WO2015037279A1 - 鉛フリーはんだ、鉛フリーはんだボール、この鉛フリーはんだを使用したはんだ継手およびこのはんだ継手を有する半導体回路 - Google Patents
鉛フリーはんだ、鉛フリーはんだボール、この鉛フリーはんだを使用したはんだ継手およびこのはんだ継手を有する半導体回路 Download PDFInfo
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- WO2015037279A1 WO2015037279A1 PCT/JP2014/063481 JP2014063481W WO2015037279A1 WO 2015037279 A1 WO2015037279 A1 WO 2015037279A1 JP 2014063481 W JP2014063481 W JP 2014063481W WO 2015037279 A1 WO2015037279 A1 WO 2015037279A1
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- mass
- lead
- solder
- free solder
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
- B23K35/00—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting
- B23K35/22—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by the composition or nature of the material
- B23K35/24—Selection of soldering or welding materials proper
- B23K35/26—Selection of soldering or welding materials proper with the principal constituent melting at less than 400 degrees C
- B23K35/262—Sn as the principal constituent
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
- B23K35/00—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting
- B23K35/02—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by mechanical features, e.g. shape
- B23K35/0222—Rods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by mechanical features, e.g. shape for use in soldering, brazing
- B23K35/0244—Powders, particles or spheres; Preforms made therefrom
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- C—CHEMISTRY; METALLURGY
- C22—METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
- C22C—ALLOYS
- C22C13/00—Alloys based on tin
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- C—CHEMISTRY; METALLURGY
- C22—METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
- C22C—ALLOYS
- C22C13/00—Alloys based on tin
- C22C13/02—Alloys based on tin with antimony or bismuth as the next major constituent
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
- B23K2101/00—Articles made by soldering, welding or cutting
- B23K2101/36—Electric or electronic devices
- B23K2101/40—Semiconductor devices
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- H10W70/66—
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- H10W72/252—
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- H10W72/5522—
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- H10W90/701—
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- H10W90/724—
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- H10W90/754—
Definitions
- the present invention has a lead-free solder, a lead-free solder ball, a solder joint using the lead-free solder, and a solder joint suitable for use in a semiconductor package such as a CSP, particularly a wafer level semiconductor package (semiconductor chip).
- the present invention relates to a semiconductor circuit.
- FIG. 1 is a cross-sectional view of a main part of a CSP type semiconductor package (CSP package), and FIG. 2 is a cross-sectional view of a main part of a chip-size WL-CSP semiconductor package (WL-CSP chip).
- CSP package CSP type semiconductor package
- WL-CSP chip chip-size WL-CSP semiconductor package
- the semiconductor chip 2 placed on the interposer 1 is molded with a resin in a state where it is connected to the electrode of the interposer 1 by wire bonding 3 using Au wire. . 4 shows this mold body.
- solder bump electrodes 5 are formed on the lower surface of the interposer 1, and solder balls as illustrated are joined to the solder bump electrodes 5.
- a CSP package 10 on which a plurality of solder bump electrodes 5 are formed is mounted on a circuit board 7 to produce a semiconductor circuit 15.
- the WL-CSP chip 20 is obtained by omitting the interposer 1 and the mold body 4, and a plurality of solder bump electrodes 5 are directly joined to the electrodes of the semiconductor chip 2 as shown in FIG. Is done.
- the package size is about (10 ⁇ 10) mm, whereas the WL-CSP chip 20 is in principle a chip size (for example, 4 ⁇ 4 mm). Therefore, the occupied area on the substrate of the package size can be greatly reduced, and an ultra-high density semiconductor circuit (mounting circuit) can be realized.
- the evaluation characteristics (evaluation items) of lead-free solder used for bonding solder balls such as WL-CSP chips are generally wettability (wetting spread), shear strength characteristics (shear characteristics), heat fatigue characteristics ( Heat cycle characteristics: TCT).
- the wettability is a characteristic necessary for forming a solder bump
- the shear strength characteristic is a characteristic necessary for maintaining the strength at the bonding interface between the solder and the substrate electrode.
- the strength characteristics are mainly solder characteristics required when lead-free solder is joined to a semiconductor package.
- the heat fatigue characteristic is a solder characteristic mainly required when a semiconductor package is mounted on a circuit board.
- Thermal fatigue characteristics are solder characteristics required when used in automotive electronic circuits that are used under severe conditions with large temperature changes. This is a characteristic that should be considered even when the difference in the thermal expansion coefficient is large.
- the CSP package 10 when the CSP package 10 is mounted on a circuit board, the CSP package (particularly, the interposer 1) and the circuit board (mounting board) 7 have a thermal expansion coefficient difference of about twice.
- the package (semiconductor chip 2) in the WL-CSP chip 20 and the circuit board 7 have a difference of about five times in the thermal expansion coefficient. For this reason, the influence of the repeated heat and cold on the thermal fatigue resistance of the solder joint is much greater in the WL-CSP chip 20 and greatly affects the reliability of the electronic circuit.
- Patent Document 1 a lead-free solder having a significantly improved heat-resistant fatigue characteristic has also been proposed.
- solder characteristics are solder characteristics required even in the case of electronic circuits mounted on consumer electronic equipment, but in addition to heat fatigue characteristics, solder such as the above-mentioned wettability and shear strength characteristics is used for any application. Adhesiveness (solder properties) is also required.
- consumer electronic devices refer to home appliances, mobile phones, multi-function information terminal devices (smartphones), personal computers, and the like.
- solder alloy made of Sn, Ag, Cu, Bi, Ni, etc. solder alloy made of Sn, Ag, Cu, Bi, Ni, etc.
- solder alloy solder solder alloy made of Sn, Ag, Cu, Bi, Ni, etc.
