuit board, semiconductor device, and method for manufacturing joint
A bonded structure with controlled Ti distribution in the bonding layer addresses Ag, Sn, and In diffusion issues, enhancing copper plate integrity and TCT performance for ceramic substrate-copper plate bonding.
Patent Information
- Application Number
- JP2022540291
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-07-27
- Filing Date
- 2021-07-26
- Publication Date
- 2025-08-27
- Estimated Expiration
- 2041-07-26
AI Technical Summary
Existing bonding methods for ceramic substrates and copper plates using Ag-based brazing filler metals result in Ag, Sn, and In diffusion into copper plates, leading to decreased melting point and deformation during joining and reduced Temperature Cycling Test (TCT) characteristics.
A bonded structure comprising a ceramic substrate, copper plate, and a bonding layer with controlled Ti distribution, including a Ti alloy at the bonding interface, preventing diffusion of Ag, Sn, and In into the copper plate.
The Ti alloy acts as a barrier, maintaining copper plate integrity and improving TCT characteristics by suppressing elemental diffusion, enabling efficient and reliable bonding suitable for mass production.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The embodiments described below relate to a bonded structure, a circuit board, a semiconductor device, and a method for manufacturing the bonded structure. [Background technology]
[0002] A bonded body of a ceramic substrate and a copper plate is used as a circuit board on which a semiconductor element or the like is mounted. International Publication No. 2018 / 021472 (Patent Document 1) discloses a ceramic copper circuit board in which a ceramic substrate and a copper plate are bonded. In Patent Document 1, a brazing filler metal containing Ag, Cu, Ti, etc. is used in the bonding layer. In Patent Document 1, a 1×10 -3 Heat bonding is performed under a pressure of less than 100 Pa. Such a 1x10 -3 A pressure below 100 Pa is called a vacuum. The joining method using Ti is called the active metal joining method. Because Ti is an active metal, it is easily nitridized or oxidized. In the active metal joining method, joining is performed in a vacuum to prevent Ti from nitriding or oxidizing before joining. To join in a vacuum, the inside of the joining device must be evacuated. Since the temperature is raised after creating a vacuum, only batch processing could be applied to the thermal joining process. The thermal joining process includes four steps per batch: evacuation, heating, joining, and cooling. It took more than 24 hours per batch. For this reason, it was not suitable for mass production. Meanwhile, International Publication No. 2018 / 199060 (Patent Document 2) discloses a thermal bonding process performed in a continuous furnace. In the example of Patent Document 2, bonding is performed in a furnace length of 3 m and at a conveying speed of 10 cm / min. Thermal bonding can be completed in about 2 hours, including holding times. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] International Publication No. 2018 / 021472 [Patent Document 2] International Publication No. 2018 / 199060 Summary of the Invention [Problem to be solved by the invention]
[0004] In Patent Documents 1 and 2, the brazing filler metal contains 40 wt% or more of Ag. The brazing filler metal also contains Sn or In. Ag is an element that easily diffuses into copper plates. Following the diffusion of Ag, Sn and In also diffuse into the copper plate. When Sn or In diffuses into the copper plate, the melting point of the copper plate decreases. A decrease in the melting point of the copper plate can cause deformation during joining and a decrease in the Temperature Cycling Test (TCT) characteristics. It has been found that the presence of Ti at the interface between the copper plate and the joining layer is effective in preventing the diffusion of Sn or In into the copper plate. The present invention is intended to address such problems and provides a bonded body in which the distribution of Ti in the bonding layer is controlled. [Means for solving the problem]
[0005] The bonded body according to the embodiment comprises a ceramic substrate, a copper plate, and a bonding layer disposed on at least one surface of the ceramic substrate and bonding the ceramic substrate to the copper plate, wherein the bonding layer contains Ag, Cu, Ti, and a first element which is one or two selected from Sn and In, and a Ti alloy of Ti and at least one selected from Ag, Cu, Sn, and In is present at the bonding interface between the copper plate and the bonding layer, and the Ti alloy is present in an amount of 30% or more per 30 μm length of the bonding interface. [Brief explanation of the drawings]
[0006] [Figure 1] FIG. 2 is a view showing an example of a bonded body according to an embodiment. [Figure 2] FIG. 2 is a diagram showing an example of a bonding layer of a bonded structure according to an embodiment. [Figure 3] FIG. 3 is a partially enlarged view of a bonding layer of the bonded structure according to the embodiment. [Figure 4]FIG. 2 is a diagram showing an example of a circuit board according to an embodiment. [Figure 5] 1A and 1B are diagrams showing an example of a semiconductor device according to an embodiment; [Figure 6] 1 is a DSC curve (500 to 600° C.) of the brazing filler metal of Example 1 during the temperature increase process. [Figure 7] 1 is a DSC curve (800 to 900° C.) of the brazing filler metal of Example 1 during the temperature-raising process. DETAILED DESCRIPTION OF THE INVENTION
[0007] The bonded body according to the embodiment comprises a ceramic substrate, a copper plate, and a bonding layer disposed on at least one surface of the ceramic substrate and bonding the ceramic substrate to the copper plate, wherein the bonding layer contains Ag, Cu, Ti, and a first element which is one or two selected from Sn and In, and a Ti alloy of Ti and at least one selected from Ag, Cu, Sn, and In is present at the bonding interface between the copper plate and the bonding layer, and the Ti alloy is present in an amount of 30% or more per 30 μm length of the bonding interface. FIG. 1 is a schematic diagram showing an example of a bonded body. In FIG. 1, 1 denotes a bonded body, 2 denotes a ceramic substrate, 3 denotes a copper plate, and 4 denotes a bonding layer. FIG. 1 shows a bonded body 1 in which copper plates 3 are disposed on both sides of a ceramic substrate 2 with bonding layers 4 interposed therebetween. In the example of FIG. 1, the ceramic substrate 2 and the copper plate 3 have the same length and width. The bonded body according to the embodiment is not limited to this configuration, and may have a structure in which the copper plate 3 is provided on only one side of the ceramic substrate 2. Furthermore, the length and width of the ceramic substrate 2 and the copper plate 3 may be different from each other.
