EP0881484A2

Method and apparatus for in-situ monitoring of thickness during chemical-mechanical polishing

Abstract

An apparatus and method for in-situ monitoring of thickness during chemical-mechanical polishing (CMP) of a substrate using a polishing tool and a film thickness monitor. The tool has an opening placed in it. The opening contains a monitoring window secured in it to create a monitoring channel. A film thickness monitor (comprising an ellipsometer, a beam profile reflectometer, or a stress pulse analyzer) views the substrate through the monitoring channel to provide an indication of the thickness of a film carried by the substrate. This information can be used to determine the end point of the CMP process, determine removal rate at any given circumference of a substrate, determine average removal rate across a substrate surface, determine removal rate variation across a substrate surface, and optimize removal rate and uniformity.

EP0881484A2, drawing sheet 1
Sheet 1 of 5

Term

Term ended

Projected expiry passed 28 May 2018, 8.3 years ago.

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33 claims: 9 independent, 24 dependent

  1. 1
    In a chemical mechanical polishing device of the type comprising:a polishing element, means for moving the polishing element along a polishing path, and a substrate carrier positioned adjacent the polishing element to press a substrate against the polishing element during a polishing operation;the improvement comprising: said polishing element having at least one opening formed therein, said opening positioned to move into intermittent alignment with the substrate during the polishing operation;said polishing element further comprising a monitoring window secured to the polishing element to close the opening and to create a monitoring channel in the polishing element;and said device further comprising a film thickness monitor, said film thickness monitor comprising an ellipsometer responsive to optical radiation reflected from the substrate through the monitoring channel during the polishing operation to provide an indication of thickness of a film carried by the substrate.
  2. 2
    In a chemical mechanical polishing device of the type comprising:a polishing element, means for moving the polishing element along a polishing path, and a substrate carrier positioned adjacent the polishing element to press a substrate against the polishing element during a polishing operation;the improvement comprising: said polishing element having at least one opening formed therein, said opening positioned to move into intermittent alignment with the substrate during the polishing operation;said polishing element further comprising a monitoring window secured to the polishing element to close the opening and to create a monitoring channel in the polishing element;and said device further comprising a film thickness monitor, said film thickness monitor comprising a beam profile reflectometer responsive to optical radiation reflected from the substrate through the monitoring channel during the polishing operation to provide an indication of thickness of a film carried by the substrate.
  3. 3
    In a chemical mechanical polishing device of the type comprising:a polishing element, means for moving the polishing element along a polishing path, and a substrate carrier positioned adjacent the polishing element to press a substrate against the polishing element during a polishing operation;the improvement comprising: said polishing element having at least one opening formed therein, said opening positioned to move into intermittent alignment with the substrate during the polishing operation;said polishing element further comprising a monitoring window secured to the polishing element to close the opening and to create a monitoring channel in the polishing element;and said device further comprising a film thickness monitor, said film thichness monitor comprising an optical stress generator beam and monitoring probe beam responsive to reflected probe beam radiation from the substrate through the monitoring channel during the polishing operation to provide an indication of thickness of a film carried by the substrate.
  4. 11
    A method for determining a thickness of a layer on a substrate during chemical-mechanical polishing the method comprising the steps of:(a) performing chemical-mechanical polishing on a substrate by holding the substrate in a substrate carrier against a polishing element, the polishing element having a monitoring channel and being wetted with a polishing agent;and (b) using a film thickness monitor to determine a thickness of a layer on the substrate during chemical-mechanical polishing when the monitoring channel in the polishing element is aligned with the film thickness monitor.
  5. 15
    A method for determining an end point of a chemical-mechanical polishing process, the method comprising the steps of:(a) measuring a film thickness of a substrate during a chemical-mechanical polishing process when a monitoring channel in a polishing element aligns with a film thickness monitor;and then (b) repeating step (a) until the measured film thickness reaches a predefined thickness;and then (c) indicating that end point has been reached.
  6. 20
    A method for determining removal rate per polishing element revolution at any given circumference of a substrate while performing a chemical-mechanical polishing process, the method comprising the steps of:(a) measuring a first film thickness of a substrate during a chemical-mechanical polishing process when a monitoring channel in a polishing element aligns with a film thickness monitor;and then (b) measuring a second film thickness ofa substrate during a chemical-mechanical polishing process when the monitoring channel in a polishing element realigns with the film thickness monitor, and then (c) calculating a difference between the second film thickness and the first film thickness.
  7. 24
    A method for determining average removal rate per polishing element revolution across a substrate surface while performing a chemical-mechanical polishing process, the method comprising the steps of:(a) measuring a first film thickness of a substrate during a chemical-mechanical polishing process when a first monitoring channel in a polishing element aligns with a first film thickness monitor;and then (b) measuring a second film thickness of a substrate during a chemical-mechanical polishing process when the first monitoring channel in a polishing element realigns with the first film thickness monitor, and then (c) measuring a third film thickness of a substrate during a chemical-mechanical polishing process when a second monitoring channel in a polishing element aligns with a second film thickness monitor, and then (d) measuring a fourth film thickness of a substrate during a chemical-mechanical polishing process when the second monitoring channel in a polishing element realigns with the second film thickness monitor;and then (e) calculating a difference between the second film thickness of step (b) and the first film thickness of step (a);and (f) calculating a difference between the fourth film thickness of step (d) and the third film thickness of step (c);and then (g) calculating an average of the differences of steps (e) and (f).
  8. 28
    A method for determining removal rate variation per polishing element revolution across a substrate surface while performing a chemical-mechanical polishing process, the method comprising the steps of:(a) measuring a first film thickness of a substrate during a chemical-mechanical polishing process when a first monitoring channel in a polishing element aligns with a first film thickness monitor;and then (b) measuring a second film thickness of a substrate during a chemical-mechanical polishing process when the first monitoring channel in a polishing element realigns with the first film thickness monitor;and then (c) measuring a third film thickness of a substrate during a chemical-mechanical polishing process when a second monitoring channel in a polishing element aligns with a second film thickness monitor;and then (d) measuring a fourth film thickness of a substrate during a chemical-mechanical polishing process when the second monitoring channel in a polishing element realigns with the second film thickness monitor;and then (e) calculating a difference between the second film thickness of step (b) and the first film thickness of step (a);and (f) calculating a difference between the fourth film thickness of step (d) and the third film thickness of step (c);and then (g) calculating a variation of the differences of steps (e) and (f).
  9. 32
    A method of optimizing a chemical-mechanical polishing process comprising the steps of:(a) characterizing a polishing process to determine effects of processing parameters;and then (b) determining removal rate;and then (c) adjusting the polishing process parameters to optimize the removal rate.