- solder properties such as wettability and shear strength is an important improvement theme.
- circuit elements are becoming increasingly miniaturized, and mobile phones are often dropped during use. It has become.
- the present invention solves such a conventional problem, and in addition to heat-resistant fatigue characteristics, lead-free solder and lead-free solder that further improve solder characteristics such as wettability and shear strength characteristics
- the present invention proposes a solder joint using balls and lead-free solder, and a semiconductor circuit having this solder joint.
- the lead-free solder according to the first aspect of the present invention is composed of Ag: 1.2 to 4.5% by mass, Cu: 0.25 to 0.75% by mass, Bi: 1 to It is characterized by comprising 5.8% by mass, Ni: 0.01 to 0.15% by mass, and the balance Sn.
- the lead-free solder according to claim 2 Ag: 2-4 mass%, Cu: 0.3-0.75 mass%, Bi: 1-5 mass%, Ni: 0.02-0.15 mass%, It consists of remainder Sn.
- the lead-free solder according to claim 3 is Ag: 2.5-3.5 mass%, Cu: 0.5-0.75 mass%, Bi: 3-5 mass%, Ni: 0.03-0. It consists of 12 mass% and the remainder Sn.
- the lead-free solder according to claim 4 has a total amount of at least one selected from the group consisting of P and Ge in the lead-free solder composition according to any one of claims 1 to 3 in a range of 0.0005 to 0.05 mass%. It is characterized by adding.
- the lead-free solder ball according to claim 5 is Ag: 1.2 to 4.5% by mass, Cu: 0.25 to 0.75% by mass, Bi: 1 to 5.8% by mass, Ni: 0.01 It is characterized by comprising 0.15 mass% and the remainder Sn.
- the lead-free solder balls according to claim 6 are: Ag: 2 to 4% by mass, Cu: 0.3 to 0.75% by mass, Bi: 1 to 5% by mass, Ni: 0.02 to 0.15% by mass And the remainder Sn.
- the lead-free solder balls according to claim 7 are: Ag: 2.5 to 3.5 mass%, Cu: 0.5 to 0.75 mass%, Bi: 3 to 5 mass%, Ni: 0.03 to 0 It is characterized by comprising 12 mass% and the balance Sn.
- the lead-free solder ball according to claim 8 has a total amount of at least one selected from the group consisting of P and Ge in the lead-free solder ball composition according to any one of claims 5 to 7, in a range of 0.0005 to 0.05. It is characterized by adding mass%.
- the solder joint according to claim 9 is Ag: 1.2 to 4.5 mass%, Cu: 0.25 to 0.75 mass%, Bi: 1 to 5.8 mass%, Ni: 0.01 to 0
- the lead-free solder which consists of .15 mass% and remainder Sn is used.
- solder joint according to claim 10 Ag: 2-4 mass%, Cu: 0.3-0.75 mass%, Bi: 1-5 mass%, Ni: 0.02-0.15 mass%, the balance It is characterized by using lead-free solder made of Sn.
- the solder joint according to claim 11 is Ag: 2.5-3.5% by mass, Cu: 0.5-0.75% by mass, Bi: 3-5% by mass, Ni: 0.03-0.12 It is characterized by using lead-free solder consisting of mass% and the balance Sn.
- a solder joint according to claim 12 is added to the lead-free solder composition according to any one of claims 9 to 11 in a total amount of at least one selected from the group consisting of P and Ge in an amount of 0.0005 to 0.05% by mass. It is characterized by using a lead-free solder that has been prepared.
- the semiconductor circuit according to claim 13 includes: Ag: 1.2 to 4.5 mass%, Cu: 0.25 to 0.75 mass%, Bi: 1 to 5.8 mass%, Ni: 0.01 to 0
- the lead-free solder which consists of .15 mass% and remainder Sn is used.
- solder alloy made of Sn, Ag, Cu, Bi, Ni, etc., and in addition to heat-resistant fatigue properties, general solder properties such as wettability and shear strength properties can be further improved.
- a ternary lead-free solder composed of Sn, Ag, Cu, Bi, and Ni is added in an amount of Ag: 1.2 to 4.5 mass%, Cu: 0.25 to 0.00. 75% by mass, Bi: 1 to 5.8% by mass, Ni: 0.01 to 0.15% by mass, and the balance is Sn.
- the addition amount of Ag is 1.2 mass% or more and 4.5 mass% or less (1.2 ⁇ Ag ⁇ 4.5).
- Ag forms an intermetallic compound Ag3Sn with Sn and contributes to the improvement of heat fatigue resistance (heat cycle resistance). Ag also has the effect of improving the wettability of the soldered part during soldering and lowering the liquidus temperature.
- the addition amount of Ag is less than 1.2% by mass (Ag ⁇ 1.2), the wettability (wetting spread) decreases, and when it is more than 4.5% by mass (4.5 ⁇ Ag), Not only can the heat fatigue characteristics and wettability be improved as much as they are added, but also the liquidus temperature rises and the solderability decreases. Since Ag is expensive, it is preferable in terms of economy that the addition amount is as small as possible.
- the content of Ag is particularly preferably 2 to 4% by mass even within the above range, and among these, 2.5 to 3.5% by mass is preferable.
- (2) addition amount of Cu (0.25 ⁇ 0.75 wt%) amount of Cu for is preferably more than 0.25 wt% 0.75 wt% or less (0.25 ⁇ Cu ⁇ 0.75) .
- amount of Cu added is less than 0.25% by mass (Cu ⁇ 0.25), the shear strength (shear strength) and wettability (wetting spread) at the interface between the solder joints are reduced, and the amount of Cu added is 0.1%.