[0008] Examples of the ceramic substrate 2 include a silicon nitride substrate, an aluminum nitride substrate, an aluminum oxide substrate, and an alu-zir substrate. The thickness of the ceramic substrate 2 is preferably 0.1 mm or more and 1 mm or less. If the substrate thickness is less than 0.1 mm, the strength of the ceramic substrate 2 may decrease. If the substrate thickness is greater than 1 mm, the ceramic substrate may act as a thermal resistor, which may reduce the heat dissipation of the bonded body. The three-point bending strength of the silicon nitride substrate is preferably 600 MPa or more. Furthermore, the thermal conductivity is preferably 80 W / m·K or more. By increasing the strength of the silicon nitride substrate, the substrate thickness can be reduced. Therefore, the three-point bending strength of the silicon nitride substrate is preferably 600 MPa or more, and even 700 MPa or more. The thickness of the silicon nitride substrate can be reduced to 0.40 mm or less, and even 0.30 mm or less. The three-point bending strength of an aluminum nitride substrate is approximately 300 to 450 MPa. On the other hand, the thermal conductivity of an aluminum nitride substrate is 160 W / m·K or more. Because the strength of an aluminum nitride substrate is low, the substrate thickness is preferably 0.60 mm or more. The three-point bending strength of aluminum oxide substrates is approximately 300 to 450 MPa, but aluminum oxide substrates are inexpensive.Also, the three-point bending strength of Al2O3 substrates is high at approximately 550 MPa, but their thermal conductivity is approximately 30 to 50 W / m·K. The ceramic substrate 2 is preferably either a silicon nitride substrate or an aluminum nitride substrate. The silicon nitride substrate and the aluminum nitride substrate are nitride ceramic substrates. Nitride ceramics react with an active metal brazing material containing Ti to form titanium nitride. Furthermore, oxide ceramics react with an active metal brazing material containing Ti to form titanium oxide. A pure copper plate or a copper alloy plate can be used for the copper plate 3. The copper plate 3 is preferably oxygen-free copper. As specified in JIS-H-3100 (ISO1337, etc.), oxygen-free copper has a copper purity of 99.96 wt% or more.
[0009] The bonding layer contains Ag, Cu, Ti, and one or two first elements selected from Sn and In. Ag (silver), Cu (copper), and Ti (titanium) are essential constituent elements. In addition to these essential constituent elements, the bonding layer also contains one or two first elements selected from Sn (tin) and In (indium). Cu (copper) is the element that serves as the base material for the bonding layer. Even if Cu diffuses into the copper plate, it does not deteriorate the copper plate. Ti (titanium) is an element that reacts effectively with the ceramic substrate to form a strong bond. Ag (silver) is an element that easily alloys with Ti. Sn (tin) or In (indium) are elements that are effective in lowering the melting point of the bonding brazing material that forms the bonding layer. As will be described later, a fast heating rate is effective in obtaining the desired bonding layer. To do this, it is necessary for the material to contain Sn or In.
[0010] At the bonding interface between the copper plate and the bonding layer, a Ti alloy of Ti and one or more elements selected from Ag, Cu, Sn, and In is present, and the Ti alloy is present in an amount of 30% or more per 30 μm length of the bonding interface. An example of the bonding layer is shown in Figure 2. In Figure 2, 2 is a ceramic substrate, 3 is a copper plate, 4 is a bonding layer, 5 is a Ti alloy region, 6 is a Ti-poor region, and 7 is a diffusion region. A scanning electron microscope - energy dispersive X-ray spectroscopy (SEM-EDX) was used to measure the presence or absence of Ti alloy and the mass ratio of each element at the bonding interface between the copper plate 3 and the bonding layer 4. An example in which the bonding layer and Ti alloy contain Sn will be described below. The cross section of the bonded body 1 was used as the measurement area. The cross section of the bonded body 1 was parallel to the direction perpendicular to the surface of the ceramic substrate 2. The SEM used is a JEOL JSM-IT100 or a device with equivalent performance. The EDX used is a JEOL EX-9440IT4L11 or a device with equivalent performance. First, an area analysis is performed using EDX, covering a measurement area of 30 μm × the thickness of the bonding layer. The 30 μm in the measurement area is the length in the direction parallel to the surface of the ceramic substrate 2. The thickness of the bonding layer in the measurement area should include the interface between the copper plate and the bonding layer and the central region of the bonding layer.
[0011] At the bonding interface between the copper plate and the bonding layer, a Ti alloy containing Ti and one or more elements selected from Ag, Cu, Sn, and In is present. Examples of Ti alloys include TiAg alloys, TiCu alloys, TiSn alloys, and TiIn alloys. Ti alloys containing two or more elements of Ag, Cu, Sn, or In may also be used. The Ti alloy may also be a compound or intermetallic compound containing Ti. Ti alloys include reaction products formed by the reaction of constituent elements and mixtures in which the constituent elements are phase-separated and mixed. In other words, a Ti alloy refers to a mixture of Ti and one or more elements selected from Ag, Cu, Sn, and In. The Ti alloy is present in 30% or more per 30 μm length of the bonding interface. Presence of 30% or more per 30 μm length of the bonding interface means that the Ti alloy is present in an amount of 9 μm or more per 30 μm. It is not necessary for a single Ti alloy lump to be present in 30% or more per 30 μm length of the bonding interface; the Ti alloy may be present in multiple separated pieces. It is sufficient that the total amount of the Ti alloy is present in 30% or more per 30 μm length of the bonding interface. The presence of a Ti alloy at the bonding interface can prevent Ag, Sn, and In from diffusing into the copper plate. If Ag diffuses into the copper plate, it may precipitate on the surface of the copper plate. If Ag is present on the surface of the copper plate, the wettability of the solder decreases when mounting semiconductor elements. Furthermore, if Sn or In diffuses into the copper plate, the melting point of the copper plate decreases. If the melting point of the copper plate decreases, the copper plate may distort during bonding or TCT testing. The presence of a Ti alloy at the bonding interface can prevent elements that have a negative effect on the copper plate from diffusing.
