Photoelectron Microscopy

The photoelectron microscope addresses the challenge of lengthy preparation times by using a control unit to automate the alignment of key components, resulting in faster capture of high-brightness and high-resolution images.

JP7673010B2Active Publication Date: 2025-05-08HITACHI HIGH TECH CORP
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Patent Information

Application Number
JP2022045583
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-22
Publication Date
2025-05-08
Estimated Expiration
2042-03-22

AI Technical Summary

Technical Problem

Existing photoelectron microscopes face challenges in shortening the preparation time for capturing high-brightness and high-resolution photoelectron images, due to the need for precise alignment of the excitation light, camera field of view, and objective lens axis, which is time-consuming and affected by sample height and inclination.

Method used

A photoelectron microscope with a control unit that automatically aligns the center of the camera's field of view with the excitation light irradiation position based on the luminance distribution of the first photoelectron image, and aligns the camera's field of view with the central axis of the objective lens using subsequent photoelectron images captured by adjusting the lens intensity of the objective lens.

Benefits of technology

This solution significantly reduces the preparation time for obtaining high-brightness and high-resolution photoelectron images by automating the alignment process, thereby improving operational efficiency.

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Patent Text Reader

Abstract

To provide a photoelectron emission microscope capable of reducing preparation time for capturing a photoelectron image with high luminance and resolution.SOLUTION: A photoelectron emission microscope includes: a sample stage on which a sample is placed; an excitation light source that irradiates the sample with excitation light; a camera that detects photoelectrons emitted from the sample and captures a photoelectron image; an objective lens that focus the photoelectron on a detection surface of the camera; and a control section that controls each section. The control section aligns a field-of-view center of the camera with an irradiation position of the excitation light on the basis of a luminance distribution of a first photoelectron image, and aligns the field-of-view center with a central axis of the objective lens on the basis of a second photoelectron image and a third photoelectron image that are captured by changing lens strength of the objective lens.SELECTED DRAWING: Figure 5
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Description

[Technical field]

[0001] The present invention relates to a photoelectron microscope. [Background technology]

[0002] A photoelectron emission microscope (PEEM) is an instrument that captures photoelectron images by irradiating a sample with ultraviolet light or X-rays as excitation light and detecting the photoelectrons emitted from the sample.

[0003] Patent Document 1 discloses a photoelectron microscope that includes an excitation light source that irradiates a sample with excitation light, a camera that detects photoelectrons emitted from the sample and creates an image, and a lens that focuses the photoelectrons on the detection surface of the camera. It also discloses that an electron beam is irradiated onto a sample together with the excitation light, and photoelectrons are selected, detected, and imaged while excluding reflected electrons based on the angular distribution of photoelectrons and reflected electrons emitted from the sample. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Patent No. 4413618 Publication Summary of the Invention [Problem to be solved by the invention]

[0005] However, in Patent Document 1, no consideration is given to the preparation time required to capture a photoelectron image with high brightness and resolution. If there is a large misalignment between the irradiation position of the excitation light and the center of the field of view of the camera, the brightness of the photoelectron image decreases, and if there is a large misalignment between the central axis of the objective lens and the center of the field of view, the resolution of the photoelectron image decreases. In addition, the central axis of the objective lens changes depending on the height and inclination of the sample. In other words, in order to capture a photoelectron image with high brightness and resolution, it is necessary to align the irradiation position of the excitation light and the center of the field of view with the central axis of the objective lens, which changes depending on the sample, before capturing the image, and this alignment takes time.

[0006] SUMMARY OF THE PRESENT EMBODIMENT An object of the present invention is to provide a photoelectron microscope capable of shortening the preparation time for capturing a photoelectron image with high brightness and resolution. [Means for solving the problem]

[0007] In order to achieve the above-mentioned object, the present invention provides a photoelectron microscope comprising a sample stage on which a sample is placed, an excitation light source which irradiates the sample with excitation light, a camera which detects photoelectrons emitted from the sample and captures a photoelectron image, an objective lens which focuses the photoelectrons on the detection surface of the camera, and a control unit which controls each part, wherein the control unit aligns the center of the field of view of the camera with the irradiation position of the excitation light based on the brightness distribution of a first photoelectron image, and aligns the center of the field of view with the central axis of the objective lens based on second photoelectron images and third photoelectron images which are captured by changing the lens strength of the objective lens. Effect of the Invention