- it exceeds 75% by mass (0.75 ⁇ Cu) wettability (wetting spread) is particularly deteriorated. Therefore, in order to further improve the overall characteristics of lead-free solder, the amount of Cu added is 0.75% by mass. % Or less (Cu ⁇ 0.75).
- the Cu content is preferably 0.3 to 0.75% by mass, and more preferably 0.5 to 0.75% by mass, even within the above range.
- Bi addition amount (1 to 5.8% by mass)
- the Bi addition amount is preferably 1% by mass or more and 5.8% by mass or less (1 ⁇ Bi ⁇ 5.8). Even if Bi exceeding the upper limit (5.8 ⁇ Bi) or adding Bi below the lower limit (Bi ⁇ 1) is added, the thermal fatigue characteristics deteriorate (decrease), so the amount of Bi added is
- the content is preferably 1 to 5.8% by mass, and more preferably 1 to 5% by mass, and particularly preferably 3 to 5% by mass. If the added amount exceeds 5% by mass (5 ⁇ Bi), a single phase of Bi appears, and Bi is originally a brittle metal, so that impact characteristics deteriorate. Further, in this range, the melting temperature range (difference between the solidus temperature and the liquidus temperature) becomes wide, and in the mounting process, there is a possibility that mounting defects such as component misalignment may occur.
- the addition amount of Ni is preferably 0.01% by mass or more and 0.15% by mass or less (0.01 ⁇ Ni ⁇ 0.15). .
- Ni addition is necessary to further improve the thermal fatigue resistance and to increase the mechanical strength of the solder alloy itself.
- the amount added is less than 0.01% by mass (Ni ⁇ 0.01), the effect of improving the heat fatigue resistance does not appear, and when it exceeds 0.15% by mass (0.15 ⁇ Ni), the wettability (wetting spread) is poor. Become. Therefore, even within the above range, 0.02 to 0.15% by mass is preferable, and an addition amount of 0.3 to 0.12% by mass is more preferable.
- the lead-free solder according to the present invention may contain P or Ge in addition to the above essential additives. This is to prevent solder oxidation and to suppress discoloration of the solder surface.
- one or more selected from the group consisting of P and Ge is added in a total amount of 0.0002 to 0.00. 05 mass% can also be added. These additions can further improve the overall characteristics of lead-free solder.
- P and Ge are less than 0.0002% by mass, the antioxidant effect is lost.
- the total amount exceeds 0.05% by mass, solder properties (wetting properties and shear strength properties) are deteriorated.
- P is preferably added in an amount of 0.0002% by mass
- Ge is preferably added in an amount of 0.03% by mass.
- the characteristics shown in Table 1 can be obtained by selecting the addition amount as described above. Can do. Wetability (wetting spread), shear strength characteristics and heat fatigue characteristics were tested.
- the form of the lead-free solder according to the present invention is not particularly limited. Wires, balls, powders, pellets, preforms, rods, lumps, and any form convenient for use such as solder plating for Cu core balls can be used. Note that the lead-free solder according to the present invention can reduce the ⁇ dose by using a low ⁇ wire. By using this in the periphery of the memory, soft errors can be prevented.
- (A) Thermal fatigue test The thermal fatigue test was evaluated using a solder ball having a diameter of 0.3 mm produced by the air ball-making method. Solder balls are produced by changing the addition amount (mixing amount) by the number of samples shown in Tables 1 to 5. That is, an evaluation board is produced for the number of samples and a heat fatigue test is performed. The thermal fatigue test is performed according to the following procedure. A chip used as a sample is a WL-CSP chip.
- a glass epoxy substrate for example, FR-4
- FR-4 glass epoxy substrate having a size of 30 ⁇ 120 mm and a thickness of 0.8 mm according to an electrode pattern with a solder paste, and then mounting a sample chip and performing a reflow process.
- an evaluation substrate was manufactured by performing a reflow process at 220 ° C. or higher (peak temperature of 245 ° C.) for 40 seconds.
- the resistance value was constantly measured by a series circuit.
- an Espec cold thermal shock apparatus TSA101LA is used, and after 10 minutes at ⁇ 40 ° C., 10 minutes at + 125 ° C. is applied as one temperature cycle (heat cycle). Then, the resistance value at each temperature cycle is obtained, and the number of temperature cycles up to that time is accumulated by assuming that the resistance value has doubled from the initial resistance value (3 ⁇ to 5 ⁇ ) as fatigue failure. This accumulated coefficient value is used as the heat fatigue test result (cycle number). In this example, the number of cycles of 1000 is defined as the specified value, and the specified value or more is considered appropriate.
- a solder ball having a diameter of 0.3 mm is placed on the printed flux and reflowed under conditions of 220 ° C. or more and 40 seconds and a peak temperature of 245 ° C. as a sample. After reflowing, the wetting spread area of this sample is measured according to JIS Z-3197 using a stereomicroscope. A sample having a wetting and spreading rate of 0.20 mm 2 (square mm) or more was considered appropriate.
- Dage As a device for measuring the shear strength, Dage: SERIES 4000HS) is used, and the shear strength (Newton N) is measured under the condition of 4000 mm / sec. Samples of 3.0N or higher as a result of the share test were regarded as non-defective products. Even in this case, a plurality of solder balls having different addition amounts shown in Tables 1 to 5 are prepared.
- the combination of Sn, Ag, Cu, Bi, and Ni was changed to (1.2 to 4.5) Ag, (0.25 to 0.75) Cu, (1 to 5.8) Bi, ( 0.01 to 0.15)
- the above test results for the ternary lead-free solder when Ni is selected as Sn and the balance as Sn will be described with reference to Tables 1 to 5.
- metals such as P and Ge can be added, and examples thereof are also described.