[0012] When the cross section of the bonding layer is analyzed, the mass ratio of Ag is preferably 20 mass % or less. Cu Mass of Ag relative to M Ag Ratio of M Ag / M Cu It is preferable that the mass ratio M in the area analysis is 1 / 6 or less. By making the Ag content in the area analysis 20 mass % or less, the TiAg alloy is easily formed. Therefore, the Ag content is preferably 1 mass % or more and 20 mass % or less.Ag / M Cu The fact that the ratio is 1 / 6 or less indicates that the Cu content in the bonding layer is 6 times or more the Ag content. By reducing the Ag content and increasing the Cu content, it becomes easier to form a Ti alloy. In addition, when the cross section of the bonding layer was analyzed, the mass of Ag, M Ag and the mass of Ti, M Ti The mass of Ag, M, Ag Ratio of M Ag / (M Ag +M Ti ) is preferably 0.65 or less. An arbitrary cross section of the bonding layer 4 is subjected to area analysis using EDX. The measurement magnification of the SEM-EDX is set to 1000 times. The thickness direction of the measurement area is set to a range that includes the bonding layer 4 between the ceramic substrate 2 and the copper plate 3. The width of the measurement area for area analysis is set to 30 μm. The width is the dimension in a direction parallel to the surface of the ceramic substrate 2. The length in the thickness direction of the measurement area for area analysis is set to the thickness of the bonding layer 4. The bonding interface between the ceramic substrate 2 and the bonding layer 4 is the bonding interface between the ceramic substrate 2 and the Ti aggregation layer. If the ceramic substrate 2 is a nitride-based ceramic substrate, the Ti aggregation layer contains titanium nitride (TiN). The atomic ratio of titanium to nitrogen in the titanium nitride contained in the Ti aggregation layer may be other than 1:1. The bonding interface between the bonding layer 4 and the copper plate 3 is the farthest point (farthest point from the ceramic substrate 2) within the measurement area where the components of the bonding layer connect and come into contact with the copper plate 3. Because the bonding layer 4 contains Ti, Ag, Sn, or In, the bonding interface between the bonding layer 4 and the copper plate 3 is determined by the diffusion state of these elements. Furthermore, if the ceramic substrate 2 is an oxide-based ceramic substrate, the Ti aggregation layer contains titanium oxide. Titanium oxide as the Ti aggregation layer may be present in compounds with various atomic ratios, such as TiO2, TiO, and Ti2O3. Three arbitrary non-overlapping measurement areas are measured by EDX, and the average mass of each element is calculated. This makes it possible to determine the mass ratio of Ag to Ti in the bonding layer 4. Mass ratio M Ag / (M Ag +M Ti) is 0.65 or less, it means that the amount of Ag in the bonding layer is small. This can enhance the barrier effect of Ti against Ag. At least a part of the Ti alloy is an alloy containing Ti and Ag. The Ti alloy preferably includes a Ti-rich region containing Ti and Ag. In the Ti-rich region, the mass M of Ag is Ag mass M of Ti relative to Ti Ratio of M Ti / M Ag is 0.6 or more. In Ti alloy 5, M Ti / M Ag The region where the mass ratio M is 0.6 or more is defined as the Ti-rich region. The Ti-rich region may be a part of the Ti alloy 5 or the whole of the Ti alloy 5. Hereinafter, the Ti alloy 5 will also be referred to as the Ti-rich region 5. Ag is an element that easily diffuses into the copper plate. On the other hand, Ag is an element that easily alloys with Ti. The mass ratio M Ti / M Ag By providing an alloy containing Ti and Ag with a mass ratio M of 0.6 or more, it is possible to suppress the diffusion of Ag into the copper plate. Ti / M Ag If the ratio is 0.5 or less, the amount of Ag is so high that the diffusion effect into the copper plate may be reduced. Hereafter, alloys containing Ti and Ag may also be referred to as TiAg alloys. Furthermore, as a result of the above-mentioned area analysis, if the area where Ti exists overlaps with the area where Ag exists, it can be determined that a TiAg alloy has been formed. Regarding Sn, In, Cu, and C, which will be described later, if the area where these elements exist overlaps with the area where Ti exists, it can be determined that these elements are present in the Ti alloy. To measure the mass ratio of elements in a Ti alloy, SEM-EDX point analysis is used. The measurement device is as described above. The measurement magnification for point analysis is set to 1000x. Point analysis is a measurement method in which the X-ray beam spot diameter is narrowed. It is effective for measuring mass ratios in a narrow range. The mass ratio M Ti / M Ag is 0.6 or more, and the mass ratio M Ti / M AgThe area where the mass ratio M is 0.5 or less is identified. Five arbitrary points in the area to be measured are measured by point analysis, and the average value of the mass of each element is taken as the composition of the Ti alloy. For example, the mass ratio M Ti / M Ag When it is desired to measure the composition of a Ti-rich region where the ratio is 0.6 or more, five arbitrary locations in the Ti-rich region are measured by point analysis. The Ti-rich region can suppress the diffusion of Sn or In into the copper plate. In other words, the Ti-rich region functions as a barrier layer that suppresses the diffusion of Ag, Sn, or In into the copper plate. The Ti-rich region is preferably at least a part of the Ti alloy present at the bonding interface. More preferably, the area ratio of the Ti alloy is 50% or more and 100% or less.
[0013] At least a part of the Ti alloy is an alloy containing Ti and a first element. The alloy containing Ti and a first element has a mass M of the first element. E1 mass M of Ti Ti Ratio of M Ti / M E1 It is preferable that a Ti-rich region exists where the mass ratio M is 0.4 or more. The Ti alloy at the bonding interface functions as a barrier layer. Ti / M E1 When a Ti-rich region exists where the ratio is 0.4 or more, Ti can suppress the diffusion of Sn or In into the copper plate. Hereinafter, an alloy containing Ti and Sn may also be referred to as a TiSn alloy. An alloy containing Ti and In may also be referred to as a TiIn alloy. A TiSn alloy or a TiIn alloy may also contain Ag. That is, a TiAgSn alloy or a TiAgIn alloy may also be present. Therefore, a TiAg alloy may also exist in the same region as a TiSn alloy or a TiIn alloy. The presence of a Ti alloy with a high Ti content by mass improves its function as a barrier layer.
[0014] FIG. 3 is a partially enlarged view of the bonding layer of the bonded body according to the embodiment. FIG. 3 shows a state in which 100% of the Ti alloy is a Ti-rich region. As shown in FIG. 3, the bonding layer 4 includes a region 4a located between the ceramic substrate 2 and the Ti-rich region 5. When comparing the amount of Cu in the central portion 5a of the Ti-rich region with the amount of Cu in the region 4a of the bonding layer 4, it is preferable that the amount of Cu in the central portion 5a is smaller. A smaller amount of Cu in the central portion 5a indicates that elements other than Cu are concentrated in the Ti-rich region 5. In other words, this indicates that the Ti-rich region 5 functions as a barrier layer. It is preferable that there is a region with a Cu content of 70% or more by mass on the ceramic substrate side of the Ti-rich region. The region on the ceramic substrate side of the Ti-rich region is a region located approximately 1 to 3 μm from the Ti-rich region toward the ceramic substrate, such as region 4a shown in FIG. 3. It is preferable that there is a region with a Cu content of 90% or more by mass between the Ti-rich region and the copper plate. The existence of a region with a Cu content of 90% or more by mass between the Ti-rich region and the copper plate indicates that the Ti-rich region 5 is present at the bonding interface between the copper plate 3 and the bonding layer 4. To confirm the mass ratio, the Cu content is measured in a region located approximately 1 to 3 μm from the Ti-rich region 5 toward the copper plate. The Ti-rich region 5 is present at the bonding interface between the copper plate 3 and the bonding layer 4. It is preferable that there is a region with a Cu content of less than 90% on the ceramic substrate 2 side of the Ti-rich region 5. It is also preferable that there is a region with a Cu content of 90% or more by mass between the copper plate 3 and the Ti-rich region 5. This indicates that there is a difference in the Cu mass ratio between the two regions sandwiching the Ti-rich region 5. The Ti-rich region 5 has a barrier effect against Ag, Sn, and In, which causes a difference in the mass ratio of Cu. The stronger the function of the Ti-rich region 5 as a barrier layer, the greater the difference in the mass ratio of Cu between the two regions on either side of the Ti-rich region 5. The above-mentioned area analysis is used to measure the mass ratio of Cu in these regions. The Ti-rich region 5 preferably contains carbon. By adding carbon to the brazing filler metal, the fluidity and wettability of the brazing filler metal can be controlled. The fact that the Ti-rich region 5 contains carbon indicates that the Ti-rich region 5 also functions as a barrier layer that traps carbon. Furthermore, SEM-EDX point analysis is used to measure the amount of Cu in the center 5a of the Ti-rich region 5 and the region 4a of the bonding layer 4. For the center of the Ti-rich region, point analysis is performed near the center of the Ti-rich region. For the region of the bonding layer, point analysis is performed on a region located on the ceramic substrate side about 1 to 3 μm from the Ti-rich region. Point analysis can be performed at any one location for each. For measuring the amount of Cu between the copper plate and the Ti-rich region, point analysis is performed on a region located on the copper plate side about 1 to 3 μm from the Ti-rich region.
