Exposure apparatus, method for producing article, and exposure method
The exposure apparatus addresses the issue of defective areas caused by double exposure by using a light-shielding unit controlled by a control unit to prevent re-exposure of already exposed areas during the restart of the exposure process.
Patent Information
- Application Number
- JP2023198335
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-11-22
- Publication Date
- 2025-06-03
- Estimated Expiration
- 2043-11-22
AI Technical Summary
Conventional exposure apparatuses face issues with defective areas due to double exposure when the exposure process is interrupted, leading to areas where exposure has already been performed being exposed again.
The exposure apparatus includes a projection optical system, reticle and substrate stages, a light-shielding unit, and a control unit that controls the light-shielding unit to prevent exposure light from reaching the normal exposure area when the exposure is interrupted, thereby reducing defective areas.
This solution effectively reduces defective areas by preventing double exposure and ensuring that only the intended areas are exposed during the restart process.
Smart Images

Figure 2025084434000001_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to an exposure apparatus, a method for manufacturing an article, and an exposure method.
Background Art
[0002] Conventionally, when performing an exposure process on a predetermined shot area so as to transfer a pattern formed on a reticle to the predetermined shot area in an exposure apparatus, the exposure process may be interrupted due to the occurrence of a predetermined abnormality. Patent Document 1 discloses an exposure apparatus that, when the exposure process is interrupted due to an abnormality occurring in the driving of a reticle stage that holds a reticle or a substrate stage that holds a substrate, moves each position to the position at a time before the time when the abnormality occurred and resumes the exposure process.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] In the exposure apparatus disclosed in Patent Document 1, when the exposure process for a predetermined shot area is interrupted due to the occurrence of a predetermined abnormality, after returning the positions of the reticle stage and the substrate stage to the positions at a time before the time when the predetermined abnormality occurred, the exposure process is resumed. In this case, by resuming the exposure process on the predetermined shot area, the area where exposure was performed between the previous time and the time when the abnormality occurred is exposed again, and the area becomes a defective area where double exposure is performed.
[0005] Therefore, an object of the present invention is to provide an exposure apparatus capable of performing an exposure process on a substrate so as to reduce a defective area.
Means for Solving the Problem
[0006] The exposure apparatus according to the present invention is an exposure apparatus that projects an image of a pattern on a reticle onto a substrate and exposes the substrate, and includes a projection optical system that projects an image onto the substrate surface of the substrate by guiding exposure light that has passed through the reticle to the substrate, a reticle stage that scans and moves in a first direction parallel to the substrate surface while holding the reticle when exposing a predetermined shot area on the substrate surface, a substrate stage that scans and moves in the first direction while holding the substrate when exposing a predetermined shot area, a light-shielding unit that shields a part of the exposure light guided to the substrate, and a control unit that performs a restart process of restarting the exposure of a predetermined shot area while controlling the light-shielding unit so that the exposure light is not guided to the normal exposure area in the predetermined shot area when the exposure of the predetermined shot area is interrupted.
Advantages of the Invention
[0007] According to the present invention, it is possible to provide an exposure apparatus capable of performing an exposure process on a substrate so as to reduce a defective area.
Brief Description of the Drawings
[0008]
Figure 1
Figure 2
Figure 3
Figure 4
Figure 5
Embodiments for Carrying Out the Invention
[0009] Hereinafter, the exposure apparatus according to the present embodiment will be described in detail with reference to the accompanying drawings. Note that the drawings shown below may be drawn at scales different from the actual ones in order to facilitate understanding of the present embodiment. Also, a direction parallel to the optical axis of the projection optical system 9 (a direction perpendicular to the substrate surface of the substrate 11) is defined as the Z direction.
[0010] Also, in a plane parallel to the substrate surface of the substrate 11, a direction in which the substrate 11 is scanned is defined as the Y direction (first direction), and a non-scanning direction perpendicular to the Z direction and the Y direction is defined as the X direction (second direction). Also, rotational directions around the Z direction, X direction, and Y direction are defined as the θ direction, Pitch direction, and Roll direction, respectively.
[0011] Conventionally, when manufacturing a flat panel display (FPD), a semiconductor device, or the like, in an exposure apparatus, an exposure process is performed in which a pattern formed on a reticle is transferred onto a substrate while the reticle and the substrate are scanned and moved synchronously with each other. When such an exposure process is performed in an exposure apparatus, for example, a predetermined abnormality including an abnormality in focus, an abnormality in a drive mechanism of a reticle stage that holds the reticle, or a substrate stage that holds the substrate may occur, and the exposure process may be interrupted.
[0012] And, for a substrate on which the exposure process has been interrupted in the exposure apparatus, for example, by performing rework, it becomes unnecessary to handle the substrate as a defective substrate. On the other hand, depending on the product manufactured through the exposure process, the exposure process may be performed on a layer on the substrate on which rework is impossible.
[0013] Conventionally, a method of resuming the exposure process when the exposure process for a layer on the substrate on which such rework is impossible is interrupted has been known. For example, each substrate is identified so as to classify a plurality of substrates stored in a cassette into those on which exposure processing has been performed and those on which exposure processing has not been performed, and an exposure process is sequentially performed only on the identified substrates on which exposure processing has not been performed.
[0014] On the other hand, when an exposure process is interrupted due to a predetermined abnormality occurring during the exposure process for a plurality of shot areas on a substrate, problems may occur if the process proceeds to the next step without performing rework on the plurality of shot areas. That is, a problem occurs in that a shot area where exposure has been performed in a state where a predetermined abnormality has occurred among the plurality of shot areas and a shot area where exposure has not yet been performed are treated as defective shot areas.
[0015] Therefore, conventionally, when an exposure process for a plurality of shot areas on a substrate is interrupted due to an abnormality in focus, a method of resuming the exposure process for the plurality of shot areas by continuously measuring the focus is known. However, in such a method, a problem occurs in that a shot area where exposure has already been performed is exposed again, that is, double exposure is performed. In addition, in this method, it is difficult to resume the exposure process when the exposure process for a plurality of shot areas is interrupted due to a predetermined abnormality other than the focus abnormality.
