EP3352016A1

Exposure apparatus, exposure method, and device manufacturing method

Abstract

An exposure apparatus in equipped with an encoder system which measures positional information of a wafer stage (WST1) by irradiating a measurement beam using four heads (601 to 604) installed on the wafer stage (WST1) on a scale plate (21) which covers the movement range of the wafer stage (WST1) except for the area right under a projection optical system (PL). Placement distances (A, B) of the heads (601 to 604) here are each set to be larger than width (ai, bi) of the opening of the scale plates (21), respectively. This allows the positional information of the wafer stage to be measured, by switching and using the three heads facing the scale plate out of the four heads according to the position of the wafer stage.

EP3352016A1, drawing sheet 1
Sheet 1 of 25

Term

3.9 yearsto projected expiry

Projected expiry 24 August 2030, counted from filing; an application has no term until it is granted.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

34 claims: 2 independent, 32 dependent

  1. 1
    An exposure apparatus (100) for exposing a substrate (W) with illumination light (IL) via a projection optical system (PL), the apparatus comprising:a body having a metrology frame arranged for supporting the projection optical system;an alignment system (ALG) provided to the metrology frame, spaced from the projection optical system, and configured to detect a mark of the substrate;a first stage system having a first stage (RST) and a first drive system (11), and capable of moving the first stage at least within a predetermined plane (XY plane) orthogonal to an optical axis (AX) of the projection optical system, the first stage being disposed above the projection optical system and arranged for holding a mask (R) illuminated with the illumination light, and the first drive system including a first motor configured to drive the first stage;a first encoder system configured to measure positional information of the first stage;a second stage system having a second stage (WST1) and a second drive system (27), the second stage being disposed below the projection optical system and the alignment system and including a holder arranged for holding the substrate and a first fiducial and a second fiducial disposed with the holder in between in a direction intersecting a first direction and a second direction (Y-axis direction, X-axis direction) orthogonal to each other within the predetermined plane, and the second drive system including a second motor (30) configured to drive the second stage;a second encoder system (70) that has four heads (60 1 , to 60 4 ) provided to the second stage, and is configured to measure positional information of the second stage by irradiating a scale member (21, 22) from below with a measurement beam via each of the four heads, the scale member being provided to the metrology frame to be substantially parallel to the predetermined plane, wherein the scale member has a first scale plate (21) and a second scale plate (22), the second stage that is moved within a first movement area being placed facing the first scale plate in an exposure operation of the substrate, the second stage that is moved within a second movement area being placed facing the second scale plate in a detection operation of the mark with the alignment system, and the second movement area being different from the first movement area, the first scale plate has four sections (21 1 to 21 4 ) in each of which a reflection-type grating (RG) is formed, and a first opening (21a) that is substantially surrounded by the four sections, and the first scale plate is provided to the metrology frame so that the projection optical system is located in the first opening, and the second scale plate has four sections (22 1 to 22 4 ) in each of which a reflection-type grating (RG) is formed, and a second opening (22a) that is substantially surrounded by the four sections, and the second scale plate is provided to the metrology frame so that the alignment system is located in the second opening;and a controller (20) coupled to the first and the second stage systems and the first and the second encoder systems, and configured to control the first and the second drive systems on the basis of measurement information of the first and the second encoder systems so that, in the exposure operation, alignment between the mask and the substrate is performed on the basis of detection information of the alignment system and scanning exposure in which the mask and the substrate are each moved relative to the illumination light is performed with the first direction serving as a scanning direction, wherein the first movement area includes a first area (A 1 ), a second area (A 2 ), a third area (A 3 ), a fourth area (A 4 ) and a fifth area (A 0 ), in the first area (A 1 ), three heads (60 4 , 60 1 , 60 2 ) of the four heads excluding a first head (60 3 ) respectively facing three sections (21 4 , 21 1 , 21 2 ) of the four sections of the first scale plate excluding a first section (21 3 ), in the second area (A 2 ), three heads (60 1 , 60 2 , 60 3 ) of the four heads excluding a second head (60 4 ) different from the first head respectively facing three sections (21 1 , 21 2 , 21 3 ) of the four sections excluding a second section (21 4 ) different from the first section, in the third area (A 3 ), three heads (60 2 , 60 3 , 60 4 ) of the four heads excluding a third head (60 1 ) different from the first and the second heads respectively facing three sections (21 2 , 21 3 , 21 4 ) of the four sections excluding a third section (21 1 ) different from the first and the second sections, in the fourth area (A 4 ), three