[0015] It is preferable that a Ti-poor region exists in the center of the bonding layer. In the Ti-poor region, the mass M of Ag is Ag mass M of Ti relative to Ti Ratio of M Ti / M Ag is 0.1 or less. The central portion of the bonding layer is the center in the thickness direction of the bonding layer 4. The region located between the interface between the ceramic substrate 2 and the bonding layer 4 and the interface between the bonding layer 4 and the copper plate 3 is called the central portion. The Ti content of the Ti-rich region is higher than the Ti content of the Ti-poor region. Mass ratio M at the center of the bonding layer Ti / M Ag A ratio of 0.1 or less indicates that the amount of Ti is significantly smaller than the amount of Ag. The active metal bonding layer includes a Ti aggregation layer formed on the surface of the ceramic substrate 2. The Ti aggregation layer of the nitride ceramic substrate 2 includes titanium nitride (TiN). The Ti aggregation layer of the oxide ceramic substrate 2 includes titanium oxide. By forming a Ti aggregation layer on the surface of the ceramic substrate 2, the bonding strength can be improved. The fact that there is little Ti in the center of the bonding layer indicates that Ti in the bonding layer exists as a Ti agglomerated layer and as a Ti alloy at the bonding interface between the copper plate 3 and the bonding layer 4. In other words, this indicates that Ti in the bonding layer has the functions of both improving the bonding strength and suppressing the diffusion of Ag and other substances into the copper plate. In addition, the bonding layer contains a mass ratio M Ti / M Ag If the Ti agglomerated layer on the surface of the ceramic substrate 2 is not connected to the Ti-rich region at the interface of the bonding layer 4 of the copper plate 3, the mass ratio M Ti / M Ag There may be a region where the mass ratio M exceeds 0.1. Ti / M Ag It is effective that the Ti agglomerated layer and the Ti-rich region are separated from each other by the region where ρ is 0.1 or less. In the Ti-poor region, the mass of Cu M Cu Mass of Ag relative to M Ag Ratio of M Ag / M Cu It is preferable that the mass ratio M in the Ti-poor region at the center of the joining layer is 0.1 or less. Ag / M Cu When the Ag content is large, the mass ratio M Ti / M Ag The Ti-poor region is preferably present in at least 50% of the central portion of the bonding layer. The composition of the Ti-poor region is determined by measuring an arbitrary area (50 μm x 3 μm) on a horizontal line passing through the center of the bonding layer 4 and averaging the results. When analysis cannot be performed in a single field of view, the average value can be calculated using the results of multiple area analyses.
[0016] When the Ag content in the Ti-rich region is A (wt %) and the Ag content at a location 30 μm into the copper plate from the bonding interface is B (wt %), it is preferable that A>B. As shown in Figure 2, the diffusion region 7 extends from the bonding interface between the copper plate 3 and the bonding layer 4 to a point 30 μm into the copper plate 3. The bonding interface between the copper plate 3 and the bonding layer 4 can be determined from the location of the Ti alloy 5, which has a Ti-rich region. The fact that A>B indicates that the amount of Ag diffused into the copper plate is smaller than that in the Ti-rich region at the bonding interface between the copper plate 3 and the bonding layer 4. Ag is an element that easily diffuses into copper plates. Even in the narrow diffusion region 7 of 30 μm, the fact that A>B indicates that the Ti-rich region functions as a barrier layer. When the amount of Sn in the Ti-rich region is D (wt%) and the amount of Sn at a location 30 μm into the copper plate from the bonding interface is E (wt%), it is preferable that D>E. This indicates that the diffusion of Sn into the copper plate is suppressed. The same applies when Sn is replaced with In. The thickness of the copper plate is preferably 0.3 mm or more. The Ti-rich region at the bonding interface between the copper plate 3 and the bonding layer 4 can suppress the diffusion of Ag, Sn, or In into the copper plate. The thicker the copper plate, the more susceptible it is to the diffusion of Ag, Sn, or In. Because diffusion can be suppressed, defects can be suppressed even if the copper plate is made thicker, such as 0.3 mm or more, or even 0.6 mm or more.
[0017] The bonded body described above is suitable for a circuit board. Also, a semiconductor element can be mounted on the circuit board according to the embodiment to be used in a semiconductor device. Fig. 4 is a schematic diagram showing an example of a circuit board. Fig. 5 is a schematic diagram showing an example of a semiconductor device. In Fig. 4 and Fig. 5, 8 is a copper circuit part, 9 is a heat sink, 10 is a semiconductor element, 11 is a lead frame, 20 is a circuit board, and 30 is a semiconductor device. In the circuit board 20 shown in FIG. 4 , the copper plate 3 on the front side of the bonded body 1 is processed into a copper circuit portion 8, and the copper plate 3 on the back side is processed into a heat sink 9. The circuit board 20 is fabricated by providing a circuit shape on the copper plate 3 of the bonded body 1. In the semiconductor device 30 shown in FIG. 5 , a semiconductor element 10 is mounted on the copper circuit portion 8 of the circuit board 20. In the semiconductor device 30, a lead frame 11 or the like may be mounted in addition to the semiconductor element 10, as needed. In the example shown in FIG. 4 , the circuit board 20 has a structure provided with two copper circuit portions 8, but the structure of the circuit board 20 is not limited to this example. The number and size of the copper circuit portions 8 can be changed as needed. The number of semiconductor elements 10 and the number of lead frames 11 can also be changed arbitrarily. Furthermore, in FIG. 4 , the copper plate 3 on the back side is provided as a heat sink 9, but a circuit structure may be provided on each of the copper plates 3 on both sides. If necessary, a sloped shape may be imparted to the side surface of the copper circuit portion 8 and the side surface of the heat sink 9. If necessary, the bonding layer 4 may be provided with a protruding portion that protrudes from the side surface end of the copper circuit portion 8 and the side surface end of the heat sink 9. An etching process is preferably used to impart the circuit structure and sloped shape to the side surface of the copper plate.
[0018] Next, a method for manufacturing the bonded structure according to the embodiment will be described. The method for manufacturing the bonded structure according to the embodiment is not limited as long as the bonded structure according to the embodiment has the above-described configuration. Here, an example of a method for obtaining the bonded structure according to the embodiment with a high yield will be described. First, prepare a ceramic substrate 2. Examples of the ceramic substrate 2 include a silicon nitride substrate, an aluminum nitride substrate, an aluminum oxide substrate, and an arugula substrate. An arugula substrate is a substrate made of a mixture of aluminum oxide and zirconium oxide. The copper plate 3 can be an oxygen-free copper plate or a copper alloy plate. The copper plate is preferably oxygen-free copper. As specified in JIS-H-3100 (ISO1337, etc.), oxygen-free copper is a copper plate with a copper purity of 99.96 wt% or more. Next, a brazing filler metal is prepared. The brazing filler metal preferably contains 50% by mass or more of Cu, 4% by mass to 30% by mass of Ti, 5% by mass to 40% by mass of one or two selected from Sn and In, 1% by mass to 20% by mass of Ag, and 0% by mass to 2% by mass of carbon. Conventional active metal brazing filler metals contain 40% by mass or more of Ag. By setting the Ag content to 1% by mass to 20% by mass, the mass ratio M Ti / M Ag Therefore, a Ti-rich region where the σ is 0.6 or more is easily formed. Furthermore, a brazing filler metal that can be used for joining even when subjected to a rapid heating process at a temperature rise rate of 20° C. / min or more is prepared. The brazing filler metal preferably has an endothermic peak in the range of 520° C. to 590° C. in a DSC curve obtained in a temperature rising step at a temperature rising rate of 20° C. / min.