[0008] According to the present invention, it is possible to provide a photoelectron microscope capable of shortening the preparation time for capturing a photoelectron image with high brightness and resolution. [Brief description of the drawings]

[0009] [Figure 1] Overall configuration diagram of the photoelectron microscope of Example 1 [Figure 2A] A diagram explaining the control of the field of view [Figure 2B] A diagram explaining the control of the field of view [Figure 3A] A diagram explaining the change in the trajectory of photoelectrons due to the change in the lens strength of the objective lens. [Figure 3B] A diagram explaining the change in the photoelectron image due to the change in the lens strength of the objective lens. [Figure 4A] A diagram explaining the alignment of the irradiation position of the excitation light, the center of the field of view of the camera, and the central axis of the objective lens. [Figure 4B]A diagram explaining the alignment of the irradiation position of the excitation light, the center of the field of view of the camera, and the central axis of the objective lens. [Figure 4C] A diagram explaining the alignment of the irradiation position of the excitation light, the center of the field of view of the camera, and the central axis of the objective lens. [Figure 4D] A diagram explaining the alignment of the irradiation position of the excitation light, the center of the field of view of the camera, and the central axis of the objective lens. [Figure 4E] A diagram explaining the alignment of the irradiation position of the excitation light, the center of the field of view of the camera, and the central axis of the objective lens. [Figure 4F] A diagram explaining the alignment of the irradiation position of the excitation light, the center of the field of view of the camera, and the central axis of the objective lens. [Figure 4G] A diagram explaining the alignment of the irradiation position of the excitation light, the center of the field of view of the camera, and the central axis of the objective lens. [Figure 4H] A diagram explaining the alignment of the irradiation position of the excitation light, the center of the field of view of the camera, and the central axis of the objective lens. [Diagram 5] FIG. 1 is a diagram showing an example of a processing flow of the first embodiment. [Figure 6] FIG. 13 is a diagram showing an example of an adjustment screen according to the first embodiment; [Figure 7] FIG. 13 is a diagram showing an example of a flow of adjustment processing of the irradiation position of excitation light; [Figure 8] FIG. 13 is a diagram for explaining an example of a calculation process for the irradiation position of excitation light. [Figure 9A] FIG. 13 is a diagram for explaining an example of a process for determining the direction in which the irradiation position of excitation light exists. [Figure 9B] FIG. 13 is a diagram for explaining an example of a process for determining the direction in which the irradiation position of excitation light exists. [Figure 10A] FIG. 13 is a diagram for explaining another example of the adjustment process of the irradiation position of the excitation light; [Figure 10B] FIG. 13 is a diagram for explaining another example of the adjustment process of the irradiation position of the excitation light; [Figure 10C] FIG. 13 is a diagram for explaining another example of the adjustment process of the irradiation position of the excitation light; [Figure 10D] FIG. 13 is a diagram for explaining another example of the adjustment process of the irradiation position of the excitation light; [Figure 10E]FIG. 13 is a diagram for explaining another example of the adjustment process of the irradiation position of the excitation light; [Figure 11] Overall configuration diagram of the photoelectron microscope of Example 2 [Figure 12] FIG. 13 is a diagram showing an example of a process flow of the second embodiment. [Figure 13] FIG. 1 is a diagram explaining the change in the irradiation position of excitation light due to the change in the height of the sample. [Figure 14] Overall configuration diagram of the photoelectron microscope of Example 3 [Figure 15] FIG. 13 is a diagram showing an example of a process flow of the third embodiment. [Figure 16] Overall configuration diagram of the photoelectron microscope of Example 4 [Figure 17A] A diagram explaining the change in the field of view due to the tilt adjustment of the sample. [Figure 17B] A diagram explaining the change in the field of view due to the tilt adjustment of the sample. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0010] Hereinafter, an embodiment of the photoelectron microscope according to the present invention will be described with reference to the accompanying drawings. In the following description and the accompanying drawings, components having the same functional configuration are designated by the same reference numerals, and duplicated explanations will be omitted. EXAMPLES

[0011] The overall configuration of the photoelectron microscope of the first embodiment will be described with reference to Fig. 1. The photoelectron microscope is a device that captures a photoelectron image by irradiating a sample with excitation light and detecting photoelectrons emitted from the sample, and includes a device main body 113, a control unit 115, and an input / output unit 114.