- the comparative example added less than the lower limit and the upper limit of the addition amount of each metal selected in the present invention, and other metal addition amounts were selected within the above-described value range of the present invention.
- Table 1 shows the overall characteristics of the lead-free solder according to the present invention.
- Examples 1 to 5 and 14 are experimental data when Ag is fixed at 2.0 mass%. As addition amount other than Ag, Example 1 is when all the lower limit values in Claim 2 of the present invention are selected, and Example 2 is when only Cu is slightly increased from the above lower limit value, and Example 3 Is when all intermediate values are selected except for Ag, Example 4 is when Cu is the upper limit value, and all other values are the lower limit values.
- Example 5 is when Ni is the lower limit value, and Cu is the lower limit value. Is an upper limit value, and Bi is a numerical value when an intermediate value (3.0) is set.
- Example 14 is data when the same value as in Example 1 is set and P is added as a metal to be added by 0.0002% by mass of the lower limit.
- Example 14 also has the effect of preventing solder oxidation and suppressing discoloration of the solder surface. Therefore, satisfactory results were obtained in all tests.
- Example 7 is experimental data when only Cu of Example 6 is changed to 0.7. In this case, a result almost equal to that in Example 9 was obtained. Incidentally, the results were 1400 times in the thermal fatigue test, 0.25 in the wettability test, and 4.1 in the shear test.
- Example 9 is a case where all others are set to the above lower limit value
- Example 10 is a case where Cu is set to an intermediate value of 0.5, the rest is set to the above lower limit value
- Example 11 is a case where Cu and Bi are set. This is the case where the intermediate value (0.5 and 3.0) is set and Ni is set to the upper limit value 0.15.
- Experimental data Example 15 is data when setting to the same value as in Example 13, selecting Ge as a metal to be added, and adding 0.03% by mass as the addition amount, which is close to the upper limit value.
- Comparative Examples 1 and 2 are cases where the compounding amount of Ag is selected outside the scope of the present invention, and Comparative Example 1 is a characteristic value when the lower limit value of Ag is selected to be “1”, which is lower than the present invention. Comparative Example 2 is a characteristic value when the upper limit value of Ag is selected to be “5”, which is a higher value than that of the present invention.
- the results of the shear test showed satisfactory values (3.0 or more) in any of the comparative examples, but in the heat fatigue test, the set number of times (target number of times) of 1000 cycles or more. Cannot be obtained, and the desired spread (0.2 or more) cannot be obtained.
- the amount of Ag to be added is preferably in the range of 1.2 to 4.5% by mass.
- a particularly preferable range is an intermediate value as described later.
- Comparative Examples 3 and 4 are cases in which the compounding amount of Cu is selected outside the scope of the present invention, and Comparative Example 3 is obtained when the lower limit value of Cu is selected to be “0.2”, which is lower than the present invention. It is a characteristic value, and Comparative Example 4 is a characteristic value when the upper limit value of Cu is selected as “0.8”, which is a higher value than that of the present invention.
- Comparative Example 3 the result of the share test is 2.6, which does not satisfy the specified value (3.0 or more). Comparative Example 4 showed a value 0.19 lower than the specified value (0.2) in the wetting spread. Therefore, it can be seen that the Cu addition amount covering all the characteristics is preferably in the range of 0.25 to 0.75 mass%.
- Comparative Examples 5 and 6 are cases where the blending amount of Bi is selected out of the scope of the present invention, and Comparative Example 5 is obtained when the lower limit value of Bi is selected to be “0.9” which is lower than the present invention.
- the comparative example 6 is a characteristic value when the upper limit value of Bi is selected to be “6”, which is a higher value than the present invention.
- the addition amount of Bi to be added is preferably in the range of 1 to 5.8.
- Comparative Example 7 is a characteristic value when Ni addition amount is selected out of the range of the present invention, and Ni is selected as “0.16” which is a higher value than the present invention.
- Comparative Example 7 showed a value 0.19 lower than the specified value (0.2) in the wetting spread. Therefore, it can be seen that the amount of Ni added is preferably 0.15% by mass or less.
- Example 8 is a case where the optimum blending amount of each composition is selected, and Ag is 3.5% by mass, Cu is 0.75% by mass, Bi is 5.0% by mass, and Ni is 0.1% by mass. This is the case. As is apparent from this table, favorable results were obtained in any of the melting point (216 ° C.), the heat fatigue test (1450 cycles), the wetting spread (0.25 mm 2), and the shear test (4.1 N). . It describes about the suitable compounding quantity of each component below.
- the compounding amount of Ag is “0” in Comparative Example 8, “1” which is lower than the present invention in Comparative Example 9, “2” in Example 5, “2.5” in Example 16, and in Example 17. “3.5”, “4” in Example 18, “5” having a higher value than that of the present invention in Comparative Example 10, and “6” having a higher value in Comparative Example 11 were selected. A graph of this is shown in FIG. The specified values of the above characteristics are also shown in this figure.
- the amount of Ag to be added is preferably in the range of 1.2 to 4.5% by mass. Even within the above-mentioned range, 2 to 4% by mass is preferable, and 2.5 to 3.5% by mass is particularly preferable.
- the compounding amount of Cu is “0” in Comparative Example 12, “0.2” which is lower than the present invention in Comparative Example 3, “0.3” in Example 1, “0.5” in Example 2, In Example 19, “0.7” was selected, in Example 4, “0.75”, in Comparative Example 13, “0.8”, which was higher than that of the present invention, and in Comparative Example 14, “1”, which was higher.
- a graph of this is shown in FIG. The specified values of the above characteristics are also shown in this figure.
- the amount of Cu to be added is preferably in the range of 0.25 to 0.75% by mass. Even within the above range, 0.3 to 0.75% by mass is preferable, and 0.5 to 0.75% by mass is particularly preferable.