heads (60 1 , 60 3 , 60 4 ) of the four heads excluding a fourth head (60 2 ) different from the first, the second and the third heads respectively facing three sections (21 1 , 21 3 , 21 4 ) of the four sections excluding a fourth section (21 2 ) different from the first, the second and the third sections, and in the fifth area(A 0 ), the four heads respectively facing the four sections, and wherein the controller is configured to control the second drive system so that marks of the substrate and the first fiducial are detected with the alignment system in the detection operation, and the second stage is moved from one area of the first, the second, the third and the fourth areas to another area of the first, the second, the third and the fourth areas, via the fifth area, the another area being different from the one area, in the one area, three heads of the four heads respectively facing three sections of the four sections of the first scale plate, in the fifth area, another head, of the four heads, that is different from the three heads used in the one area facing another section, of the four sections, that is different from the three sections, and in the another area, the another head being used instead of one head of the three heads used in the one area.
  2. 2
    The exposure apparatus according to Claim 1, wherein the apparatus is configured such that, in the another area, three heads including two remaining heads and the another head face three sections including the another section and excluding one section to which the one head faces in the one area, of the four sections of the first scale plate, the remaining two heads excluding the one head of the three heads used in the one area.
  3. 3
    The exposure apparatus according to Claim 2, wherein the apparatus is configured such that:in a part of the another area, the one head does not face the one section to which the one head faces in the one area, of the four sections of the first scale plate;and in a part of the one area, the another head does not face the another section to which the another head faces in the another area, of the four sections of the first scale plate.
  4. 4
    The exposure apparatus according to any one of Claims 1 to 3, wherein the controller is configured to switch the one head to the another head to be used in drive control of the second stage, when the second stage is moved from the one area to the another area via the fifth area.
  5. 5
    The exposure apparatus according to Claim 4, wherein the controller is configured to switch the one head to the another head while the second stage is in the fifth area.
  6. 6
    The exposure apparatus according to any one of Claims 1 to 5, wherein the controller is configured to acquire correction information for the positional information obtained from the another head used in the another area, on the basis of the positional information obtained from three heads used in the one area, when the second stage is moved from the one area to the another area via the fifth area.
  7. 7
    The exposure apparatus according to Claim 6, wherein the correction information includes an offset for compensating for a difference between the positional information obtained from the three heads used in the one area and the positional information obtained from the three heads including the another head that are used in the another area.
  8. 8
    The exposure apparatus according to Claim 6 or 7, wherein the apparatus is configured such that the correction information is used in a part of the exposure operation, in the part of the exposure operation the second stage being moved in the another area.
  9. 9
    The exposure apparatus according to any one of Claims 6 to 8, wherein the apparatus is configured such that the correction information is used to compensate for a measurement error of the second encoder system in the another area, the measurement error of the second encoder system occurring due to performing drive control of the second stage based on the positional information obtained from the three heads including the another head that are used in the another area, instead of drive control of the second stage based on the positional information obtained from the three heads used in the one area.
  10. 10
    The exposure apparatus according to Claim 9, wherein the controller is configured to switch the drive control of the second stage based on the positional information obtained from the three heads used in the one area to the drive control of the second stage based on the positional information obtained from the three heads including the another head that are used in the another area, while the four heads face the four sections of the first scale plate, respectively.
  11. 11
    The exposure apparatus according to any one of Claims 6 to 10, wherein the apparatus is configured such that the correction information is acquired while the second stage is in the fifth area.
  12. 12
    The exposure apparatus according to any one of Claims 1 to 11, wherein in each of the first and the second scale plates, the reflection-type grating is a two-dimensional grating, and each of the first and the second scale plates is supported in a suspended manner by the metrology frame.
  13. 13
    The exposure apparatus according to any one of Claims 1 to 12, wherein the first and the second scale plates are provided so that the reflection-type gratings are substantially flush.
  14. 14
    The exposure apparatus according to any one of Claims 1 to 13, wherein in each of the first and the second scale plates, the four sections are each L-shaped, and the two-dimensional grating is periodic in two directions that are rotated at an angle of 45 degrees with respect to the first and the second directions within the predetermined plane.