[0012] The control unit 115 is a device that controls each unit of the device body 113, and is composed of, for example, a computer. The control unit 115 also has a memory unit 116, and parameters related to the control of the device body 113 and the captured photoelectron image are stored in the memory unit 116. The input / output unit 114 is a device to which conditions related to the capture of a photoelectron image are input and which displays the captured photoelectron image, and is composed of, for example, a keyboard, a mouse, a touch panel, and a monitor. The device body 113 has an excitation light source 101, a sample stage 106, an objective lens 107, a magnifying lens 108, a camera 109, and a deflector 110. The sample stage 106, the objective lens 107, the magnifying lens 108, and the deflector 110 are disposed in a vacuum chamber 112 that is evacuated.

[0013] An excitation light source 101 irradiates excitation light onto a sample 103 placed on a sample stage 106. The excitation light is, for example, ultraviolet light, X-rays, or synchrotron radiation, and is irradiated onto the sample 103 via an optical path 102 and an irradiation position adjustment unit 104. The excitation light has a spatial spread according to a predetermined intensity distribution, for example a Gaussian distribution, the center of the intensity distribution is called the irradiation position 105 of the excitation light, and the half-width of the intensity distribution is called the beam diameter.

[0014] The optical path 102 guides the excitation light to the sample 103, and is composed of, for example, an optical table on which mirrors and lenses are arranged, or an optical fiber.

[0015] The irradiation position adjustment unit 104 adjusts the position where the excitation light is irradiated on the surface of the sample 103, and is a mechanism for tilting or moving a mirror that reflects the excitation light. Note that the irradiation position adjustment unit 104 may be a lens that refracts the excitation light or a mechanism for tilting or moving the excitation light source 101.

[0016] The camera 109 has detection elements arranged two-dimensionally to detect photoelectrons emitted from the sample 103 when irradiated with excitation light. Each detection element has a one-to-one correspondence with each point on the surface of the sample 103. Photoelectrons emitted from each point on the surface of the sample 103 are magnified by a magnifying lens 108 and then detected by each detection element, and a photoelectron image is obtained based on the intensity of the detected photoelectrons.

[0017] The objective lens 107 focuses photoelectrons emitted from the sample 103 onto the detection surface of the camera 109, and is composed of an electric field formed rotationally symmetrically by applying a negative voltage to the sample 103 with respect to an electrode placed above the sample 103, and a magnetic field formed rotationally symmetrically by passing a current through a coil placed inside the objective lens. The central axis of the electric field is called the central axis of the objective lens 107. The electric field also changes depending on the height and inclination of the sample 103, so the position of the central axis of the objective lens 107 also changes depending on the sample 103. Note that with the objective lens 107, the aberration increases as the distance from the central axis increases, and the resolution of the photoelectron image decreases.

[0018] The deflector 110 controls the field of view of the camera 109 by deflecting the trajectory of the photoelectrons emitted from the sample 103. The control of the field of view of the camera 109 will be described with reference to Fig. 2A and Fig. 2B. Note that Fig. 2A shows a state in which the trajectory of the photoelectrons 201 is not deflected, and Fig. 2B shows a state in which the trajectory is deflected. In order to simplify the explanation, only those photoelectrons emitted in the vertical direction among those radially emitted from each point on the surface of the sample 103 by irradiation with excitation light are shown in Fig. 2A and Fig. 2B.

[0019] Since the photoelectron image is acquired based on the intensity of the photoelectrons 201 detected by the camera 109, the range in which the photoelectrons 201 incident on the camera 109 are emitted becomes the field of view of the camera 109. In Fig. 2A and Fig. 2B, the trajectory of the photoelectrons 201 incident on the camera 109 is indicated by a solid line, and the trajectory of the photoelectrons 201 that are not incident is indicated by a dotted line. In addition, the field of view 202 in Fig. 2A and the field of view 203 in Fig. 2B are indicated by double arrows. The field of view 202 when the trajectory of the photoelectrons 201 is not deflected is in the center of the sample 103, whereas the field of view 203 when the trajectory is deflected moves to the left of the sample 103. That is, the field of view of the camera 109 can be controlled by deflecting the trajectory of the photoelectrons with the deflector 110. Note that if there is a large positional deviation between the field of view of the camera 109 and the irradiation position of the excitation light, the brightness of the photoelectron image decreases.

