2018Diffusion and defect data, solid state data. Part B, Solid state phenomena/Solid state phenomenaRequires access

Yield Enhancement due to Addition of Bevel Cleans at Middle of Line(MOL) Zone

Tsultrim Tharchin, Elango Balu, Sherjang Singh

Open publisher page 1 citations

Abstract

As the technology nodes become smaller and smaller the circuit dies get closer and closer to the edge of the wafer. Defects and issues on the bevel are seen to cause issues such as flaking and blocked plating on the dies at the edge of the wafer. This drastically increases the need for a clean wafer edge as the issues directly translate to yield loss at the end of the line. The wafer edge and backside are shown to have a significant impact on yield as well as process variation [1]. Introducing a dilute HF and SC1 bevel clean at the MOL layer resolves flaking and defect issues found on the bevel. Dispensing it on the backside of the wafer and ensuring that the chemistry is rolled over to the bevel results in the backside of the wafer becoming cleaner and helps resolve overlay issues. All the above stated effects are seen to result in an overall edge gain in edge yield.

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What this paper is about

As the technology nodes become smaller and smaller the circuit dies get closer and closer to the edge of the wafer. Defects and issues on the bevel are seen to cause issues such as flaking and blocked plating on the dies at the edge of the wafer. This drastically increases the need for a clean wafer edge as the issues directly translate to yield loss at the end of the line. The wafer edge and backside are shown to have a significant impact on yield as well as process variation [1]. Introducing a dilute HF and SC1 bevel clean at the MOL layer resolves flaking and defect issues found on the bevel. Dispensing it on the backside of the wafer and ensuring that the chemistry is rolled over to the bevel results in the backside of the wafer becoming cleaner and helps resolve overlay issues. All the above stated effects are seen to result in an overall edge gain in edge yield.

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Available abstract

As the technology nodes become smaller and smaller the circuit dies get closer and closer to the edge of the wafer. Defects and issues on the bevel are seen to cause issues such as flaking and blocked plating on the dies at the edge of the wafer. This drastically increases the need for a clean wafer edge as the issues directly translate to yield loss at the end of the line. The wafer edge and backside are shown to have a significant impact on yield as well as process variation [1]. Introducing a dilute HF and SC1 bevel clean at the MOL layer resolves flaking and defect issues found on the bevel. Dispensing it on the backside of the wafer and ensuring that the chemistry is rolled over to the bevel results in the backside of the wafer becoming cleaner and helps resolve overlay issues. All the above stated effects are seen to result in an overall edge gain in edge yield.

Key concepts: Bevel, Wafer, Enhanced Data Rates for GSM Evolution, Materials science, Yield (engineering), Plating (geology), Line (geometry), Mechanical engineering

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