[0016] Conventionally, when an exposure process for transferring a pattern formed on a reticle to a substrate is interrupted due to an abnormality in the driving of a reticle stage that holds the reticle or a substrate stage that holds the substrate, a method of resuming the exposure process for the substrate is known. Specifically, in this method, the positions of the reticle stage and the substrate stage at the time when the abnormality occurs and data indicating the time change of the positions of the reticle stage and the substrate stage are referred to.
[0017] When restarting the exposure process, the positions of the reticle stage and the substrate stage are each moved to the positions they were in at a time before the time when the abnormality occurred. However, in such a method, there is a problem that the shot area where exposure has already been performed is exposed again, that is, double exposure occurs.
[0018] As described above, in a conventional exposure apparatus, when restarting the exposure process for a substrate after the exposure process for the substrate is interrupted due to the occurrence of a predetermined abnormality, the shot area where exposure has already been performed is exposed again, that is, a problem of double exposure occurs. Therefore, an object of the present embodiment is to provide an exposure apparatus capable of performing an exposure process on a substrate so as to reduce a defective area including an area where double exposure is performed and an area where no exposure is performed.
[0019] FIGS. 1(a) and (b) respectively show a schematic XZ cross-sectional internal projection view and a schematic YZ cross-sectional internal projection view of an exposure apparatus 50 according to the present embodiment. The exposure apparatus 50 according to the present embodiment is a photolithography apparatus used in a photolithography process when manufacturing a flat panel display (FPD), a semiconductor device, or the like. That is, in the exposure apparatus 50 according to the present embodiment, an image of the pattern of the reticle 5 is projected onto the substrate 11, and the substrate 11 is configured to be exposed.
[0020] Specifically, the exposure apparatus 50 according to the present embodiment includes an illumination optical system 1, an alignment measurement unit 4, a reticle stage 6, laser interferometers 7a and 7b, a Y light shielding plate 8a (light shielding portion), and an X light shielding plate 8b (light shielding portion). The exposure apparatus 50 according to the present embodiment further includes a projection optical system 9, a focus measurement unit 10, a substrate stage 12, and a control unit 13.
[0021] The illumination optical system 1 includes an exposure light source (light source) such as a mercury lamp or an LED lamp (not shown), a wavelength selection filter, a lens group, an exposure shutter 2 (shutter member), and a slit 3. The illumination optical system 1 is configured to emit exposure light having a wavelength suitable for exposing the substrate 11 toward the reticle 5. Specifically, in the illumination optical system 1, by opening the exposure shutter 2, the exposure light emitted from the exposure light source passes through, and the exposure light is irradiated toward the reticle 5.
[0022] In the exposure apparatus 50 according to the present embodiment, by using the exposure shutter 2 provided in the illumination optical system 1 to block the exposure light emitted from the exposure light source, it is possible to interrupt the exposure of the substrate 11 without turning off the exposure light source. Then, the exposure light emitted from the exposure light source in the illumination optical system 1 is shaped by being cut out by the slit 3 and then irradiated onto the reticle 5.
[0023] The alignment measurement unit 4 has a focus adjustment mechanism and is configured to measure the positions of the marks formed on the reticle surface of the reticle 5 and the substrate surface of the substrate 11 in the XY plane. Specifically, the alignment measurement unit 4 is driven in the XY plane by a drive mechanism (not shown), and in combination with the drive control of the reticle stage 6 and the substrate stage 12, it is possible to measure the positions of the marks on the reticle 5 and the substrate 11 in the XY plane.
[0024] The reticle stage 6 is configured to be movable in the Y direction while holding the reticle 5 so as to adjust the irradiation position of the exposure light from the illumination optical system 1 on the reticle surface of the reticle 5 by a drive mechanism (not shown). A reflecting surface is provided on the reticle stage 6, and the measurement light emitted from the laser interferometer 7a is reflected by the reflecting surface. The laser interferometer 7a receives the reflected measurement light, and the position of the reticle stage 6 is constantly monitored.
[0025] The Y light shielding plate 8a is formed of two light shielding plates spaced apart from each other so as to face each other in the Y direction, and shields a part of the exposure light that has passed through the reticle stage 6 so as to adjust the illumination range in the Y direction on the substrate surface of the substrate 11. Specifically, the Y light-shielding plate 8a has a drive mechanism, and by moving in the Y direction by the drive mechanism, the projection range in the Y direction of the image of the pattern of the original plate 5 on the substrate surface of the substrate 11 is adjusted. In the exposure apparatus 50 according to the present embodiment, the Y light-shielding plate 8a is disposed between the original plate stage 6 and the projection optical system 9 in the Z direction.
[0026] The projection optical system 9 includes lenses, mirrors, etc. including a magnification correction unit. Then, the projection optical system 9 is configured to project the image of the pattern formed on the original plate 5 onto the substrate surface of the substrate 11 by guiding the exposure light that has passed through the original plate 5 held by the original plate stage 6 to the substrate 11 held by the substrate stage 12. By moving the lenses and mirrors provided in the projection optical system 9 in the Z direction, Pitch direction, and Roll direction by a drive mechanism (not shown), the image of the pattern can be projected onto the substrate surface of the substrate 11 while generating an arbitrary magnification, shift, and focus.
[0027] The projection optical system 9 provided in the exposure apparatus 50 according to the present embodiment is an equal magnification imaging optical system that projects the image of the pattern formed on the original plate 5 onto the substrate surface of the substrate 11 at an equal magnification. However, it is not limited to this, and an enlarged imaging optical system that enlarges and projects the image of the pattern onto the substrate surface of the substrate 11 or a reduced imaging optical system that reduces and projects it may be used. Also, the projection optical system 9 may be a mirror projection system using a huge mirror, or may be a multi-lens system using a plurality of lenses.