[0020] A change in the trajectory of photoelectrons and a change in the photoelectron image accompanying a change in the lens strength of the objective lens 107 will be described with reference to Figures 3A and 3B. Figure 3A shows trajectories 301 and 303 passing through the central axis of the objective lens 107, and trajectories 302 and 304 passing through a position away from the central axis of the objective lens 107. Note that the trajectories 301 and 302 shown by solid lines are obtained when the lens strength of the objective lens 107 is adjusted so that an image is formed on the detection plane 300 of the camera, and the trajectories 303 and 304 shown by dotted lines are obtained when the lens strength of the objective lens 107 is changed. Furthermore, Figure 3A shows photoelectron images 311, 312, 313, and 314 obtained when a circular pattern on the surface of the sample 103 is observed by the trajectories 301, 302, 303, and 304, respectively.

[0021] Trajectory 301 passing through the central axis of objective lens 107 becomes trajectory 303 due to changes in lens strength, and although the focus shifts, the arrival position does not change. On the other hand, trajectory 302 passing through a position away from the central axis becomes trajectory 304 due to changes in lens strength, and as the focus shifts, the arrival position moves. Also, photoelectron image 311 corresponding to trajectory 301 becomes photoelectron image 313 due to changes in lens strength, and although the pattern becomes blurred, its position does not change. On the other hand, photoelectron image 312 corresponding to trajectory 302 becomes photoelectron image 314 due to changes in lens strength, and as the pattern becomes blurred, its position moves.

[0022] FIG. 3B shows photoelectron images of a sample on which circular patterns are two-dimensionally arranged, taken with different lens strengths. The circular pattern at the focused lens strength is shown by a solid line, and the circular pattern at the defocused lens strength is shown by a dotted line. Note that blurring that occurs at the time of defocusing is omitted. At position 320, the positions of the circular patterns taken with different lens strengths are consistent, so the central axis of the objective lens 107 corresponds to position 320. In other words, by comparing photoelectron images taken with different lens strengths of the objective lens 107, the central axis of the objective lens 107 is visualized.

[0023] If there is a large misalignment between the excitation light irradiation position and the center of the camera's field of view, the brightness of the photoelectron image will decrease, and if there is a large misalignment between the central axis of the objective lens and the center of the field of view, the resolution of the photoelectron image will decrease. In addition, the central axis of the objective lens changes depending on the height and inclination of the sample. Therefore, in order to capture a photoelectron image with high brightness and resolution, it is necessary to align the excitation light irradiation position and the center of the field of view with the central axis of the objective lens, which changes depending on the sample.

[0024] The alignment of the excitation light irradiation position, the camera field of view center, and the central axis of the objective lens will be described with reference to Figures 4A to 4H. In Figures 4A to 4H, a bright pattern 402, a dark pattern 403, an excitation light irradiation position 404, and a central axis 405 of the objective lens are shown in a field of view 401 as a schematic representation of a photoelectron image of a two-dimensionally arranged circular pattern. The bright pattern 402 is a circular pattern with high brightness, and the dark pattern 403 is a circular pattern with low brightness. The square mark indicating the excitation light irradiation position 404 and the triangular mark indicating the central axis 405 of the objective lens are not displayed in the actual photoelectron image. Since the excitation light has a spatial spread according to a predetermined intensity distribution, a pattern close to the excitation light irradiation position 404 becomes a bright pattern 402, and a pattern far from the excitation light irradiation position 404 becomes a dark pattern 403.