[0019] DSC curves are obtained by applying heat to a sample using a differential scanning calorimeter (DSC) to measure whether endothermic or exothermic reactions occur. When an endothermic or exothermic reaction occurs, a peak appears on the DSC curve. A negative peak indicates an endothermic reaction, while a positive peak indicates an exothermic reaction. An endothermic reaction indicates that the sample is melting or decomposing. An exothermic reaction indicates that the constituent elements of the sample are reacting with each other to form or solidify a compound (including alloys). The larger the peak, the greater the heat of reaction. Here, negative peaks are called endothermic peaks, and positive peaks are called exothermic peaks. The apex of a peak is called the peak top. The difference between the maximum and minimum points of a peak is called the peak height. For example, an endothermic peak is in the negative direction, so it goes up, down, and up again. An endothermic peak includes changes from maximum to minimum to maximum. This minimum point (the lowest point) is the peak top. Of the maximum points on the low-temperature and high-temperature sides of the minimum point, the one with the larger value (the peak with the larger positive value) is considered the maximum point. The peak height is the value obtained by subtracting the minimum point from the maximum point. For example, an exothermic peak is in the positive direction, so it goes down, up, down again. The exothermic peak includes changes from minimum point to maximum point to minimum point. This maximum point (the point where it has risen the most) is the peak top. Of the minimum points on the low-temperature and high-temperature sides of the maximum point, the one with the smaller value (the peak with the larger negative direction) is considered to be the minimum point. The peak height is the value obtained by subtracting the minimum point from the maximum point. Note that the end of an endothermic peak (a peak in the negative direction) may appear to be an exothermic peak (a peak in the positive direction), but this will be counted as an exothermic peak.You can also draw a baseline to determine each peak. The DSC used is a NETZSCH TGA-DSC simultaneous thermal analyzer STA449-F3-Jupiter or a device with equivalent performance. Measurements are performed in an Ar (argon) flow, with an appropriate amount of brazing filler metal dropped into an alumina container. The alumina container is closed with its lid closed. Measurements are performed in an Ar atmosphere to prevent the brazing filler metal from reacting with the atmosphere. The dropped amount (mg) is measured using a balance. A sample with a solid content of 15 mg or more is used.
[0020] The temperature profile used to determine the DSC curve consists of the above-mentioned heating step, holding step, and temperature decreasing step. The heating step is a step of increasing the temperature from room temperature to 950°C at a heating rate of 20°C / min. The holding step is a step of holding at 950°C for 20 minutes. The temperature decreasing step is a step of decreasing the temperature from 950°C to room temperature at a heating rate of 20°C / min. The holding step is performed after the heating step, and the temperature decreasing step is performed after the holding step. Hereinafter, the DSC curve of the heating step at a heating rate of 20°C / min may also be referred to as the DSC curve of the heating step. The DSC curve of the temperature decreasing step at a heating rate of 20°C / min may also be referred to as the DSC curve of the temperature decreasing step. In the DSC curve, a difference of 0.02 mW / mg or more in heat flow between the baseline and the apex of the protrusion was counted as a peak.
[0021] Fig. 6 shows a DSC curve (500 to 600°C) of the brazing filler metal used in Example 1 during the heating process. Fig. 7 shows a DSC curve (800 to 900°C) of the brazing filler metal used in Example 1 during the heating process. In Figs. 6 and 7, the horizontal axis represents temperature (°C) and the vertical axis represents heat flow (mW / mg). In Figs. 6 and 7, heat flow is abbreviated as DSC. The DSC curve for the temperature-raising step at a temperature-raising rate of 20°C / min preferably has an endothermic peak in the range of 520°C to 590°C. The DSC curve for the temperature-raising step preferably has an endothermic peak in the range of 810°C to 890°C. The endothermic peak in the range of 520°C to 590°C for the DSC curve for the temperature-raising step is referred to as the first endothermic peak. When the DSC curve for the temperature-raising step has two or more endothermic peaks in the range of 520°C to 590°C, the largest peak is referred to as the first endothermic peak. The largest peak refers to a peak that is large on the minus side. The endothermic peak in the range of 810°C to 890°C for the DSC curve for the temperature-raising step is referred to as the second endothermic peak. When the DSC curve for the temperature-raising step has two or more endothermic peaks in the range of 810°C to 890°C, the largest peak is referred to as the second endothermic peak. The largest peak refers to a peak that is large on the minus side. Figure 6 shows an example of a first endothermic peak. FIG. 7 shows an example of the second endothermic peak.
[0022] The first endothermic peak indicates the decomposition of TiH2. The decomposed hydrogen has the effect of removing impurity oxygen in the brazing filler metal and activating the metal components. Conventional active metal brazing filler metals are AgCuSnTi brazing filler metals containing 40% or more by mass of Ag. With conventional active metal brazing filler metals, the TiH2 decomposition reaction occurs at 480–500°C. In other words, the DSC curves of conventional active metal brazing filler metals do not have a first endothermic peak. By shifting the TiH2 decomposition reaction toward higher temperatures, nitriding of the brazing filler metal can be suppressed. When a nitride-based ceramic substrate and a copper plate are joined using an active metal brazing filler metal, a Ti agglomerated layer forms on the surface of the ceramic substrate. By shifting the TiH2 decomposition reaction toward higher temperatures, nitriding of the Ti in the brazing filler metal before it reacts with the ceramic substrate can be suppressed. This allows joining in a nitrogen atmosphere.
[0023] The second endothermic peak indicates the melting reaction between Cu and the first element. This melting reaction may also include the melting reaction between Ag and copper. Cu and the first element are the base metal elements of the brazing filler metal. Therefore, the second endothermic peak indicates the reaction in which the brazing filler metal melts and generates a liquid phase. In conventional active metal brazing filler metals, the decomposition reaction of TiH2 occurs at 480 to 500°C. In other words, conventional active metal brazing filler metals do not generate the first endothermic peak. By using a brazing filler metal that generates the first endothermic peak, the temperature difference between the peak indicating the decomposition reaction of TiH2 and the second endothermic peak indicating the melting reaction between Cu and the first element can be reduced. This allows for maintaining bondability even when the heating rate during the joining process is increased.