[0028] The X light-shielding plate 8b is formed of two light-shielding plates spaced apart so as to face each other in the X direction, and shields a part of the exposure light that has passed through the projection optical system 9 so as to adjust the illumination range in the X direction on the substrate surface of the substrate 11. Specifically, the X light shield 8b has a drive mechanism, and by moving in the X direction by the drive mechanism, the projection range in the X direction of the image of the pattern of the original plate 5 on the substrate surface of the substrate 11 is adjusted. In the exposure apparatus 50 according to the present embodiment, the X light shield 8b is disposed between the projection optical system 9 and the substrate stage 12 in the Z direction.
[0029] The focus measurement unit 10 measures the positions in the Z direction, Pitch direction, and Roll direction of the substrate surface of the substrate 11 by using a plurality of units that emit measurement light toward the substrate surface of the substrate 11 and receive the reflected light reflected by the substrate surface. The substrate stage 12 is configured to be movable in the X direction, Y direction, Z direction, θ direction, Pitch direction, and Roll direction while holding the substrate 11 so as to adjust the irradiation position of the exposure light on the substrate surface of the substrate 11 by a drive mechanism (not shown). A reflecting surface is provided on the substrate stage 12, and the measurement light emitted from the laser interferometer 7b is reflected by the reflecting surface, and the position of the substrate stage 12 is constantly monitored by the laser interferometer 7b receiving the reflected measurement light.
[0030] The control unit 13 is configured to control each drive mechanism provided in the exposure apparatus 50 according to the present embodiment. For example, the control unit 13 performs alignment between the original plate 5 and the substrate 11 based on the measurement results of the positions of the marks formed on the original plate surface of the original plate 5 and the substrate surface of the substrate 11 by the alignment measurement unit 4. Then, the control unit 13 can accurately control the synchronous drive between the two by controlling the driving of the original plate stage 6 and the substrate stage 12 according to the result of the alignment.
[0031] In the exposure apparatus 50 according to the present embodiment, the original plate 5 held by the original plate stage 6 and the substrate 11 held by the substrate stage 12 are arranged at positions optically conjugate to each other with respect to the projection optical system 9. Then, while synchronously scanning and moving the original stage 6 and the substrate stage 12 with respect to each other, an image of the pattern formed on the original surface of the original 5 is projected onto the substrate surface of the substrate 11 through the projection optical system 9.
[0032] The pattern formed on the original surface of the original 5 used in the exposure apparatus 50 according to the present embodiment corresponds to a pattern formed in a single layer among the laminated structures when manufacturing an FPD, a semiconductor device, etc. by a photolithography process. Specifically, in the exposure apparatus 50 according to the present embodiment, an image of the pattern is projected onto the substrate surface of the substrate 11 coated with the photosensitive material, whereby a latent image of the pattern of the original 5 is formed on the substrate surface. Then, by performing a development process on the latent image formed on the substrate surface of the substrate 11, it is converted into a physical resist pattern.
[0033] Next, specific control of the exposure process for the substrate 11 in the exposure apparatus 50 according to the present embodiment will be described. FIG. 2 is a flowchart showing the exposure process for the substrate 11 in the exposure apparatus 50 according to the present embodiment. Each step in the flowchart is controlled by the control unit 13.
[0034] In the exposure apparatus 50 according to the present embodiment, the original 5 and the substrate 11 as shown in FIGS. 3(a) and (b) are used. Specifically, FIG. 3(a) shows a schematic top view of the original 5. On the original surface of the original 5, a plurality of, specifically 16 panels 21 are provided in a 4×4 grid pattern, and patterns are formed on each of them. That is, in the original 5, four panels 21 are arranged along the Y direction and four panels 21 are arranged along the X direction.
[0035] The plurality of panels 21 can be defined as regions where the same pattern is formed with respect to each other within, for example, the shot region. In addition, not limited to this, the plurality of panels 21 may be determined based on, for example, panel layout information input by a user.
[0036] Further, FIG. 3(b) shows a schematic top view of the substrate 11, and a plurality of, specifically, shot regions 20a, 20b, 20c, and 20d are provided on the substrate surface of the substrate 11 in a 2×2 grid pattern. Then, 16 panels 21 formed on the original surface of the original plate 5 are transferred in each of the shot regions 20a, 20b, 20c, and 20d.
[0037] Note that the number and layout of the panels 21 provided on the original surface of the original plate 5, and the number and layout of the shot regions provided on the substrate surface of the substrate 11 are not limited to the above. The control in the exposure apparatus 50 according to the present embodiment is effective when performing an exposure process of transferring a plurality of panels 21 arranged in two or more in the Y direction in each shot region.
[0038] As shown in FIG. 2, when the exposure process is started in the exposure apparatus 50 according to the present embodiment, first, scanning exposure is started for a predetermined shot region (step S101). Specifically, in step S101, exposure light from the exposure light source in the illumination optical system 1 is cut out by the slit 3, passes through the original plate 5 and the projection optical system 9, and then is irradiated onto the predetermined shot region of the substrate 11.
[0039] Then, based on the alignment result between the original plate 5 and the substrate 11 performed in advance, the original plate stage 6 and the substrate stage 12 are driven synchronously with each other in the Y direction, so that scanning exposure is performed on a predetermined shot region of the substrate 11. Also in step S101, by driving the Y shutter 8a and the X shutter 8b, a part of the exposure light emitted from the illumination optical system 1 is blocked so that the exposure light is not irradiated onto a predetermined illumination region on the original surface of the original plate 5 and a region other than the predetermined shot region on the substrate surface of the substrate 11.