[0025] 4A, 4C, 4E, and 4G are photoelectron images when the lens intensity of the objective lens is focused, and FIGS. 4B, 4D, 4F, and 4H are photoelectron images when the lens intensity is defocused. Also, FIGS. 4A and 4B show a state in which the irradiation position 404 of the excitation light and the central axis 405 of the objective lens are shifted from the center of the field of view 401. FIGS. 4C and 4D show a state in which the irradiation position 404 of the excitation light coincides with the center of the field of view 401, and the central axis 405 of the objective lens is shifted. FIGS. 4E and 4F show a state in which the irradiation position 404 of the excitation light is shifted with respect to the center of the field of view 401, and the central axis 405 of the objective lens coincides. FIGS. 4G and 4H show a state in which the irradiation position 404 of the excitation light and the central axis 405 of the objective lens coincide with the center of the field of view 401.

[0026] The following describes the change in the photoelectron image in the process of aligning the excitation light irradiation position 404 and the central axis 405 of the objective lens with the center of the field of view 401, starting from the state in FIG. 4A and FIG. 4B. In FIG. 4A and FIG. 4B, the excitation light irradiation position 404 is shifted to the lower left with respect to the center of the field of view 401, so a dark pattern 403 is displayed in the upper right. In order to correct this, the irradiation position adjustment unit 104 is controlled to move the excitation light irradiation position 404 to the center of the field of view 401, and only the bright pattern 402 appears in the field of view 401 as shown in FIG. 4C and FIG. 4D. However, the central axis 405 of the objective lens is located in the upper right of the field of view 401. In order to correct this, the deflector 110 is controlled to move the center of the field of view 401 to the central axis 405 of the objective lens, and the central axis 405 of the objective lens coincides with the center of the field of view 401 as shown in FIG. 4E and FIG. 4F. However, the excitation light irradiation position 404 moves to the lower left as the field of view 401 moves. Therefore, by controlling the irradiation position adjustment unit 104 again to move the irradiation position 404 of the excitation light to the center of the field of view 401, the irradiation position 404 of the excitation light and the central axis 405 of the objective lens will coincide with each other relative to the center of the field of view 401, as shown in Figures 4G and 4H.

[0027] An example of the process flow of the first embodiment will be described step by step with reference to FIG.

[0028] (S501) The control unit 115 acquires the observation conditions. The acquired observation conditions are set in the device body 113. The observation conditions are input via an adjustment screen displayed on the input / output unit 114. An example of the adjustment screen will be described with reference to FIG. 6. The adjustment screen illustrated in FIG. 6 has a condition selection unit 601, an adjustment start button 607, a photoelectron image display unit 608, a fine adjustment unit 609, a parameter adjustment unit 610, and a condition save button 614.

[0029] The condition selection section 601 includes an excitation light condition selection section 602, an electron optical system condition selection section 603, a camera condition selection section 604, a tolerance setting section 605, and a preset button 606. In the excitation light condition selection section 602, the wavelength, intensity, beam diameter, and polarization direction of the excitation light are selected as parameters related to the excitation light source 101 and the optical path 102. The polarization direction includes other than linear polarization such as circular polarization. In the electron optical system condition selection section 603, the magnification and aperture are selected as parameters related to the objective lens 107 and the magnifying lens 108. In the camera condition selection section 604, the exposure time and the imaging mode are selected as parameters related to the camera 109. In the tolerance setting section 605, the tolerance is set when aligning the center of the field of view, the irradiation position of the excitation light, and the central axis of the objective lens. The preset button 606 is a button that is pressed when reading out conditions previously stored in the storage section 116.

[0030] An adjustment start button 607 is a button that is pressed when condition selection in the condition selection section 601 is completed and alignment of the center of the field of view, the irradiation position of the excitation light, and the central axis of the objective lens is to begin.

[0031] The photoelectron image display section 608 displays a photoelectron image acquired when the center of the field of view, the irradiation position of the excitation light, and the central axis of the objective lens are aligned.

[0032] In the fine adjustment unit 609, after the center of the field of view, the irradiation position of the excitation light, and the central axis of the objective lens are aligned, the focus, magnification, and excitation light intensity of the objective lens 107 are finely adjusted. Note that the polarization direction of the excitation light and parameters related to the camera 109 may also be finely adjusted in the fine adjustment unit 609.