[0024] The DSC curve for the temperature-lowering process at a temperature-lowering rate of 20°C / min preferably has an exothermic peak. The exothermic peak during the temperature-lowering process indicates that compound (alloy) formation or solidification of the bonding layer is occurring. The thermal stress is greatest when the molten brazing material solidifies. This is because, after the bonding interface is formed, components with different thermal expansion coefficients are constrained, and stress is generated during cooling due to the difference in thermal expansion. For this reason, the DSC curve for the temperature-lowering process preferably has an exothermic peak at or below 890°C. The DSC curve may have two or more exothermic peaks. Having two or more exothermic peaks indicates that compound (alloy) formation or solidification of the bonding layer is occurring in multiple steps. This improves the stress relaxation effect of the bonded body. Furthermore, the DSC curve for the temperature-lowering step at a temperature-lowering rate of 20°C / min preferably has an exothermic peak between 450°C and 550°C. The exothermic peak between 450°C and 550°C in the DSC curve for the temperature-lowering step at a temperature-lowering rate of 20°C / min is called the first exothermic peak. If there are two or more exothermic peaks in this temperature range, the largest peak is considered to be the first exothermic peak. If the exothermic peak for the temperature-lowering step is less than 450°C, the solidification temperature may be too low, which may reduce the reliability of the bond. On the other hand, if the exothermic peak is higher than 550°C, thermal stress may increase. Furthermore, when comparing the peak top temperatures of the first endothermic peak in the temperature-raising step and the first exothermic peak in the temperature-reducing step, it is preferable that the peak top temperature of the first exothermic peak be lower. The first endothermic peak is mainly generated by the decomposition reaction of TiH2. On the other hand, the first exothermic peak in the temperature-reducing step is an exothermic reaction generated by solidification of the bonding layer or the formation of a Ti compound. By setting the peak top position of the first exothermic peak in the temperature-reducing step to a lower temperature than the peak top position of the first endothermic peak in the temperature-raising step, the occurrence of thermal stress in the temperature-reducing step can be suppressed. Note that the temperature-reducing step does not necessarily have to have a first exothermic peak as long as it has an exothermic peak. Furthermore, having two or more exothermic peaks in the DSC curve in the temperature-reducing step can achieve the same effect.
[0025] The brazing filler metals described above can be used for bonding even if the heating rate is 20°C / min or more or the temperature drop rate is 20°C / min or more. The bonding atmosphere may be a vacuum or a nitrogen atmosphere. Note that a vacuum is defined as a temperature of 1×10 -3 The nitrogen atmosphere is an atmosphere containing 70 vol % or more of nitrogen. Examples of components other than nitrogen include argon gas and air.
[0026] Controlling the brazing filler metal composition is effective for controlling the DSC curve. The brazing filler metal preferably contains 50% by mass or more of Cu, 4% by mass to 30% by mass of Ti, 5% by mass to 40% by mass of one or two elements selected from Sn and In, 1% by mass to 20% by mass of Ag, and 0% by mass to 2% by mass of carbon. The carbon content is preferably 0.1% by mass to 1% by mass. The total content of Cu, Ti, and the first element is preferably 80% by mass or more, and more preferably 90% by mass or more and 99% by mass or less. The total content of Cu and the first element is preferably 70% by mass or more. By reducing the proportion of Ag, the melting point of the brazing filler metal can be increased. This makes it possible to obtain a brazing filler metal with the desired DSC curve even if the heating rate and cooling rate are increased.
[0027] The average particle size D of Cu powder, which is the raw material for brazing material, 50 The average particle size D of the TiH2 powder is preferably 12.0 μm or less, and more preferably 10.0 μm or less. 50 The average particle size D of the Sn powder or In powder is preferably 6.0 μm or less, and more preferably 4.0 μm or less. 50 The average particle size D of the powder C is preferably 16.0 μm or less, and more preferably 14.0 μm or less. 50 The average particle size D of the Ag powder is preferably 6.0 μm or less, and more preferably 4.0 μm or less. 50 The particle size is preferably 3.0 μm or less, and more preferably 2.0 μm or less. By controlling the particle size of the powder, the reaction of each powder can be made uniform. Average particle size of Cu powder D 50 is the average particle size D of the Sn or In powder 50As mentioned above, Cu and the first element are the base material for the brazing filler metal composition. Compared to Cu, Sn and In have lower melting points. By increasing the particle size of Sn or In, the reaction between Sn powder and Cu powder or the reaction between In powder and Cu powder can be made more uniform. This allows joining even when the heating rate or cooling rate is increased.
[0028] The process of joining a ceramic substrate and a copper plate is carried out using the above-described brazing filler metal. The brazing filler metal is mixed with an organic substance to prepare a brazing filler paste. The brazing filler paste is applied to the surface of the ceramic substrate 2 (or copper plate 3) to form a brazing filler paste layer. The copper plate 3 (or ceramic substrate 2) is placed on the brazing filler paste layer. The thermal bonding process is carried out in a vacuum or a nitrogen atmosphere. -3 This refers to a pressure of 100 Pa or less. Furthermore, a nitrogen atmosphere refers to an atmosphere containing 70 vol% or more of nitrogen. The nitrogen atmosphere preferably contains 70 vol% or more of nitrogen, and more preferably 85 vol% or more and 100 vol% or less. The nitrogen atmosphere may contain argon gas or air in addition to nitrogen. When heat bonding is performed in a nitrogen atmosphere, it can be performed under various conditions such as normal pressure, reduced pressure, or increased pressure.
[0029] In the heating step of the thermal bonding process, the heating rate is set to 20°C / min or more. In conventional active metal bonding methods, the heating rate was 5°C / min or less. By using a brazing filler metal having a DSC curve as described above, bonding is possible even if the heating rate is increased. There is no particular upper limit to the heating rate, but it is preferably 100°C / min or less. If the heating rate is faster than 100°C / min, the bonding properties may be reduced. Therefore, the heating rate is preferably 20°C / min or more and 100°C / min or less, and more preferably 30°C / min or more and 70°C / min or less. The temperature is raised to the bonding temperature in the heating process. The bonding temperature is set to 750°C or higher. The bonding temperature is also set to a temperature higher than the peak top temperature of the second endothermic peak. The second endothermic peak is between 810 and 890°C. By setting the bonding temperature higher than the peak top temperature of the second endothermic peak, the melting reaction of the brazing material can be properly initiated. For this reason, the bonding temperature is preferably 750°C or higher, and even more preferably 800°C or higher. The upper limit of the bonding temperature is preferably 1000°C or lower. If the bonding temperature is higher than 1000°C, it will be close to the melting point of copper (1085°C), and there is a possibility that the copper plate will deform. The bonding temperature is preferably maintained for 10 minutes or more. The time maintained at the bonding temperature is called the heating holding time. The heating holding time is preferably 10 minutes or more and 100 minutes or less. If the heating holding time is less than 10 minutes, there may not be enough time for the brazing material to melt and solidify. If the heating holding time is longer than 100 minutes, there is a possibility that Sn or In may diffuse too much into the copper plate.