[0040] Next, it is determined whether any predetermined abnormality has been detected in the exposure apparatus 50 according to the present embodiment (step S102, determination step). The predetermined abnormality referred to here includes, for example, an error in the scanning movement of at least one of the reticle stage 6 and the substrate stage 12, an unexpected extinguishing of the exposure light source provided in the illumination optical system 1, an unexpected closing of the exposure shutter 2 provided in the illumination optical system 1, and the like. If no predetermined abnormality has been detected in the exposure apparatus 50 according to the present embodiment (Yes in step S102), it is determined whether the scanning exposure of a predetermined shot area of the substrate 11 has been completed (step S103).
[0041] If the scanning exposure of a predetermined shot area of the substrate 11 has not been completed (No in step S103), the process returns to step S102, and the scanning exposure of the predetermined shot area is continued. On the other hand, if the scanning exposure of a predetermined shot area of the substrate 11 has been completed (Yes in step S103), it is determined whether the scanning exposure of all the shot areas of the substrate 11 has been completed (step S104).
[0042] If the scanning exposure of all the shot areas of the substrate 11 has been completed (Yes in step S104), the exposure process for the substrate 11 is terminated. On the other hand, if the scanning exposure of all the shot areas of the substrate 11 has not been completed (No in step S104), the reticle stage 6 and the substrate stage 12 are moved so as to perform the scanning exposure on the next shot area where the scanning exposure has not been performed yet. Then, the scanning exposure is started on the next shot area (step S105), and the process returns to step S102.
[0043] When performing the exposure process on the substrate 11 as shown in FIG. 3(b) in the exposure apparatus 50 according to the present embodiment, for example, the scanning exposure can be performed in the order of the shot areas 20a, 20b, 20c, and 20d. However, the order of the shot areas where the scanning exposure is performed on the substrate 11 is not limited to this, and can be arbitrarily set by the control unit 13.
[0044] Also, regarding the scanning direction when performing scanning exposure on each of the shot areas 20a to 20d on the substrate 11, that is, whether to scan in the positive direction of the Y direction or in the negative direction of the Y direction, it can also be arbitrarily set by the control unit 13. In the exposure apparatus 50 according to the present embodiment, scanning exposure is performed in the Y direction for each shot area, but it is not limited to this, and scanning exposure may be performed in the X direction.
[0045] Return to step S102. If a predetermined abnormality is detected in the exposure apparatus 50 according to the present embodiment (No in step S102), the currently performed scanning exposure is interrupted (step S106). FIG. 4 shows a partial schematic top view of the exposure apparatus 50 according to the present embodiment when the scanning exposure is interrupted at a predetermined timing in step S106.
[0046] As shown in FIG. 4, when the scanning exposure for a predetermined shot area starts in step S101 or step S105, for example, the scanning exposure is performed from the minus side end in the Y direction to the plus side end in the Y direction of the predetermined shot area. At this time, the Y light shielding plate 8a is disposed along each of the minus side end and the plus side end in the Y direction of the predetermined shot area. And in the predetermined shot area, 16 panels 21 formed on the original surface of the original plate 5 are transferred.
[0047] Here, as shown in FIG. 4, it is assumed that divided exposure areas 30a, 30b, 30c, and 30d are formed in order from the minus side in the Y direction to the plus side in the Y direction for the 16 panels 21 transferred to the predetermined shot area. That is, each of the plurality of divided exposure regions 30a, 30b, 30c, and 30d arranged along the Y direction has four panels 21 along the X direction. Note that the divided exposure regions 30a, 30b, 30c, and 30d can be determined by the control unit 13 based on the layout of the plurality of panels 21 on the original plate surface of the original plate 5 input by the user.
[0048] Also, as shown in FIG. 4, the position where scanning exposure starts with respect to the minus Y-direction end portion of the divided exposure region 30a, that is, a predetermined shot region, is denoted as 33a. In other words, the position 33a can also be referred to as the scanning start-side end portion of the predetermined shot region.
[0049] Also, the position where scanning exposure ends with respect to the plus Y-direction end portion of the divided exposure region 30d, that is, a predetermined shot region, is denoted as 33e. Then, the central position between the divided exposure region 30a and the divided exposure region 30b in the Y direction is denoted as 33b, and the central position between the divided exposure region 30b and the divided exposure region 30c in the Y direction is denoted as 33c.
[0050] Also, the central position between the divided exposure region 30c and the divided exposure region 30d in the Y direction is denoted as 33d. Note that the positions 33a, 33b, 33c, and 33d can also be referred to as the start positions of the scanning exposure for the divided exposure regions 30a, 30b, 30c, and 30d, respectively.
[0051] As shown in FIG. 4, for example, when it is determined in step S102 that a predetermined abnormality has been detected in the exposure apparatus 50 according to the present embodiment, it is assumed that scanning exposure is being performed on a predetermined position 31 within the divided exposure region 30b in the Y direction. Specifically, as shown in FIG. 4, the position 31 is determined as the position of the minus Y-direction end portion of the irradiation region 34 of the exposure light on the predetermined shot region when it is determined in step S102 that a predetermined abnormality has been detected in the exposure apparatus 50 according to the present embodiment.
[0052] Also, when the scanning exposure for a predetermined shot area is interrupted in step S106, it is assumed that the scanning exposure is being performed on a predetermined position 32 within the divided exposure area 30b in the Y direction. Specifically, as shown in FIG. 4, the position 32 is determined as the position of the plus-side end in the Y direction of the irradiation area 34 of the exposure light on the predetermined shot area when the scanning exposure for the predetermined shot area is interrupted in step S106.
[0053] As a predetermined abnormality in the exposure apparatus 50 according to the present embodiment detected in step S102, for example, an abnormality regarding focus during scanning exposure and an abnormality in the drive mechanism for driving the reticle stage 6 and the substrate stage 12 are included. Also, as the predetermined abnormality, an abnormality in the illumination optical system 1 during scanning exposure and the like, and an abnormality that inevitably interrupts the scanning exposure for a predetermined shot area in the exposure apparatus 50 according to the present embodiment are included.