[0033] The parameter adjustment unit 610 includes a field of view adjustment unit 611, an excitation light irradiation position adjustment unit 612, and a wobbling button 613. The field of view adjustment unit 611 adjusts the field of view. That is, the deflector 110 is controlled in response to the operation of the field of view adjustment unit 611. The excitation light irradiation position adjustment unit 612 adjusts the irradiation position of the excitation light. That is, the irradiation position adjustment unit 104 is controlled in response to the operation of the excitation light irradiation position adjustment unit 612. The wobbling button 613 is a button that is pressed when checking the position of the central axis of the objective lens. That is, when the wobbling button 613 is pressed, a photoelectron image acquired while continuously changing the lens intensity of the objective lens is displayed on the photoelectron image display unit 608.

[0034] A condition save button 614 is a button that is pressed when saving the conditions adjusted in the fine adjustment section 609 or the parameter adjustment section 610. The adjusted conditions are saved in the storage section .

[0035] Returning to the explanation of Figure 5.

[0036] (S502) The control unit 115 adjusts the lens strength of the objective lens so that the specimen is in focus.

[0037] (S503) The control unit 115 sets the lens strength of the magnifying lens 108 to an adjustment magnification. The adjustment magnification may be set according to the beam diameter of the excitation light selected as the observation condition, or may be set to the minimum magnification. When the adjustment magnification is set according to the beam diameter, it is set to a magnification such that the field of view is three times the beam diameter, for example.

[0038] (S504) The control unit 115 adjusts the irradiation position of the excitation light so that it coincides with the center of the field of view. An example of the flow of the adjustment process of the irradiation position of the excitation light executed in S504 will be described with reference to FIG.

[0039] (S701) The control unit 115 acquires a photoelectron image. The acquired photoelectron image is for a sample on which, for example, a circular pattern is two-dimensionally arranged.

[0040] (S702) The control unit 115 calculates the irradiation position of the excitation light based on the luminance distribution of the photoelectron image acquired in S701.

[0041] An example of the calculation process of the irradiation position of the excitation light executed in S702 will be described with reference to Fig. 8. Fig. 8 shows a luminance distribution 800 in the field of view 401 of the photoelectron image, where areas with high luminance are shown in white and areas with low luminance are shown in black. Note that the actual photoelectron image contains circular patterns, but these are omitted in Fig. 8 to simplify the description.

[0042] The control unit 115 creates a one-dimensional luminance profile by integrating the luminance distribution 800 in one direction, and calculates the position at which the one-dimensional profile is maximum as the irradiation position of the excitation light. For example, the luminance distribution 800 is integrated in the vertical and horizontal directions to create a horizontal profile 801 and a vertical profile 802. Then, the positions at which the horizontal profile 801 and the vertical profile 802 are maximum are calculated as the irradiation position of the excitation light. Note that the direction of integration is not limited to the vertical or horizontal direction, and may be an oblique direction. However, it is preferable that the two directions are perpendicular to each other.

[0043] Alternatively, the irradiation position of the excitation light may be calculated by fitting the luminance distribution 800 to a two-dimensional normal distribution function without using the one-dimensional profile. Furthermore, the beam diameter of the excitation light may be calculated from the one-dimensional profile or the two-dimensional normal distribution function. For example, the half-width of the one-dimensional profile is calculated as the beam diameter.

[0044] When the irradiation position of the excitation light is not included in the field of view 401, the irradiation position of the excitation light cannot be obtained from the one-dimensional profile created from the luminance distribution 800. Therefore, instead of calculating the irradiation position of the excitation light, the direction in which the irradiation position of the excitation light exists may be obtained.

[0045] An example of a process for determining the direction in which the irradiation position of the excitation light exists will be described with reference to FIG. 9A and FIG. 9B. In FIG. 9A, a bright pattern 402 and a dark pattern 403 are included in the visual field 401. The control unit 115 determines the direction in which the irradiation position of the excitation light exists by dividing the visual field 401 into a plurality of regions and comparing the sum of brightness for each divided region. For example, the visual field 401 is divided into four regions, the upper left, upper right, lower left, and lower right, by a dividing line 901, and the sum of brightness determined for each divided region is compared as illustrated in FIG. 9B. The sum of brightness illustrated in FIG. 9B is maximum in the lower left region and minimum in the upper right region, so the lower left direction is determined as the direction in which the irradiation position of the excitation light exists. The number of divisions of the visual field 401 is not limited to 4, and may be 9 or 16. The direction of the dividing line 901 is not limited to the vertical and horizontal directions, and may be set radially from the center of the visual field.