  15. 15
    The exposure apparatus according to any one of Claims 1 to 14, wherein each of the first and the second scale plates has a non-effective area on an outer periphery of the four sections.
  16. 16
    The exposure apparatus according to any one of Claims 1 to 15, wherein the apparatus is configured such that the four heads are provided to the second stage so that a distance (B) between two heads (60 1 , 60 4 ;60 2 , 60 3 ) of the four heads in the first direction is larger than each of a width (b i ) of the first opening and a width (b i ) of the second opening in the first direction, and a distance (A) between two heads (60 1 , 60 2 ;60 3 , 60 4 ) of the four heads in the second direction is larger than each of a width (a i ) of the first opening and a width (a i ) of the second opening in the second direction.
  17. 17
    The exposure apparatus according to any one of Claims 1 to 16, wherein the apparatus is configured such that:the second encoder system is capable of measuring positional information of the second stage in directions of six degrees of freedom, the directions of six degrees of freedom including the first and the second directions and a third direction orthogonal to the predetermined plane;and each of the four heads is capable of measuring positional information of the second stage in two directions, the two directions being a direction parallel to the predetermined plane and a direction perpendicular to the predetermined plane.
  18. 18
    The exposure apparatus according to any one of Claims 1 to 17, wherein the second encoder system has at least one head that is different from the four heads and is disposed in proximity to each of the four heads.
  19. 19
    The exposure apparatus according to any one of Claims 1 to 18, wherein the controller is configured to control movement of the second stage while compensating for a measurement error of the second encoder system that occurs due to at least one of a production error of the first and the second scale plates, acceleration of the second stage and a position or tilt of the head.
  20. 20
    The exposure apparatus according to any one of Claims 1 to 19, wherein the body has a base member (12) to which the second stage is disposed, the second stage system has another second stage (WST2) that is different from the second stage and is disposed on the base member, and the second encoder system has four heads provided to the another second stage and different from the four heads provided to the second stage, and is configured to measure positional information of the another second stage with at least three of the four heads provided to the another second stage.
  21. 21
    The exposure apparatus according to Claim 20, wherein the second motor includes a planar motor (30) of a magnetic levitation type that levitates and supports the two second stages on the base member, and the apparatus is configured such that each of the two second stages is moved from the second movement area to the first movement area by the planar motor so that the exposure operation is performed following the detection operation.
  22. 22
    The exposure apparatus according to Claim 21, wherein the planar motor has a magnet unit provided to one of the base member and the two second stages and a coil unit provided to the other of the base member and the two second stages, and the apparatus is configured such that the base member is used as a counter mass that is conf igured movable by a reaction force generated by movement of the two second stages.
  23. 23
    A device manufacturing method, comprising:exposing a wafer using the exposure apparatus according to any one of Claims 1 to 22;and developing the wafer that has been exposed.
  24. 24
    The device manufacturing method according to Claim 23, wherein the exposure apparatus is a liquid immersion type exposure apparatus.
  25. 25
    An exposure method of exposing a substrate with illumination light via a projection optical system, the method comprising:holding a mask illuminated with the illumination light, with a first stage disposed above the projection optical system, the first stage being movable at least within a predetermined plane orthogonal to an optical axis of the projection optical system;holding the substrate with a second stage disposed below the projection optical system and an alignment system that is provided to a metrology frame, spaced from the projection optical system, and detects a mark of the substrate, the second stage having a holder to hold the substrate and a first fiducial and a second fiducial that are disposed with the holder in between in a direction intersecting a first direction and a second direction orthogonal to each other within the predetermined plane, and the metrology frame supporting the projection optical system;measuring positional information of the first stage and positional information of the second stage with a first encoder system and a second encoder system, respectively, the second encoder system having four heads provided to the second stage, and irradiating a scale member from below with a measurement beam via each of the four heads, and the scale member being provided to the metrology frame to be substantially parallel to the predetermined plane, wherein the scale member has a first scale plate and a second scale plate, the second stage that is moved within a first movement area being placed facing the first scale plate in an exposure operation of the substrate, the second stage that is moved within a second movement area being placed facing the second scale plate in a detection operation of the mark with the alignment system, and