- the result of the heat fatigue test did not satisfy the specified value (1000 cycles).
- the above test resulted in exceeding the specified value (1110 to 1410) in any of the examples.
- the values of Example 5, Example 20, and Example 21 are particularly good results.
- the best mode of Bi is when it is 5.0 mass%.
- the amount of Bi to be added is preferably in the range of 1.0 to 5.8% by mass. Even within the above-mentioned range, 1.0 to 5.0% by mass is preferable, and 3.0 to 5.0% by mass is particularly preferable.
- the blending amount of Ni is “0” in Comparative Example 19, the lower limit value “0.01” of the present invention in Example 22, “0.02” in Example 5, and “0.03” in Example 23.
- Example 24 is “0.1”
- Example 25 is “0.12”
- Example 26 is “0.15”
- Comparative Example 20 is “0.16”, which is higher than the present invention, and Comparative Example 21 is further Higher “0.20” was selected.
- FIG. 6 is a graph of this. The specified values of the above characteristics are also shown in this figure.
- Example 19 In Comparative Example 19, the target number of times (1000 times) cannot be obtained in the heat fatigue test, and in Comparative Example 20 and Comparative Example 21, the expected wetting spread (0.2 or more) cannot be obtained.
- Example 22 was a result (1100 times and 0.26 square mm, respectively) satisfying the specified values in heat fatigue resistance and wettability.
- the results (1390 to 1500) and (0.22 to 0.26) exceeding the specified values in the heat fatigue test and the wetting spread test were obtained.
- good results (1390 to 1500) and (0.25 to 0.26) were obtained in both heat fatigue resistance and wettability.
- the best mode of Ni is when it is 0.1 mass%.
- the amount of Ni to be added is preferably in the range of 0.01 to 0.15% by mass. Even within the above range, 0.02 to 0.15% by mass is preferable, and 0.03 to 0.12% by mass is particularly preferable.
- Ag is 1.2 to 4.5% by mass
- Cu is 0.25 to 0.75% by mass
- Bi is 1 to 5.8% by mass
- Ni is The intended purpose can be achieved by using lead-free solder with 0.01 to 0.15% by mass and the balance being Sn, and in particular, Ag is 2 to 4% by mass and Cu is 0.3 to 0.3%. It is preferable to use lead-free solder with 0.75% by mass, Bi of 1 to 5% by mass, Ni of 0.02 to 0.15% by mass, and the balance of Sn. Lead-free solder with 3.5% by mass, Cu 0.5-0.75% by mass, Bi 3-5% by mass, Ni 0.03-0.12% by mass and the balance Sn is suitable is there.
- the lead-free solder according to the present invention is made spherical, and the spherical lead-free solder balls are connected to the semiconductor chip 2 to produce a sample chip.
- the WL-CSP chip 20 was configured by mounting on the chip.
- the semiconductor circuit 15 can be obtained by mounting other electronic components on the circuit board 7 together with the WL-CSP chip 20.
- the WL-CSP chip 20 was used to confirm solder characteristics such as a heat fatigue test, shear test, and wettability. As shown in the above examples, good results were obtained. It can be easily understood that the solder characteristics described above can be realized for each of the solder joint and the semiconductor circuit including the lead-free solder ball by using the solder having the composition. Therefore, highly reliable lead-free solder, lead-free solder balls, solder joints using lead-free solder, and semiconductor circuits can be provided.