[0046] Returning to the explanation of Figure 7.

[0047] (S703) The control unit 115 judges whether the distance between the irradiation position of the excitation light and the center of the field of view calculated in S701 is equal to or less than the allowable value. If it is equal to or less than the allowable value, the process flow ends, and if it is not equal to or less than the allowable value, the process returns to S701 via S704. Note that if the irradiation position of the excitation light is not included in the field of view, the process also returns to S701 via S704. The allowable value may be read from the storage unit 116, or may be calculated based on the beam diameter selected in the excitation light condition selection unit 602 on the adjustment screen exemplified in FIG. 6 or the allowable error set in the allowable error setting unit 605. For example, half the beam diameter is calculated as the allowable value.

[0048] (S704) The control unit 115 controls the irradiation position adjustment unit 104 based on the irradiation position of the excitation light calculated in S702, and moves the irradiation position of the excitation light to the center of the field of view. If the irradiation position of the excitation light is not included in the field of view, the irradiation position of the excitation light is not calculated in S702, and only the direction in which the irradiation position of the excitation light exists is obtained. The irradiation position adjustment unit 104 is controlled based on the direction in which the irradiation position of the excitation light exists thus obtained. The moving distance at this time is set to, for example, the length of one side of the field of view.

[0049] The adjustment process of the irradiation position of the excitation light described with reference to Fig. 7 adjusts the irradiation position of the excitation light to within a predetermined distance from the center of the field of view. If the bright pattern 402 and the dark pattern 403 cannot be distinguished in the field of view 401, not only the irradiation position of the excitation light but also the direction in which the irradiation position of the excitation light exists cannot be obtained. Therefore, the irradiation position of the excitation light may be adjusted based on a photoelectron image acquired while moving the irradiation position of the excitation light.

[0050] Another example of the adjustment process of the irradiation position of the excitation light will be described with reference to Figs. 10A to 10E. Figs. 10A to 10E show a photoelectron image having a plurality of circular patterns 1001 with the same brightness in the field of view 401. The circular patterns 1001 with high brightness are shown in white, and the circular patterns 1001 with low brightness are shown in black. Fig. 10A shows a photoelectron image at the start of adjustment, and Figs. 10B to 10E show photoelectron images when the irradiation position of the excitation light in Fig. 10A is moved to the left, upper, right, and lower directions, respectively. The moving distance at this time may be a predetermined value or may be set according to the beam diameter. For example, 1 / 3 of the beam diameter is set as the moving distance.

[0051] The control unit 115 obtains the direction in which the irradiation position of the excitation light exists by comparing the sum of brightness for each photoelectron image acquired while moving the irradiation position of the excitation light. For example, when comparing the sum of brightness for each photoelectron image of Fig. 10A to Fig. 10E, Fig. 10B is maximum and Fig. 10D is minimum, so the left direction is obtained as the direction in which the irradiation position of the excitation light exists. The control unit 115 controls the irradiation position adjustment unit 104 based on the obtained direction of existence, and moves the irradiation position of the excitation light. In this way, the comparison of the sum of brightness for each photoelectron image acquired while moving the irradiation position of the excitation light and the movement of the irradiation position of the excitation light based on the comparison result are repeated, so that the irradiation position of the excitation light is adjusted to within a predetermined distance from the center of the field of view.

[0052] Returning to the explanation of Figure 5.

[0053] (S505) The control unit 115 determines whether the beam diameter of the excitation light is within the allowable range. If the beam diameter is within the allowable range, the process proceeds to S507, and if not, the process returns to S504 via S506. The beam diameter of the excitation light is calculated, for example, from a horizontal profile 801 or a vertical profile 802 shown in Fig. 8. The allowable range may be read from the storage unit 116, or may be calculated based on the beam diameter selected in the excitation light condition selection unit 602 on the adjustment screen exemplified in Fig. 6 and the allowable error set in the allowable error setting unit 605.

[0054] (S506) The control unit 115 controls the excitation light source 101 and the optical path 102 to adjust the beam diameter of the excitation light.

