Leadframe with a metal oxide coating and method of forming the same
A leadframe including a metal oxide layer on at least a portion of the leadframe are disclosed. More specifically, leadframes with a metal layer and a metal oxide layer formed on one or more leads before a tin finish plating layer is formed are described. The layers of metal and metal oxide between the one or more leads and the tin finish plating layer reduce the formation of tin whiskers, thus reducing the likelihood of shorting and improving the overall reliability of the package structure and device produced.
1. A method, comprising:
forming a metal layer on a lead of a copper leadframe and on a die pad of the copper leadframe;
forming a metal oxide layer on the metal layer on the lead of the copper leadframe and on the die pad of the copper leadframe;
placing a die on the die pad of the copper leadframe, wherein the metal layer and the metal oxide layer are between the die and the die pad of the copper leadframe after placing the die on the die pad of the copper leadframe;
forming a bonding wire extending from the die and contacting the metal oxide layer at a first portion of the lead of the copper leadframe;
encapsulating the die and a first portion of the lead of the copper leadframe in a molding compound, wherein the molding compound is in contact with the metal oxide layer at the first portion of the lead of the copper leadframe; and
forming a tin layer on a second portion of the lead by selectively depositing the tin layer only on exposed portions of the metal oxide layer, wherein the tin layer is not covered by the molding compound in cross section, wherein the tin layer abuts a side of the molding compound.
2. The method of claim 1 , comprising forming the metal layer with an electroless plating process.
3. The method of claim 1 , comprising forming the metal layer on a strike layer of the leadframe.
4. The method of claim 1 , wherein the metal layer is arranged on a first side of the copper leadframe.
5. The method of claim 4 , wherein the metal layer is arranged on a second side of the copper leadframe that is opposite the first side of the copper leadframe.
6. The method of claim 1 , wherein the metal layer includes nickel, gold, silver, or a combination thereof.
7. The method of claim 6 , wherein the metal oxide layer includes nickel oxide, gold oxide, silver oxide, or a combination thereof.
8. A method, comprising:
forming a metal oxide layer on a lead of a copper leadframe and on a die pad of the copper leadframe
placing a die on the die pad of the copper leadframe, wherein the metal oxide layer is between the die and the die pad of the copper leadframe;
forming a tin layer by selectively depositing the tin layer only on exposed portions of the metal oxide layer, the metal oxide layer being between the tin layer and the copper leadframe; and
encapsulating, with a molding compound, the die pad of the copper leadframe, a first portion of the lead of the copper leadframe, and a bonding wire extending from the die and contacting the metal oxide layer at the first portion of the lead of the copper leadframe, wherein the tin layer is on a second portion of the lead, wherein the molding compound is in contact with the metal oxide layer at the first portion of the lead of the copper leadframe, wherein the tin layer is not covered by the molding compound in cross-section, wherein the tin layer abuts a side of the molding compound.
9. The method of claim 8 , further comprising forming a first metal layer between the copper leadframe and the metal oxide layer.
10. The method of claim 9 , wherein the first metal layer includes silver and the metal oxide layer includes silver oxide.
11. The method of claim 9 , further comprising forming a second metal layer between the first metal layer and the copper leadframe.
12. The method of claim 11 , comprising forming the second metal layer with an electroless plating process.
13. The method of claim 9 , comprising forming the first metal layer with an electroless plating process.
14. A method, comprising:
forming a copper layer on a lead of a copper leadframe and on a die pad of the copper leadframe;
forming a metal layer on the copper layer on the lead of the copper leadframe and the die pad of the copper leadframe; and
forming a metal oxide layer on the metal layer on the lead of the copper leadframe and on the die pad of the copper leadframe;
placing a die on the die pad of the copper leadframe, wherein the metal layer and the metal oxide layer are between the die and the die pad of the copper leadframe;
forming a bonding wire extending from the die and contacting the metal oxide layer at a first portion of the lead of the copper leadframe;
encapsulating, in a molding compound, the die pad, the bonding wire, and the first portion of the lead of the copper leadframe, wherein the molding compound is in contact with the metal oxide layer at the first portion of the lead of the copper leadframe; and
forming a tin layer on a second portion of the lead of the copper leadframe by selectively depositing the tin layer only on exposed portions of the metal oxide layer, wherein the tin layer is not covered by the molding compound in cross-section, wherein the tin layer abuts a side of the molding compound.
15. The method of claim 14 , further comprising forming the copper layer with an electroless plating process.
16. The method of claim 15 , comprising forming the metal layer with an electroless plating process.
17. The method of claim 14 , wherein the metal layer includes nickel, gold, silver, or a combination thereof.
18. The method of claim 14 , wherein the metal oxide layer includes nickel oxide, gold oxide, silver oxide, or a combination thereof.