[0054] Then, when the control unit 13 determines in step S102 that such an abnormality has been detected, it stops the driving of the reticle stage 6 and the substrate stage 12 respectively in step S106, and closes the exposure shutter 2 in the illumination optical system 1 to interrupt the scanning exposure. In step S106, instead of closing the exposure shutter 2 in the illumination optical system 1, the exposure light source may be turned off by controlling the voltage applied to the exposure light source.
[0055] Even when the control unit 13 determines in step S102 that an abnormality has been detected, it cannot immediately stop the driving of the reticle stage 6 and the substrate stage 12 respectively in step S106, or immediately close the exposure shutter 2. Therefore, the position 31 (hereinafter referred to as the abnormality occurrence position 31) when it is determined in step S102 that an abnormality has been detected as described above, and the position 32 (hereinafter referred to as the exposure interruption position 32) when the scanning exposure is interrupted in step S106 will be shifted from each other.
[0056] Next, the abnormal occurrence position 31 and the exposure interruption position 32 on the shot area where the scanning exposure is being performed are determined respectively (step S107). Specifically, in step S107, the positions in the XY plane of the reticle stage 6 and the substrate stage 12 respectively measured by the laser interferometers 7a and 7b recorded by the control unit 13 when scanning and exposing the abnormal occurrence position 31 are referred to.
[0057] Next, the illumination range in the Y direction on the shot area where the scanning exposure is being performed is calculated from the width in the Y direction of the exposure light determined by the slit 3 at the positions in the XY plane of the referred reticle stage 6 and substrate stage 12 respectively. Then, the position of the minus side end in the Y direction of the calculated illumination range is determined as the abnormal occurrence position 31.
[0058] Also in step S107, the positions in the XY plane of the reticle stage 6 and the substrate stage 12 respectively measured by the laser interferometers 7a and 7b recorded by the control unit 13 when scanning and exposing the exposure interruption position 32 are referred to. Next, the illumination range in the Y direction on the shot area where the scanning exposure is being performed is calculated from the width in the Y direction of the exposure light determined by the slit 3 at the positions in the XY plane of the referred reticle stage 6 and substrate stage 12 respectively. Then, the position of the plus side end in the Y direction of the calculated illumination range is determined as the exposure interruption position 32.
[0059] The area between the abnormal occurrence position 31 and the exposure interruption position 32 determined in this way can be referred to as an abnormal exposure area where the scanning exposure is being performed in a state where a predetermined abnormality has occurred in the exposure apparatus 50 according to the present embodiment. That is, the abnormal exposure area can be defined as the area between the abnormal occurrence position 31 at the time when a predetermined abnormality is detected in the exposure apparatus 50 according to the present embodiment, and the exposure interruption position 32 at the time when the scanning exposure is interrupted. In FIG. 4, the area where the scanning exposure is performed from the occurrence of a predetermined abnormality to the interruption of the scanning exposure in the exposure apparatus 50 according to the present embodiment, that is, the area between the exposure start position 33a and the exposure interruption position 32, is shown in gray.
[0060] Next, it is determined which of the divided exposure areas 30a to 30d the abnormal occurrence position 31 and the exposure interruption position 32 determined in step S107 are included in (step S108). Specifically, in step S108, by comparing the determined abnormal occurrence position 31 and exposure interruption position 32 with the positions 33a, 33b, 33c, 33d, and 33e, it is determined which of the divided exposure areas 30a to 30d each is included in.
[0061] Next, an abnormal exposure area where the scanning exposure is being performed in a state where a predetermined abnormality has occurred in the exposure apparatus 50 according to the present embodiment is determined (step S109, determination step). As described above, the abnormal exposure area is the area between the abnormal occurrence position 31 and the exposure interruption position 32.
[0062] Therefore, in step S109, at least one divided exposure area between the divided exposure area including the abnormal occurrence position 31 and the divided exposure area including the exposure interruption position 32 in the Y direction is determined as the abnormal exposure area. In the example shown in FIG. 4, since both the abnormal occurrence position 31 and the exposure interruption position 32 are included in the divided exposure area 30b, the divided exposure area 30b is determined as the abnormal exposure area.
[0063] Next, it is notified to the user that there may be a defect in the panel 21 included in the abnormal exposure area determined in step S109 (step S110). Next, in a predetermined shot area, a normal exposure area where no predetermined abnormality has occurred in the exposure apparatus 50 according to the present embodiment, that is, a scanning exposure is being performed in a normal state, is determined (step S111).
[0064] Specifically, in step S111, an area that was exposed within the time (period) before the time when a predetermined abnormality occurred in the exposure apparatus 50 according to the present embodiment during the scanning exposure for a predetermined shot area is determined. For example, in FIG. 4, an area shown in black is determined. Then, among the divided exposure areas 30a to 30d, at least one divided exposure area where scanning exposure is being performed in a normal state for all areas is determined as the normal exposure area.
[0065] In other words, among the divided exposure areas 30a to 30d, at least one divided exposure area arranged on the minus Y direction side, that is, the scanning start side, of the abnormal exposure area is determined as the normal exposure area. In the example shown in FIG. 4, since the divided exposure area 30b is determined as the abnormal exposure area, the divided exposure area 30a arranged on the minus Y direction side of the divided exposure area 30b is determined as the normal exposure area.
[0066] Also, in step S111, an unexposed area where scanning exposure has not yet been performed in a predetermined shot area is determined. That is, an area where scanning exposure has not yet been performed in a predetermined shot area, for example, an area shown in white in FIG. 4, is determined. Then, among the divided exposure areas 30a to 30d, at least one divided exposure area where scanning exposure has not yet been performed for all areas is determined as the unexposed area.
[0067] In other words, among the divided exposure areas 30a to 30d, at least one divided exposure area arranged on the plus Y direction side of the abnormal exposure area is determined as the unexposed area. In the example shown in FIG. 4, the divided exposure areas 30c and 30d arranged on the plus Y direction side of the divided exposure area 30b are determined as the unexposed areas.
