Nova Patents
EP1522385A2

Polishing Pad

Abstract

A polishing pad is useful planarizing semiconductor substrates. The polishing pad comprises a polymeric material having a porosity of at least 0.1 volume percent, a KEL energy loss factor at 40°C and 1 rad/sec of 385 to 750 1/Pa and a modulus E' at 40°C and 1 rad/sec of 100 to 400 MPa.

EP1522385A2, drawing sheet 1
Sheet 1 of 1

Term

Term ended

Projected expiry passed 6 October 2024, 2 years ago.

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10 claims: 4 independent, 6 dependent

  1. 1
    A polishing pad useful for planarizing semiconductor substrates, the polishing pad comprising a polymeric material having a porosity of at least 0.1 volume percent, a KEL energy loss factor at 40 °C and 1 rad/sec of 385 to 750 1/Pa and a modulus E' at 40 °C and 1 rad/sec of 100 to 400 MPa.
  2. 3
    A polishing pad useful for planarizing semiconductor substrates, the polishing pad comprising a polymeric material having a porosity of at least 0.1 volume percent, a KEL energy loss factor at 40 °C and 1 rad/sec of 405 to 600 1/Pa, a modulus E' at 40 °C and 1 rad/sec of 140 to 300 MPa and a Shore D hardness of 20 to 60.
  3. 6
    A polishing pad useful for planarizing semiconductor substrates, the polishing pad comprising a polyurethane polymeric material having a porosity of at least 0.1 volume percent, the polyurethane polymeric material being formed from a prepolymer reaction product of toluene diisocyanate and polytetramethylene ether glycol with 4,4'-methylene-bis-o-chloroaniline and the prepolymer reaction product having a 5.5 to 8.6 weight percent NCO and an NH 2 to NCO stoichiometric ratio of 80 to 110 percent.
  4. 9
    A method of polishing a semiconductor substrate including the step of polishing the semiconductor substrate with a polishing pad useful for planarizing semiconductor substrates, the polishing pad comprising a polymeric material having a porosity of at least 0.1 volume percent, a KEL energy loss factor at 40 °C and 1 rad/sec of 385 to 750 1/Pa and a modulus E' at 40 °C and 1 rad/sec of 100 to 400 MPa.