[0030] After the heating and holding time is over, a temperature-lowering process is performed. This is the process of cooling from the joining temperature to room temperature. The temperature-lowering rate is set to 20°C / min or more. In conventional active metal joining methods, the temperature-lowering rate was about 5°C / min. By using a joining brazing material with a DSC curve as described above, joining is possible even if the temperature-lowering rate is increased. There is no particular upper limit to the temperature-lowering rate, but it is preferably 100°C / min or less. If the rate is faster than 100°C / min, there is a possibility that the joinability will decrease. For this reason, the temperature-lowering rate should be 20°C / min or more and 100°C / min or less, and more preferably 30°C / min or more and 70°C / min or less. If necessary, the heat bonding step may be carried out while a weight is placed on the bonded body 1.
[0031] The bonding process described above allows the production of the bonded body 1. By increasing the temperature increase rate in the heating process and the temperature decrease rate in the cooling process, the amount of heat applied to the bonded body 1 can be reduced. As a result, the distribution of the Ti alloy at the bonding interface between the copper plate 3 and the bonding layer 4 can be controlled. In addition, the amount of Ag, Sn, or In diffusing into the copper plate can also be reduced. Since the amount of heat applied to the bonded body 1 can be reduced, warping of the bonded body 1 and distortion of the copper plate 3 can also be reduced. The resulting bonded body 1 is etched and processed into a circuit board 20. If necessary, multiple pieces may be obtained. Multiple pieces are obtained by cutting a large bonded body to obtain smaller bonded bodies. There are also methods for dividing the bonded body or dividing the ceramic copper circuit board. To make it easier to divide, a scribing process may be performed.
[0032] (Example) (Examples 1 to 5, Comparative Example 1) The brazing filler metals shown in Tables 1 and 2 were prepared. Table 1 shows the particle size of the raw material powder, and Table 2 shows the composition ratio.
[0033] [Table 1]
[0034] [Table 2]
[0035] The brazing filler metal components of the examples and comparative examples were mixed with an organic binder to prepare brazing filler metal pastes, and the DSC curves of each brazing filler metal paste were measured using a DSC. The DSC used was a NETZSCH TGA-DSC simultaneous thermal analyzer STA449-F3-Jupiter. Measurements were performed in an Ar flow after an appropriate amount of brazing filler metal was dropped into an alumina container. The alumina container was closed with its lid on. The temperature program was a heating rate of 20°C / min, held at 950°C for 20 minutes, and a cooling rate of 20°C / min. A sample weighing 15 mg solid was used. The presence or absence of a first endothermic peak and a second endothermic peak during the temperature rise process was examined. The peak top temperatures were also examined. The results are shown in Table 3.
[0036] [Table 3]
[0037] As can be seen from the table, a first endothermic peak and a second endothermic peak were observed for the brazing filler metals according to the examples. In contrast, in Comparative Example 1, the endothermic peak indicating the decomposition reaction of TiH2 was below 520°C. That is, the first endothermic peak was not observed. Also, in Comparative Example 1, the endothermic peak indicating the melting reaction of Cu and the first element was 722°C. That is, the second endothermic peak was not observed. Next, a silicon nitride substrate was prepared as the ceramic substrate. It had a thermal conductivity of 90 W / m K, a three-point bending strength of 600 MPa, and dimensions of 50 mm x 40 mm x 0.32 mm. An oxygen-free copper plate measuring 50 mm x 40 mm x 0.5 mm was prepared as the copper plate. A 30 μm layer of brazing paste was applied to both sides of the ceramic substrate, and a copper plate was then placed on top of each layer. Next, the thermal bonding process was carried out. The bonding atmosphere was always a nitrogen atmosphere. The bonding conditions were also always 850°C x 20 minutes. The temperature rise and fall rates were set as shown in Table 4.
[0038] [Table 4]
[0039] The bonded bodies were manufactured by the above steps. Ten bonded bodies were manufactured for each of the example and the comparative example. Next, the cross-sectional structure of the resulting bonded body was observed. The cross-section of the bonded body was observed using SEM-EDX. Surface analysis was performed in the range of a measurement area of 30 μm × the thickness of the bonding layer. Surface analysis was performed in the range of a measurement area of 30 μm × the thickness of the bonding layer at three arbitrary locations. The average mass of each element obtained by the surface analysis was used to calculate the amount of Ag in the bonding layer, the mass ratio M Ag / M Cu In addition, the presence or absence of Ti alloy at the bonding interface between the copper plate 3 and the bonding layer 4 and the proportion of Ti alloy present per 30 μm length were determined. Using point analysis of SEM-EDX, the mass ratio M Ti / M Ag , the mass of Sn M Snmass M of Ti relative to Ti Ratio of M Ti / M Sn The mass ratio M Ti / M Ag , mass ratio M in the cross section of the bonding layer Ag / M Cu was measured. The amount of Cu in the Ti-rich region was compared with the amount of Cu in a portion of the bonding layer between the Ti-rich region and the ceramic substrate. The value obtained by point analysis was used for the amount of Cu in the Ti-rich region. The value obtained by area analysis of the corresponding portion was used for the amount of Cu in the portion of the bonding layer. We investigated whether the Cu content between the Ti-rich region and the copper plate was 90 wt% or more, whether the Cu content in the region below the Ti-rich region was 70 wt% or more, and whether the Ti-rich region contained carbon. For the region between the Ti-rich region and the copper plate, measurements were taken at a point 2 μm from the Ti-rich region toward the copper plate, and for the region below the Ti-rich region, measurements were taken at a point 2 μm from the Ti-rich region toward the ceramic substrate. The Ag and Sn contents in the diffusion region 7, 30 μm into the copper plate from the bonding interface, were also measured. The Ag content in the Ti-rich region at the bonding interface between the copper plate and the bonding layer was defined as A (wt%), and the Ag content in the copper plate at a point 30 μm into the bonding interface was defined as B (wt%). It was confirmed whether A > B. Furthermore, when the Sn content in the Ti-rich region was defined as D (wt%) and the Sn content in the copper plate at a point 30 μm into the bonding interface was defined as E (wt%), it was confirmed whether D > E was satisfied. The results are shown in Tables 5, 6, and 7.
[0040] [Table 5]
[0041] [Table 6]
[0042] [Table 7]
[0043] As can be seen from the table, in the bonded bodies according to the examples, the Ti alloy was present at the bonding interface between the copper plate and the bonding layer. In addition, 50% or more and 100% or less of the Ti alloy was present at a mass ratio of M Ti / M Ag The TiAg alloy had a SiO2 content of 0.6 or more. In addition, in the bonded bodies according to the examples, the amount of Ag in the diffusion region 30 μm from the bonding interface of the copper plates was smaller than the amount of Ag in the Ti alloy at the bonding interface. Similarly, the amount of Sn in the diffusion region of the copper plate was smaller than the amount of Sn in the Ti alloy at the bonding interface. It can be seen that the Ti alloy at the bonding interface between the copper plate and the bonding layer acts as a barrier layer that suppresses diffusion into the copper plate. In contrast, in Comparative Example 1, the proportion of Ti alloy at the interface between the copper plate and the bonding layer was small. Also, because an Ag-rich brazing filler metal was used, a Ti-rich region was formed, but the proportion of the Ti-rich region at the bonding interface between the copper plate and the bonding layer was small. Furthermore, the Ti-rich region in Comparative Example 1 did not contain carbon.