[0068] Next, the Y light-shielding plate 8a is arranged so that the exposure light is not irradiated onto the normal exposure area determined in step S111 and the abnormal exposure area determined in step S109 (step S112). Thereby, it is possible to suppress the re-exposure of the already exposed divided exposure area including the normal exposure area and the abnormal exposure area, that is, double exposure.
[0069] FIG. 5(a) shows a partial schematic top view of the exposure apparatus 50 according to the present embodiment when the Y light-shielding plate 8a is arranged in step S112. In the example shown in FIG. 4 as described above, the divided exposure areas 30a and 30b are determined as the normal exposure area and the abnormal exposure area, respectively. Therefore, in this case, as shown in FIG. 5(a), the Y light-shielding plate 8a is arranged so that the exposure light is not irradiated onto the divided exposure areas 30a and 30b in step S112.
[0070] Next, after a predetermined abnormality occurring in the exposure apparatus 50 according to the present embodiment is resolved, the scanning exposure is resumed (step S113, resumption step), and the process returns to step S102. Note that in step S113, the scanning exposure for the predetermined shot area may be resumed from the position where the scanning exposure for the predetermined shot area starts, that is, from position 33a shown in FIG. 4 in the example shown in FIG. 4.
[0071] Moreover, not limited thereto, in step S113, the scanning exposure for the predetermined shot area may be resumed from the position closest to the minus side in the Y direction of the unexposed area among the center positions between the mutually adjacent divided exposure areas. That is, in the example shown in FIG. 4, the scanning exposure for the predetermined shot area may be resumed from position 33c, which is the closest to the minus side in the Y direction of the unexposed area among the center positions 33b to 33d between the mutually adjacent divided exposure areas.
[0072] As described above, in the exposure apparatus 50 according to the present embodiment, when the exposure of a predetermined shot area on the substrate 11 is interrupted, the control unit 13 controls the Y light-shielding plate 8a so that exposure light is not guided to the normal exposure area in the predetermined shot area, and resumes the exposure of the predetermined shot area. Accordingly, even if an abnormality occurs in the exposure apparatus 50 when performing exposure on a predetermined shot area including a plurality of panels 21 and the exposure is interrupted, the number of defective panels 21 in the predetermined shot area can be reduced.
[0073] In the exposure apparatus 50 according to the present embodiment, the Y light-shielding plate 8a is arranged so that exposure light is not irradiated on the normal exposure area and the abnormal exposure area in step S112. However, the present invention is not limited to this, and the Y light-shielding plate 8a may be arranged so that exposure light is not irradiated only on the normal exposure area or only on the divided exposure area 30a in the partial schematic top view of the exposure apparatus 50 according to the present embodiment shown in FIG. 5(b). In this case, scanning exposure can be performed on the predetermined shot area so that no completely unexposed area is formed.
[0074] In the exposure apparatus 50 according to the present embodiment, the Y light-shielding plate 8a is arranged so that exposure light is not irradiated on the normal exposure area and the abnormal exposure area in step S112. However, the present invention is not limited to this, and without moving the Y light-shielding plate 8a, that is, while maintaining the arrangement of the Y light-shielding plate 8a along the minus-side end and the plus-side end in the Y direction of the predetermined shot area, the irradiation timing of the exposure light from the illumination optical system 1 may be adjusted.
[0075] That is, in this case, step S112 is not performed. Then, when resuming the scanning exposure on the predetermined shot area in step S113, the exposure shutter 2 is closed when scanning the normal exposure area and the abnormal exposure area, while the exposure shutter 2 may be opened when scanning the unexposed area. In the example specifically shown in FIG. 4, the exposure shutter 2 is closed when scanning the divided exposure regions 30a and 30b. Then, the exposure shutter 2 may be opened when scanning the position 33c, which is the start position of the scanning exposure for the divided exposure region 30c, that is, the scanning start side end of the divided exposure region 30c. Also, in this case, instead of closing or opening the exposure shutter 2, the exposure light source provided in the illumination optical system 1 may be turned off or on by controlling the voltage applied to the exposure light source.
[0076] Further, while maintaining the arrangement of the Y light-shielding plate 8a along the minus side end and the plus side end in the Y direction of a predetermined shot region, the scanning start position when restarting the exposure for the predetermined shot region may be changed. That is, in this case, step S112 is not performed, and in step S113, the scanning exposure for the unexposed region may be started, that is, the scanning exposure for the predetermined shot region may be restarted from the scanning start side end of the unexposed region. Specifically, in the example shown in FIG. 4, the scanning exposure may be restarted from the position 33c, which is the start position of the scanning exposure for the divided exposure region 30c.
[0077] Also, in the above, among the plurality of divided exposure regions provided in the shot region, the divided exposure regions included in the normal exposure region, the abnormal exposure region, and the unexposed region have been determined, but it is not limited to this. That is, in the exposure apparatus 50 according to the present embodiment, the shot region may be defined as a single continuous exposure region, and the partial regions included in the normal exposure region, the abnormal exposure region, and the unexposed region in the single exposure region may be determined.
[0078] [Method for manufacturing an article] The method for manufacturing an article according to the present embodiment includes a step of exposing a substrate such as a wafer or a glass substrate coated with a photosensitive agent using the exposure apparatus 50 according to the present embodiment. The article includes semiconductor integrated circuit (IC) elements, liquid crystal display elements, microelectromechanical systems (MEMS), and the like.
[0079] The method for manufacturing the article according to this embodiment includes a step of developing the exposed substrate (photosensitive agent) and other well-known steps of processing the developed substrate. The other well-known steps include etching, photosensitive agent stripping, dicing, bonding, packaging, and the like.