- the present invention can be used for in-vehicle electronic circuits and consumer electronic devices.
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Abstract
Description
Agの添加量は、1.2質量%以上で4.5質量%以下(1.2≦Ag≦4.5)が好ましい。
Agは、Snと金属間化合物Ag3Snを形成して耐熱疲労特性(耐ヒートサイクル性)の向上に寄与する。Agはまた、はんだ付け時にはんだ付け部に対する濡れ性を良好にするとともに、液相線温度を低下させる効果がある。
Cuの添加量は、0.25質量%以上0.75質量%以下(0.25≦Cu≦0.75)が好ましい。Cuの添加量が0.25質量%より少ない(Cu<0.25)とはんだ接合部の界面におけるせん断強度(シェア強度)や濡れ性(濡れ広がり)が低下し、Cuの添加量が0.75質量%を超える(0.75<Cu)と、特に濡れ性(濡れ広がり)が悪くなるので、鉛フリーはんだの総合特性のさらなる向上を目指すためには、Cuの添加量は0.75質量%以下(Cu≦0.75)に制限する必要がある。Cuの含有量は、上述の範囲内でも特に、0.3~0.75質量%が好ましく、その中でも0.5~0.75質量%がさらに好ましい。
Biの添加量は1質量%以上5.8質量%以下(1≦Bi≦5.8)が好ましい。上限を超えるBi(5.8<Bi)を添加しても、下限未満のBi(Bi<1)を添加しても、何れも耐熱疲労特性が劣化(低下)するので、Biの添加量は、1~5.8質量%が好ましく、そのなかでも、1~5質量%が好ましく、特に3~5質量%が好ましい。5質量%を超えた添加量(5<Bi)とすると、Biの単独相が現れ、Biはもともと脆い金属のため、衝撃特性が悪化してしまう。さらにこの範囲では、溶融温度域(固相線温度と液相線温度の差)が広くなり、実装工程において、部品の位置ずれ等の実装不良が発生する可能性がある。
Niの添加量は、0.01質量%以上0.15質量%以下(0.01≦Ni≦0.15)が好ましい。
この発明に係る鉛フリーはんだは、上記の必須添加物の他に、PやGeを添加してもよい。これは、はんだの酸化を防止してはんだ表面の変色を抑制するためであって、上記の必須添加物に、P、Geからなる群から選んだ1種以上を合計で0.0002~0.05質量%添加することもできる。これらの添加によって、鉛フリーはんだの総合特性のさらなる向上を計ることができる。
なお、本発明に係る鉛フリーはんだは、低α線材を使用することによりα線量を低減することができる。これをメモリ周辺に使用することによりソフトエラーを防止することができる。
気中造球法で作製した直径0.3mmのはんだボールを用いて耐熱疲労試験を評価した。はんだボールは表1~5に示す試料数だけ添加量(混合量)を替えて作製する。つまり、試料数だけ評価基板を作製して耐熱疲労試験を行う。耐熱疲労試験は以下の手順で実施する。試料として使用するチップは、WL-CSPチップである。
まず、厚み1.2mmのガラスエポキシ基板(FR-4)を用意し、この上に0.24mm × 16mmのスリット状の電極を形成する。このスリット状電極上に直径が0.24mmφのフラックス(千住金属工業株式会社製フラックスWF-6400)を、厚みが0.1mmとなるように印刷する。
まず厚みが1.2mmで、電極の大きさが直径0.24mmであるガラスエポキシ基板(FR-4)を用意する。次に、この電極の上に直径が0.24mmφで、厚みが0.1mmのフラックス(千住金属工業株式会社製フラックスWF-6400)を印刷する。フラックスの上面に直径0.3mmのはんだボールを搭載し、その状態で220℃以上(ピーク温度245℃)、40秒間のリフローを行う。リフローを行った試料を用いたシェア試験(せん断強度試験)によって、シェア(せん断)強度の測定を行う。
表1はこの発明に係る鉛フリーはんだの総合特性を示す。実施例1~5および14は、Agを2.0質量%に固定したときの実験データである。Ag以外の添加量として、実施例1は本発明の請求項2における下限値を全て選択したときであり、実施例2はCuのみ上記下限値より僅かにアップさせたときであり、実施例3は、Ag以外は全て中間値を選択したときであり、実施例4はCuのみ上限値とし、それ以外は全て上記下限値としたときであり、実施例5はNiが前記下限値で、Cuを上限値、Biは中間値(3.0)としたときの数値である。実施例14は、実施例1と同じ値に設定すると共に、添加する金属としてPを下限値の0.0002質量%だけ添加したときのデータである。
表2は、Cu、BiおよびNiの配合量を固定し、Agの配合量を変えて、残部をSnとした場合(Ag=0~6.0、Cu=0.75、Bi=3.0、Ni=0.02)の耐熱疲労特性および濡れ性を示す。Agの配合量は、比較例8では「0」、比較例9ではこの発明より低い値の「1」、実施例5では「2」、実施例16では「2.5」、実施例17では「3.5」、実施例18では「4」、比較例10ではこの発明より高い値の「5」、比較例11では更に高い「6」にそれぞれ選定した。これをグラフ化したものが図3である。上記特性の規定値もこの図中に示した。
表3は、Ag、BiおよびNiの配合量を固定し、Cuの配合量を変えて、残部をSnとした場合(Ag=2.0、Cu=0~1.0、Bi=1、Ni=0.02)の濡れ性およびシェア特性を示す。Cuの配合量は、比較例12では「0」、比較例3ではこの発明より低い値の「0.2」、実施例1では「0.3」、実施例2では「0.5」、実施例19では「0.7」、実施例4では「0.75」、比較例13ではこの発明より高い値の「0.8」、比較例14では更に高い「1」にそれぞれ選定した。これをグラフ化したものが図4である。上記特性の規定値もこの図中に示した。
表4は、Ag、CuおよびNiの配合量を固定し、Biの配合量を変えて、残部をSnとした場合(Ag=2.0、Cu=0.75、Bi=0~7.0、Ni=0.02)の耐熱疲労特性を示す。Biの配合量は、比較例15では「0」、比較例16ではこの発明より低い値の「0.9」、実施例4では「1」、実施例5では「3」、実施例20では「4」、実施例21では「5」、比較例17ではこの発明より高い値の「6」、比較例18ではさらに高い「7」にそれぞれ選定した。これをグラフ化したものが図5である。上記特性の規定値もこの図中に示した。
表5は、Ag、CuおよびBiの配合量を固定し、Niの配合量を変えて、残部をSnとした場合(Ag=2.0、Cu=0.75、Bi=3.0、Ni=0~0.20)の耐熱疲労特性および濡れ性を示す。Niの配合量は、比較例19では「0」、実施例22ではこの発明の下限値「0.01」、実施例5では「0.02」、実施例23では「0.03」、実施例24では「0.1」、実施例25では「0.12」、実施例26では「0.15」、比較例20ではこの発明より高い値の「0.16」、比較例21では更に高い「0.20」にそれぞれ選定した。これをグラフ化したものが図6である。上記特性の規定値もこの図中に示した。
融点に関しては、液相線温度が240℃を超えないように金属の添加量を選定したため、比較例よりも低い値(215~225℃)が得られている。これによってリフロー処理時における回路素子の熱損傷を未然に防止できる。
上述では、この発明に係る鉛フリーはんだを球状にし、球状にした鉛フリーはんだボールを半導体チップ2に接続して試料チップを作製し、この試料チップを回路基板7に搭載することでWL-CSPチップ20を構成した。そしてこのWL-CSPチップ20と共に他の電子部品を回路基板7に実装することで半導体回路15を得ることができる。
5・・・・はんだバンプ電極
