EP0352004B1

Method and apparatus for endpoint detection in a semiconductor wafer etching system.

Abstract

This record has no abstract on file.

EP0352004B1, drawing sheet 1
Sheet 1 of 12

Term

Term ended

Expired 11 July 2009, 17.2 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

26 claims: 11 independent, 15 dependent

  1. 1
    A method for endpoint detection in a semiconductor wafer etching system comprising the steps of:parking a beam of radiant energy on a preferred spot of a semiconductor wafer surface;detecting a reflected portion of said beam to determine an actual etching curve;and    analyzing said reflected portion to determine when said surface at said preferred spot has been etched through by comparing said actual etching curve to a projected etching curve.
  2. 2
    A method as claimed in Claim 1, characterised in that the wafer surface is scanned and the reflected beam is detected to determine an area where the etch rate is a maximum over the surface of the wafer, the beam is parked on said area and said beam analyzing operation is performed as aforesaid.
  3. 3
    A method as claimed in Claim 2, characterised in that the semiconductor wafer surface is scanned to identify an area of maximum etch rate and where moving the beam slightly within the area has negligible effect in the reflected beam, the beam is parked on said area and said beam analyzing operation is carried out as aforesaid.
  4. 4
    A method as claimed in any of Claims 1 to 3, characterised in that divergence between actual and projected etching curves is detected.
  5. 5
    A method as claimed in any of Claims 1 to 4, characterised in that endpoint is detected when the actual etching curve is greater than a predetermined fraction of the difference between a peak value of said actual etching curve and said projected etching curve.
  6. 6
    A method as claimed in any of Claims 1 to 5, including focusing a beam of radiant energy by the following steps;scanning a beam of radiant energy across a test pattern comprising areas of differing reflectivity, detecting the variance in a reflected portion of said beam as it is scanned across said test pattern and adjusting said beam to minimize said variance.
  7. 7
    A method as claimed in Claim 6, characterised in that said test pattern includes a first plurality of areas of a first reflectivity alternated with a second plurality of areas of a second reflectivity, and said first plurality of areas are of a variable width.
  8. 8
    A method for endpoint detection in a semiconductor wafer etching system as claimed in any of the preceding claims comprising the steps of scanning a semiconductor wafer surface with a narrowly focussed beam of radiant energy and detecting a reflected portion of said beam, analyzing said reflected portion to determine a preferred parking spot on a preferred flat area of said surface, said preferred flat area having a minimum transverse dimension greater than a spot size of said beam, parking said beam at said preferred spot and analyzing said reflected portion of said beam to determine when said preferred flat area has been etched through.
  9. 9
    A method as claimed in any of the preceding claims including a method for finding a preferred parking spot for a laser beam of a laser beam interferometer comprising the steps of making at least one scan along a scan path on a semiconductor wafer surface with a narrowly focussed laser beam and detecting a reflected portion of said beam, analyzing said reflected portion of said beam to determine a preferred parking spot within a preferred flat area having a minimum transverse dimension which is larger than a spot size of said laser beam.
  10. 10
    A method as claimed in Claim 9, characterised in that said spot size is sufficiently small such that a plurality of data values can be taken within said preferred flat area, thereby minimizing the effects of transitions and steps on said semiconductor wafer surface which may surround said preferred flat area.
  11. 11
    A method as claimed in Claim 10, characterised in that multiple scans are made along said scan path, each of said multiple scans comprising a set of data values, comprising a first subset of data values of first scan S1 is compared to a corresponding first subset of data values of second scan S2 to find the minimum difference (S1,S2 min ) between any two corresponding data values.
  12. 12
    A method as claimed in Claim 11, characterised in that a second subset of scan S1 is used to calculate a factor S1 max corresponding to the maximum difference between any two data values within said second subset of scan S1, and wherein a second subset of Scan S2 is used to calculate a factor S2 max corresponding to the maximum difference between any two data values within said second subset of scan S2;whereby said second subsets are not necessarily different from said first subsets.
  13. 13
    A method as claimed in Claim 12, characterised in that a relative value R is calculated as follows:R = S1,S2 min - [S1 max + S2 max ]    where if R < 0 then R = 0;where said relative value R represents the relative desirability of said spot.
  14. 14
    A method as claimed in Claim 13, characterised in that a plurality of R values are calculated for scans S1 and S2, the maximum of which corresponds to a quality factor Q for scans S1 and S2.
  15. 15
    A method as claimed in Claim 14, characterised in that more than one pair of scans are compared to determine a plurality of Q values, the maximum of which corresponds to said preferred parking spot.
  16. 16
    A laser interferometer endpoint detection system comprising beam forming means (62) adapted to produce a beam spot;scanning means (124,125) coupled to said beam forming means to scan said beam spot across a surface of a semiconductor wafer;means to determine a preferred parking spot on the wafer;detection means (76) responsive to a reflected portion of said beam spot which is reflected from said preferred parking spot on said semiconductor wafer to determine an actual etching curve, and control means (78) to compare the actual curve with a projected curve to develop an endpoint detection signal when the output of the detection means indicates a deviation between the actual etching curve and the projected etching curve, indicating that the selected area has been etched through.
  17. 17
    A laser interferometer endpoint detection system as claimed in Claim 16, characterised in that said beam forming means comprises:a laser source (62) adapted to produce a laser beam;beam expanding means (66) positioned in the path of said laser beam and adapted to produce an expanded laser beam;and    beam focusing means (70) positioned in the path of said expanded laser beam and adapted to produce a focused laser beam.
  18. 18
    A laser interferometer endpoint detection system as claimed in Claim 17, characterised in that said beam forming means further includes optical isolation means (64) disposed between said laser source and said beam expanding means along said path of said laser beam to minimise reflection of said laser beam back to said laser source.
  19. 19
    A laser interferometer endpoint detection system as claimed in Claim 18, characterised in that said optical isolation means (64) includes polarizing means (82).
  20. 20
    A laser interferometer endpoint detection system as claimed in any of Claims 16 to 19, characterised in that said detection means includes a photodetector (76) and detection optics (74) for focusing said reflected beam on said photodetector.
  21. 21
    A laser interferometer endpoint detection system as claimed in any of Claims 16 to 20, characterised in that environmental isolation means including window means (96,98) are disposed between said beam forming means and said semiconductor wafer.
  22. 22
    A laser interferometer endpoint detection system as claimed in Claim 21, characterised in that said window means (96,98) is adapted to isolate thermally the beam forming means side of said window from the semiconductor wafer side of said window.
  23. 23
    A laser interferometer endpoint detection system as claimed in Claim 22, characterised in that said window means includes a plurality of spaced-apart panes (96).
  24. 24
    A laser interferometer endpoint detection system as claimed in Claim 23 further comprising heating means for heating at least the pane closest to said semiconductor wafer.
  25. 25
    A laser interferometer endpoint detection system as claimed in any of Claims 21 to 24, characterised in that said environmental isolation means further comprises enclosure means (79) at least partially enclosing said beam forming means.
  26. 26
    A laser interferometer endpoint detection system as claimed in any of Claims 16 to 25 further comprising beam focussing means (132) coupled to said beam forming means and adapted to focus said beam spot on said semiconductor wafer.
Independent claims26