[0080] According to the method for manufacturing the article according to this embodiment, an article of higher quality than before can be manufactured. As described above, the preferred embodiments have been described, but the present invention is not limited to these embodiments, and various modifications and changes are possible within the scope of the gist.
[0081] The disclosure of this embodiment includes the following configurations and methods. (Configuration 1) An exposure apparatus that projects an image of a pattern on a reticle onto a substrate and exposes the substrate, including a projection optical system that projects the image onto the substrate surface by guiding the exposure light that has passed through the reticle to the substrate, a reticle stage that scans and moves in a first direction parallel to the substrate surface while holding the reticle when exposing a predetermined shot area on the substrate surface, a substrate stage that scans and moves in the first direction while holding the substrate when exposing a predetermined shot area, a light shielding unit that blocks a part of the exposure light guided to the substrate, and a control unit that performs a restart process of restarting the exposure of a predetermined shot area while controlling the light shielding unit so that the exposure light is not guided to the normal exposure area in the predetermined shot area when the exposure of the predetermined shot area is interrupted. (Configuration 2) The restart process according to Configuration 1, characterized in that the restart process includes a step of restarting the exposure of a predetermined shot area while controlling the light shielding unit so that the exposure light is not guided to the normal exposure area and the abnormal exposure area in the predetermined shot area. (Configuration 3) The restart process includes a determination step of determining an abnormal exposure area from the area exposed between the time when a predetermined abnormality occurred during the exposure of a predetermined shot area and the time when the exposure of the predetermined shot area was interrupted, and the exposure apparatus according to Configuration 1 or 2, characterized in that it includes this. (Configuration 4) The control unit performs a step of notifying that there may be a defect in the abnormal exposure area, and the exposure apparatus according to Configuration 3, characterized in that it includes this. (Configuration 5) The restart process includes a step of determining a normal exposure area from the area exposed within the time before the time when a predetermined abnormality occurred during the exposure of a predetermined shot area, and the exposure apparatus according to any one of Configurations 1 to 4, characterized in that it includes this. (Configuration 6) The restart process includes a determination step of determining whether a predetermined abnormality has occurred during the exposure of a predetermined shot area, and the exposure apparatus according to any one of Configurations 1 to 5, characterized in that it includes this. (Configuration 7) When it is determined in the determination step that a predetermined abnormality has occurred, the control unit performs a step of interrupting the exposure of a predetermined shot area, and the exposure apparatus according to Configuration 6, characterized in that it includes this. (Configuration 8) An illumination optical system for irradiating an original plate with exposure light, which has a light source for emitting exposure light and a shutter member that allows the exposure light from the light source to pass through when opened, and the predetermined abnormality includes an error in the scanning movement of at least one of the original plate stage and the substrate stage, an unexpected turn-off of the light source, and an unexpected closing of the shutter member, and the exposure apparatus according to any one of Configurations 3 to 7, characterized in that it includes this. (Configuration 9) The predetermined shot area has a plurality of divided exposure areas arranged along a first direction, and the restart process includes a step of determining an abnormal exposure area from at least one divided exposure area including the area exposed between the time when a predetermined abnormality occurred during the exposure of the predetermined shot area and the time when the exposure of the predetermined shot area was interrupted, and the exposure apparatus according to any one of Configurations 1 to 8, characterized in that it includes this. (Configuration 10) The restart process includes a step of determining a normal exposure area from at least one divided exposure area arranged on the scanning start side of the abnormal exposure area in the predetermined shot area, and the exposure apparatus according to Configuration 9, characterized in that it includes this. (Configuration 11) The exposure apparatus according to Configuration 9 or 10, wherein the plurality of divided exposure regions are arranged along a first direction on the original plate and are determined based on a plurality of panels in which the same pattern is formed among each other. (Configuration 12) The exposure apparatus according to Configuration 11, wherein the plurality of panels are arranged in a second direction perpendicular to the first direction within the substrate plane. (Configuration 13) The exposure apparatus according to any one of Configurations 1 to 12, wherein the restart process includes a process of restarting the exposure of a predetermined shot region from the scanning start side end of the predetermined shot region. (Configuration 14) The exposure apparatus according to any one of Configurations 1 to 12, wherein the restart process includes a process of determining an unexposed region that was not exposed when the exposure of a predetermined shot region was interrupted, and a process of restarting the exposure of the predetermined shot region from the scanning start side end of the unexposed region. (Configuration 15) An illumination optical system that irradiates the original plate with exposure light and has a shutter member that allows the exposure light to pass through by opening, and the restart process includes a process of opening the shutter member when scanning the scanning start side end of a predetermined shot region. The exposure apparatus according to any one of Configurations 1 to 12. (Configuration 16) An illumination optical system that irradiates the original plate with exposure light and has a shutter member that allows the exposure light to pass through by opening, and the restart process includes a process of determining an unexposed region that was not exposed when the exposure of a predetermined shot region was interrupted, and a process of opening the shutter member when scanning the scanning start side end of the unexposed region. The exposure apparatus according to any one of Configurations 1 to 12. (Configuration 17) The exposure apparatus according to any one of Configurations 1 to 16, wherein the light shielding portion includes two light shielding plates that are spaced apart from each other so as to face each other in the first direction and are each movable in the first direction. (Method 1) A method for manufacturing an article, including a process of exposing a substrate with the exposure apparatus according to any one of Configurations 1 to 17, and a process of developing the exposed substrate. An exposure method of projecting an image onto a substrate and exposing the substrate using an exposure apparatus including: a projection optical system that projects an image of a pattern of a master onto a substrate surface of the substrate by guiding exposure light that has passed through the master to the substrate; a master stage that scans and moves in a first direction parallel to the substrate surface while holding the master when exposing a predetermined shot area on the substrate surface; a substrate stage that scans and moves in the first direction while holding the substrate when exposing the predetermined shot area; and a light shielding unit that shields a part of the exposure light guided to the substrate, the method including a restart step of restarting the exposure of the predetermined shot area while controlling the light shielding unit so that the exposure light is not guided to a normal exposure area in the predetermined shot area when the exposure of the predetermined shot area is interrupted.