7・・・・回路基板
10・・・CSPパッケージ
15・・・半導体回路
20・・・WL-CSPチップ
Claims (16)
- Ag:1.2~4.5質量%、Cu:0.25~0.75質量%、Bi:1~5.8質量%、Ni:0.01~0.15質量%、残部Snからなる
ことを特徴とする鉛フリーはんだ。 - Ag:2~4質量%、Cu:0.3~0.75質量%、Bi:1~5質量%、Ni:0.02~0.15質量%、残部Snからなる
ことを特徴とする請求項1に記載の鉛フリーはんだ。 - Ag:2.5~3.5質量%、Cu:0.5~0.75質量%、Bi:3~5質量%、Ni:0.03~0.12質量%、残部Snからなる
ことを特徴とする請求項1に記載の鉛フリーはんだ。 - 請求項1から3のいずれかの鉛フリーはんだとして、P、Geからなる群から選んだ少なくとも1種を合計量で、0.0005~0.05質量%を添加する
ことを特徴とする鉛フリーはんだ。 - Ag:1.2~4.5質量%、Cu:0.25~0.75質量%、Bi:1~5.8質量%、Ni:0.01~0.15質量%、残部Snからなる
ことを特徴とする鉛フリーはんだボール。 - Ag:2~4質量%、Cu:0.3~0.75質量%、Bi:1~5質量%、Ni:0.02~0.15質量%、残部Snからなる
ことを特徴とする請求項5に記載の鉛フリーはんだボール。 - Ag:2.5~3.5質量%、Cu:0.5~0.75質量%、Bi:3~5質量%、Ni:0.03~0.12質量%、残部Snからなる
ことを特徴とする請求項5に記載の鉛フリーはんだボール。 - 鉛フリーはんだとして、P、Geからなる群から選んだ少なくとも1種を合計量で、0.0005~0.05質量%を添加する
ことを特徴とする請求項5から7のいずれかに記載の鉛フリーはんだボール。 - Ag:1.2~4.5質量%、Cu:0.25~0.75質量%、Bi:1~5.8質量%、Ni:0.01~0.15質量%、残部Snからなる鉛フリーはんだを用いた
ことを特徴とするはんだ継手。 - Ag:2~4質量%、Cu:0.3~0.75質量%、Bi:1~5質量%、Ni:0.02~0.15質量%、残部Snからなる鉛フリーはんだを用いた
ことを特徴とする請求項9に記載のはんだ継手。 - Ag:2.5~3.5質量%、Cu:0.5~0.75質量%、Bi:3~5質量%、Ni:0.03~0.12質量%、残部Snからなる鉛フリーはんだ用いた
ことを特徴とする請求項9に記載のはんだ継手。 - 鉛フリーはんだとして、P、Geからなる群から選んだ少なくとも1種を合計量で、0.0005~0.05質量%を添加された鉛フリーはんだを用いた
ことを特徴とする請求項9から11のいずれかに記載のはんだ継手。 - Ag:1.2~4.5質量%、Cu:0.25~0.75質量%、Bi:1~5.8質量%、Ni:0.01~0.15質量%、残部Snからなる鉛フリーはんだを用いた
ことを特徴とする半導体回路。 - Ag:2~4質量%、Cu:0.3~0.75質量%、Bi:1~5質量%、Ni:0.02~0.15質量%、残部Snからなる鉛フリーはんだを用いた
ことを特徴とする請求項13に記載の半導体回路。 - Ag:2.5~3.5質量%、Cu:0.5~0.75質量%、Bi:1~4質量%、Ni:0.03~0.12質量%、残部Snからなる鉛フリーはんだ用いた
ことを特徴とする請求項13に記載の半導体回路。 - 鉛フリーはんだとして、P、Geからなる群から選んだ少なくとも1種を合計量で、0.0005~0.05質量%を添加された鉛フリーはんだを用いた
ことを特徴とする請求項13から15のいずれかに記載の半導体回路。
Priority Applications (8)
| Application Number | Priority Date | Filing Date | Title |
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| ES14843437T ES2881222T3 (es) | 2013-09-11 | 2014-05-21 | Circuito semiconductor que incluye una soldadura sin plomo |
| EP14843437.6A EP3040152B1 (en) | 2013-09-11 | 2014-05-21 | Semiconductor circuit including a lead-free solder |
| US14/916,730 US10434608B2 (en) | 2013-09-11 | 2014-05-21 | Lead-free solder, lead-free solder ball, solder joint using the lead-free solder and semiconductor circuit having the solder joint |
| JP2015522302A JP6145164B2 (ja) | 2013-09-11 | 2014-05-21 | 鉛フリーはんだ、鉛フリーはんだボール、この鉛フリーはんだを使用したはんだ継手およびこのはんだ継手を有する半導体回路 |
| KR1020157018025A KR20160053838A (ko) | 2013-09-11 | 2014-05-21 | 무연 땜납, 무연 땜납 볼, 이 무연 땜납을 사용한 땜납 조인트 및 이 땜납 조인트를 갖는 반도체 회로 |
| SG11201601920TA SG11201601920TA (en) | 2013-09-11 | 2014-05-21 | Lead-free solder, lead-free solder ball, solder joint obtained using said lead-free solder, and semiconductor circuit including said solder joint |
| CN201480014034.4A CN105189027B (zh) | 2013-09-11 | 2014-05-21 | 无铅软钎料、无铅焊料球、使用了该无铅软钎料的焊料接头和具有该焊料接头的半导体电路 |
| TW103119666A TWI616264B (zh) | 2013-09-11 | 2014-06-06 | Lead-free solder, lead-free solder ball, solder joint using the lead-free solder, and semiconductor circuit having the solder joint |
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| Application Number | Priority Date | Filing Date | Title |
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| JP2013-188406 | 2013-09-11 | ||
| JP2013188406 | 2013-09-11 |
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| US (1) | US10434608B2 (ja) |
| EP (1) | EP3040152B1 (ja) |
| JP (2) | JP6145164B2 (ja) |
| KR (1) | KR20160053838A (ja) |
| CN (1) | CN105189027B (ja) |
| ES (1) | ES2881222T3 (ja) |
| SG (1) | SG11201601920TA (ja) |