[0044] Next, the amount of warpage of the resulting bonded body and the bonding strength of the copper plate were measured. The amount of warpage was measured on the long side. A product with a warpage of 0.3 mm or less in all 10 pieces was designated the best product (◎). A product with 1 to 3 pieces with a warpage exceeding 0.3 mm was designated a good product (◯). A product with 4 or more pieces with a warpage exceeding 0.3 mm was designated a defective product (×). The bonding strength of the copper plate was defined as peel strength. Specifically, peel test samples were prepared for each example and comparative example. A strip-shaped copper plate was bonded to a ceramic substrate. The copper plate was bonded so that one end of the copper plate protruded from the ceramic substrate. The protruding copper plate was pulled vertically to measure the peel strength. The results are shown in Table 8. Further, an example in which the temperature increase rate and temperature decrease rate of Example 1 were set to 5°C / min was used as Reference Example 1. An example in which the temperature increase rate and temperature decrease rate of Comparative Example 1 were set to 5°C / min was used as Reference Example 2.
[0045] [Table 8]
[0046] As can be seen from the table, the bonded bodies according to the examples were excellent in terms of warpage and bonding strength. In contrast, in Comparative Example 1, because the Ag content was high, proper bonding was not achieved when the temperature increase and decrease rates were fast. Although the amount of warpage was small in Reference Example 1, the bonding strength was reduced. It can be seen that the brazing filler metals of the examples are suitable for fast bonding processes with a heating rate of 20°C / min or more. The same is true for Reference Example 2. In a nitrogen atmosphere, nitriding progressed in the brazing filler metal containing a large amount of Ag, and the bonding strength was reduced. From the above, it was found that if the brazing filler metal has a DSC curve with a predetermined peak at a temperature increase rate and a temperature decrease rate of 20°C / min, excellent bondability can be obtained even if the temperature increase rate and the temperature decrease rate in the bonding process are increased to 20°C / min or more. Therefore, it is found that the bonded body according to the embodiment has a small amount of warpage and is excellent in mass productivity.
[0047] Although several embodiments of the present invention have been described above, these embodiments are presented by way of example only and are not intended to limit the scope of the invention. These novel embodiments can be embodied in various other forms, and various omissions, substitutions, modifications, etc. can be made without departing from the spirit of the invention. Modifications of these embodiments are included within the scope and spirit of the invention, as well as within the scope of the invention and its equivalents as set forth in the claims. Furthermore, the above-described embodiments can be implemented in combination with each other. [Explanation of symbols]
[0048] REFERENCE SIGNS LIST 1...bonded body, 2...ceramic substrate, 3...copper plate, 4...bonding layer, 5...Ti alloy region, 6...Ti-poor region, 7...diffusion region, 8...copper circuit portion, 9...copper heat sink, 10...semiconductor element, 11...lead frame, 20...circuit board, 30...semiconductor device
Claims
1. a ceramic substrate; Copper plate and A bonded body including a bonding layer disposed on at least one surface of the ceramic substrate and bonding the ceramic substrate and the copper plate, the bonding layer contains 1 mass % or more and 20 mass % or less of Ag, 50 mass % or more of Cu, 4 mass % or more and 30 mass % or less of Ti, and one or two first elements selected from Sn and In, the first element being 5 mass % or more and 40 mass % or less of a first element; In a cross section of the bonded body in a first direction perpendicular to the surface of the ceramic substrate, a measurement area having a length of 30 μm in a second direction parallel to the surface and the length in the first direction corresponding to the thickness of the bonding layer is analyzed by SEM-EDX, and when the bonding interface between the bonding layer and the copper plate is determined to be the point where the components of the bonding layer are connected and in contact with the copper plate and are furthest from the ceramic substrate, a Ti alloy of Ti and at least one selected from Ag, Cu, Sn, and In is present at the bonding interface, A bonded body characterized in that when any three measurement areas on the cross section are analyzed by SEM-EDX and the total length of the Ti alloy present per 30 μm length of the bonded interface in the second direction is measured, the average value of the three measurement areas shows that the Ti alloy is present in an amount of 30% or more per 30 μm length.
2. When the measurement area in the cross section of the bonding layer is analyzed by EDX at a measurement magnification of 1000 times, the mass M of Cu Cu Mass of Ag relative to M Ag The ratio (M Ag / M Cu 2. The bonded body according to claim 1, wherein the ratio of the thickness of the bonded body to the thickness of the laminated body is 1 / 6 or less.
3. At least a part of the Ti alloy is an alloy containing Ti and Ag, When the alloy containing Ti and the first element is analyzed at a point on the cross section at a measurement magnification of 1000 times, the alloy containing Ti and Ag has a mass M of Ag. Ag Mass M of Ti relative to Ti The ratio (M Ti / M Ag 3. The joined body according to claim 1, wherein a Ti-rich region exists in which the ratio of Ti to Ti is 0.6 or more.
4. At least a part of the Ti alloy is an alloy containing Ti and the first element, When the alloy containing Ti and the first element is analyzed at a point on the cross section at a measurement magnification of 1000 times, the alloy containing Ti and the first element has a mass M of the first element. E1 Mass M of Ti relative to Ti The ratio (M Ti / M E1 4. The joined body according to claim 1, wherein a Ti-rich region exists in which the ratio of Ti to Ti is 0.4 or more.
5. a portion of the bonding layer is located between the Ti-rich region and the ceramic substrate, 5. The joined body according to claim 3, wherein the amount of Cu in the central portion of the Ti-rich region is less than the amount of Cu in the portion of the joining layer.
6. A joint described in any one of claims 3 to 5, characterized in that when the measurement area in the cross section of the joint layer is subjected to surface analysis by EDX at a measurement magnification of 1000 times, there is a region between the Ti-rich region and the copper plate where the mass ratio of Cu is 90% or more.
7. 7. The joined body according to claim 3, wherein the Ti-rich region contains carbon.
8. The center of the bonding layer in the direction connecting the ceramic substrate and the copper plate is provided with a mass M of Ag. Ag Mass M of Ti relative to Ti The ratio (M Ti / M Ag 8. The bonded body according to claim 1, wherein a Ti-poor region exists in which the Ti-poor region has a Ti-value of 0.1 or less.
9. 9. The bonded body according to claim 1, wherein the copper plate has a thickness of 0.3 mm or more.
10. A circuit board comprising the bonded body according to any one of claims 1 to 9.
11. The circuit board according to claim 10; a semiconductor element mounted on the circuit board.
12. A method for producing the bonded body according to any one of claims 1 to 9, comprising the steps of: a bonding brazing filler metal containing 50% by mass or more of Cu, 4% by mass or more and 30% by mass or less of Ti, 5% by mass or more and 40% by mass or less of one or two types selected from Sn and In, 1% by mass or more and 20% by mass or less of Ag, and 0% by mass or more and 2% by mass or less of carbon, wherein the bonding brazing filler metal has an endothermic peak at 520°C or more and 590°C or less in a DSC curve during a heating step when measured at a heating rate of 20°C / min;
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