Explanation of reference numerals
[0082] 5 Master 6 Master stage 8a Y light shielding plate (light shielding unit) 8b X light shielding plate (light shielding unit) 9 Projection optical system 11 Substrate 12 Substrate stage 13 Control unit 20a, 20b, 20c, 20d Shot area 34 Exposure light 50 Exposure apparatus
Claims
1. An exposure apparatus that projects an image of an original pattern onto a substrate and exposes the substrate, comprising: a projection optical system that projects the image onto the substrate surface of the substrate by guiding the exposure light that has passed through the original; an original stage that scans and moves in a first direction parallel to the substrate surface while holding the original when exposing a predetermined shot area on the substrate surface; a substrate stage that scans and moves in the first direction while holding the substrate when exposing the predetermined shot area; a light-shielding portion that shields a part of the exposure light guided to the substrate; a control unit that performs a restart process of restarting the exposure of the predetermined shot area while controlling the light-shielding portion so that the exposure light is not guided to the normal exposure area in the predetermined shot area when the exposure of the predetermined shot area is interrupted; An exposure apparatus characterized by comprising the above.
2. The exposure apparatus according to claim 1, wherein the restart process includes a process of restarting the exposure of the predetermined shot area while controlling the light-shielding portion so that the exposure light is not guided to the normal exposure area and the abnormal exposure area in the predetermined shot area, respectively.
3. The exposure apparatus according to claim 1, wherein the restart process includes a determination process of determining an abnormal exposure area from an area exposed during a period between a time when a predetermined abnormality occurs during the exposure of the predetermined shot area and a time when the exposure of the predetermined shot area is interrupted.
4. The exposure apparatus according to claim 3, wherein the control unit performs a process of notifying that there may be a defect in the abnormal exposure area.
5. The exposure apparatus according to claim 1, wherein the restart process includes a process of determining the normal exposure area from an area exposed within a time before a time when a predetermined abnormality occurs during the exposure of the predetermined shot area.
6. The exposure apparatus according to claim 1, wherein the restart process includes a determination process of determining whether a predetermined abnormality has occurred during the exposure of the predetermined shot area.
7. The exposure apparatus according to claim 6, wherein the control unit performs a process of interrupting the exposure of the predetermined shot area when it is determined in the determination process that the predetermined abnormality has occurred.
8. An illumination optical system for irradiating the original plate with the exposure light, comprising a light source that emits the exposure light and a shutter member that allows the exposure light from the light source to pass through when opened. The exposure apparatus according to claim 3, wherein the predetermined abnormality includes an error in the scanning movement of at least one of the original plate stage and the substrate stage, an unexpected turn-off of the light source, and an unexpected closing of the shutter member.
9. The predetermined shot area has a plurality of divided exposure areas arranged along the first direction. The restart process includes a step of determining an abnormal exposure area from at least one of the divided exposure areas including an area exposed between the time when a predetermined abnormality occurred during the exposure of the predetermined shot area and the time when the exposure of the predetermined shot area was interrupted. The exposure apparatus according to claim 1.
10. The restart process according to claim 9, wherein the restart process includes a step of determining a normal exposure area from at least one of the divided exposure areas arranged on the scanning start side of the abnormal exposure area in the predetermined shot area. The exposure apparatus described.
11. The plurality of divided exposure areas are arranged along the first direction on the original plate and are determined based on a plurality of panels in which the same pattern is formed with each other. The exposure apparatus according to claim 9.
12. The exposure apparatus according to claim 11, wherein the plurality of panels are arranged in a second direction perpendicular to the first direction in the substrate plane.
13. The restart process according to claim 1, wherein the restart process includes a step of restarting the exposure of the predetermined shot area from the scanning start side end of the predetermined shot area. The exposure apparatus described.
14. The restart process is a step of determining an unexposed area that was not exposed when the exposure of the predetermined shot area was interrupted; a step of restarting the exposure of the predetermined shot area from the scanning start side end of the unexposed area; The exposure apparatus according to claim 1, characterized by including.
15. An illumination optical system for irradiating the original plate with the exposure light, having a shutter member that allows the exposure light to pass through when opened. The restart process according to claim 1, wherein the restart process includes a step of opening the shutter member when scanning the scanning start side end of the predetermined shot area. The exposure apparatus described.
16. An illumination optical system that irradiates the original plate with the exposure light and has a shutter member that allows the exposure light to pass through by opening. The restart process is A step of determining an unexposed area that was not exposed when the exposure of the predetermined shot area was interrupted; A step of opening the shutter member when scanning the start side end of the unexposed area; The exposure apparatus according to claim 1, characterized by including the above.
17. The light shielding part includes two light shielding plates that are separated from each other so as to face each other in the first direction and are each movable in the first direction. The exposure apparatus according to claim 1.
18. A step of exposing a substrate with the exposure apparatus according to any one of claims 1 to 17; A step of developing the exposed substrate; A method for manufacturing an article, characterized by including the above.
19. A projection optical system that projects an image of the pattern of the original plate onto the substrate surface of the substrate by guiding the exposure light that has passed through the original plate to the substrate, a reticle stage that scans and moves in a first direction parallel to the substrate surface while holding the original plate when exposing a predetermined shot area on the substrate surface, a substrate stage that scans and moves in the first direction while holding the substrate when exposing the predetermined shot area, and a light shielding part that shields a part of the exposure light guided to the substrate. An exposure method of projecting the image onto the substrate and exposing the substrate using the exposure apparatus, When the exposure of the predetermined shot area is interrupted, the exposure method includes a restart process of restarting the exposure of the predetermined shot area while controlling the light shielding part so that the exposure light is not guided to the normal exposure area in the predetermined shot area.
Citation Information
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