| TW (1) | TWI616264B (ja) |
| WO (1) | WO2015037279A1 (ja) |
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| WO2018159664A1 (ja) * | 2017-02-28 | 2018-09-07 | 千住金属工業株式会社 | はんだ材料、はんだペースト、フォームはんだ及びはんだ継手 |
| JP2018140436A (ja) * | 2017-12-19 | 2018-09-13 | 千住金属工業株式会社 | はんだ材料、はんだペースト、フォームはんだ及びはんだ継手 |
| WO2018174162A1 (ja) * | 2017-03-23 | 2018-09-27 | 株式会社日本スペリア社 | はんだ継手 |
| JP2019136774A (ja) * | 2018-02-07 | 2019-08-22 | シャンハイ フィケム マテリアル カンパニー リミテッド | 半田合金組成物、半田およびその製造方法 |
| EP3427888A4 (en) * | 2016-03-08 | 2019-09-25 | Senju Metal Industry Co., Ltd | SOLDERING, SOLDERING BALL, CHIP SOLDER, SOLDERING PASTE AND SOLDERING |
| JP2022138326A (ja) * | 2021-03-10 | 2022-09-26 | 千住金属工業株式会社 | はんだ合金、はんだ粉末、はんだペースト、およびはんだ継手 |
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| JP6969070B2 (ja) * | 2017-02-28 | 2021-11-24 | 千住金属工業株式会社 | はんだ材料、はんだペースト、フォームはんだ及びはんだ継手 |
| US11577343B2 (en) * | 2017-11-09 | 2023-02-14 | Alpha Assembly Solutions Inc. | Low-silver alternative to standard SAC alloys for high reliability applications |
| JP6578393B2 (ja) * | 2018-02-27 | 2019-09-18 | 株式会社タムラ製作所 | 鉛フリーはんだ合金、電子回路実装基板及び電子制御装置 |
| JP6721851B1 (ja) * | 2019-06-28 | 2020-07-15 | 千住金属工業株式会社 | はんだ合金、鋳造物、形成物およびはんだ継手 |
| KR102460042B1 (ko) * | 2020-05-14 | 2022-10-28 | 엠케이전자 주식회사 | 무연 솔더 합금, 솔더볼, 솔더 페이스트, 및 반도체 부품 |
| CA3236527A1 (en) * | 2020-11-19 | 2022-05-27 | Senju Metal Industry Co., Ltd. | Solder alloy, solder ball and solder joint |
| KR102880335B1 (ko) * | 2023-06-30 | 2025-11-03 | 덕산하이메탈(주) | 땜납 합금, 땜납 조인트, 및 땜납 조인트를 포함하는 반도체 패키지 |
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Cited By (10)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP3427888A4 (en) * | 2016-03-08 | 2019-09-25 | Senju Metal Industry Co., Ltd | SOLDERING, SOLDERING BALL, CHIP SOLDER, SOLDERING PASTE AND SOLDERING |
| US10773345B2 (en) | 2016-03-08 | 2020-09-15 | Senju Metal Industry Co., Ltd. | Solder alloy, solder ball, chip solder, solder paste, and solder joint |
| WO2018159664A1 (ja) * | 2017-02-28 | 2018-09-07 | 千住金属工業株式会社 | はんだ材料、はんだペースト、フォームはんだ及びはんだ継手 |
| US20200061757A1 (en) * | 2017-02-28 | 2020-02-27 | Senju Metal Industry Co., Ltd. | Solder material, solder paste, formed solder and solder joint |
| WO2018174162A1 (ja) * | 2017-03-23 | 2018-09-27 | 株式会社日本スペリア社 | はんだ継手 |
| JPWO2018174162A1 (ja) * | 2017-03-23 | 2019-03-28 | 株式会社日本スペリア社 | はんだ継手 |
| JP2018140436A (ja) * | 2017-12-19 | 2018-09-13 | 千住金属工業株式会社 | はんだ材料、はんだペースト、フォームはんだ及びはんだ継手 |
| JP2019136774A (ja) * | 2018-02-07 | 2019-08-22 | シャンハイ フィケム マテリアル カンパニー リミテッド | 半田合金組成物、半田およびその製造方法 |
| JP7289200B2 (ja) | 2018-02-07 | 2023-06-09 | シャンハイ フィケム マテリアル カンパニー リミテッド | 半田合金組成物、半田およびその製造方法 |
| JP2022138326A (ja) * | 2021-03-10 | 2022-09-26 | 千住金属工業株式会社 | はんだ合金、はんだ粉末、はんだペースト、およびはんだ継手 |
Also Published As
| Publication number | Publication date |
|---|---|
| ES2881222T3 (es) | 2021-11-29 |
| TW201521935A (zh) | 2015-06-16 |
| EP3040152B1 (en) | 2021-06-30 |
| JP2016040051A (ja) | 2016-03-24 |
| US10434608B2 (en) | 2019-10-08 |
| EP3040152A4 (en) | 2017-05-17 |
| TWI616264B (zh) | 2018-03-01 |
| KR20160053838A (ko) | 2016-05-13 |
| US20160214212A1 (en) | 2016-07-28 |
| JPWO2015037279A1 (ja) | 2017-03-02 |
| CN105189027A (zh) | 2015-12-23 |
| SG11201601920TA (en) | 2016-04-28 |
| CN105189027B (zh) | 2018-06-29 |
| EP3040152A1 (en) | 2016-07-06 |
| JP6145164B2 (ja) | 2017-06-07 |
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