the second movement area being different from the first movement area, the first scale plate has four sections in each of which a reflection-type grating is formed, and a first opening that is substantially surrounded by the four sections, and the first scale plate is provided to the metrology frame so that the projection optical system is located in the first opening, and the second scale plate has four sections in each of which a reflection-type grating is formed, and a second opening that is substantially surrounded by the four sections, and the second scale plate is provided to the metrology frame so that the alignment system is located in the second opening;moving the second stage within the second movement area so that marks of the substrate and the first fiducial are detected with the alignment system, in the detection operation;and moving the first and the second stages within the first movement area on the basis of measurement information of the first and the second encoder systems so that, in the exposure operation, alignment between the mask and the substrate is performed on the basis of detection information of the alignment system and scanning exposure in which the mask and the substrate are each moved relative to the illumination light is performed with the first direction serving as a scanning direction, wherein the first movement area includes a first area, a second area, a third area, a fourth area and a fifth area, in the first area, three heads of the four heads excluding a first head respectively facing three sections of the four sections of the first scale plate excluding a first section, in the second area, three heads of the four heads excluding a second head different from the first head respectively facing three sections of the four sections excluding a second section different from the first section, in the third area, three heads of the four heads excluding a third head different from the first and the second heads respectively facing three sections of the four sections excluding a third section different from the first and the second sections, in the fourth area, three heads of the four heads excluding a fourth head different from the first, the second and the third heads respectively facing three sections of the four sections excluding a fourth section different from the first, the second and the third sections, and in the fifth area, the four heads respectively facing the four sections, and wherein, in the exposure operation, the second stage is moved from one area of the first, the second, the third and the fourth areas to another area of the first, the second, the third and the fourth areas, via the fifth area, the another area being different from the one area, in the one area, three heads of the four heads respectively facing three sections of the four sections of the first scale plate, in the fifth area, another head, of the four heads, that is different from the three heads used in the one area facing another section, of the four sections, that is different from the three sections, and in the another area, the another head being used instead of one head of the three heads used in the one area.
  26. 26
    The exposure method according to Claim 25, wherein in the another area, three heads including two remaining heads and the another head face three sections including the another section and excluding one section to which the one head faces in the one area, of the four sections of the first scale plate, the remaining two heads excluding the one head of the three heads used in the one area.
  27. 27
    The exposure method according to Claim 26, wherein in a part of the another area, the one head does not face the one section to which the one head faces in the one area, of the four sections of the first scale plate, and in a part of the one area, the another head does not face the another section to which the another head faces in the another area, of the four sections of the first scale plate.
  28. 28
    The exposure method according to any one of Claims 25 to 27, wherein the one head is switched to the another head to be used in drive control of the second stage, when the second stage is moved from the one area to the another area via the fifth area.
  29. 29
    The exposure method according to Claim 28, wherein the one head is switched to the another head while the second stage is in the fifth area.
  30. 30
    The exposure method according to any one of Claims 25 to 29, wherein correction information for the positional information obtained from the another head used in the another area is acquired, on the basis of the positional information obtained from three heads used in the one area, when the second stage is moved from the one area to the another area via the fifth area.
  31. 31
    The exposure method according to Claim 30, wherein the correction information includes an offset for compensating for a difference between the positional information obtained from the three heads used in the one area and the positional information obtained from the three heads including the another head that are used in the another area.
  32. 32
    The exposure method according to Claim 30 or 31, wherein the correction information is used in a part of the exposure operation, in the part of the exposure operation the second stage being moved in the another area.
  33. 33
    The exposure method according to any one of Claims 30 to 32, wherein the correction information is acquired while the second stage is in the fifth area.
  34. 34
    A device manufacturing method, comprising:exposing a wafer using the exposure method according to any one of Claims 25 to 33;and developing the wafer that has been exposed.
Independent claims34