[0055] (S507) The control unit 115 controls the lens strength of the magnifying lens 108 to switch the magnification. The magnification may be switched to a magnification selected in the electron optical system condition selection unit 603 on the adjustment screen exemplified in FIG. 6, for example, or may be switched to the maximum magnification.

[0056] (S508) The control unit 115 adjusts the irradiation position of the excitation light so that it is aligned with the center of the field of view. The adjustment process of the irradiation position of the excitation light executed in S508 is the same as S504, and has a flow of processes exemplified in Fig. 7. However, the tolerance value in S703 is set smaller.

[0057] (S509) The control unit 115 controls the lens strength of the objective lens 107 to obtain photoelectron images at different lens strengths. That is, at least two photoelectron images are obtained: a photoelectron image at a focused lens strength and a photoelectron image at a defocused lens strength.

[0058] (S510) The control unit 115 judges whether or not the distance between the central axis of the objective lens 107 and the center of the field of view is equal to or less than the allowable value. If it is equal to or less than the allowable value, the process proceeds to S514, and if it is not equal to or less than the allowable value, the process proceeds to S511. The central axis of the objective lens 107 is visualized by comparing at least two photoelectron images acquired in S509. The allowable value may be read from the storage unit 116, or may be calculated based on the magnification selected in the electron optical system condition selection unit 603 on the adjustment screen exemplified in FIG. 6 or the allowable error set in the allowable error setting unit 605.

[0059] (S511) The control unit 115 controls the deflector 110 to adjust the center of the field of view so that it coincides with the central axis of the objective lens 107. If the central axis of the objective lens 107 is not included in the field of view, the direction in which the central axis of the objective lens 107 exists is obtained by comparing at least two photoelectron images acquired in S509. The control unit 115 controls the deflector 110 based on the obtained direction of existence, and moves the center of the field of view. The moving distance at this time is set to, for example, the length of one side of the field of view.

[0060] (S512) The control unit 115 acquires a photoelectron image.

[0061] (S513) The control unit 115 judges whether or not the brightness of the photoelectron image acquired in S512 is sufficient. If the brightness is sufficient, the process returns to S509, and a photoelectron image is acquired again with a different lens strength. If the brightness is not sufficient, the process returns to S508, and an adjustment process for the irradiation position of the excitation light is performed. Note that a predetermined reference value is used to judge whether or not the brightness is sufficient. The reference value is read from the storage unit 116, and is compared with the sum of the brightnesses of the photoelectron images acquired in S512.

[0062] (S514) The control unit 115 adjusts the irradiation position of the excitation light so that it coincides with the center of the field of view. The adjustment process of the irradiation position of the excitation light executed in S514 is similar to that in S508.

[0063] According to the process flow described with reference to FIG. 5, the center of the field of view is adjusted to a predetermined distance from the central axis of the objective lens, and the irradiation position of the excitation light is adjusted to a predetermined distance from the center of the field of view. That is, the irradiation position of the excitation light, the center of the field of view, and the central axis of the objective lens are aligned, and preparations for capturing a photoelectron image with high brightness and resolution are completed. The alignment of the irradiation position of the excitation light, the center of the field of view, and the central axis of the objective lens is automated based on the photoelectron image, so that the preparation time for capturing the image can be shortened. Furthermore, when the change in the irradiation direction of the excitation light guided from the excitation light source and the optical path is small and the height of the sample is constant, the positional deviation between the irradiation position of the excitation light and the center of the field of view is small, so that the processes from S503 to S506 in FIG. 5 can be omitted, and the preparation time can be further shortened. EXAMPLES

[0064] In the first embodiment, it has been described that the alignment of the irradiation position of the excitation light, the center of the field of view, and the central axis of the objective lens is automated based on a photoelectron image. In the second embodiment, it will be described that the alignment is performed based on not only the photoelectron image but also the height of the sample. Since some of the configurations and functions described in the first embodiment can be applied to the second embodiment, the same reference numerals are used for the similar configurations and functions, and the description thereof will be omitted.

[0065] The overall configuration of the photoelectron microscope of the second embodiment will be described with reference to Fig. 11. Note that the photoelectron microscope shown in Fig. 11 is obtained by adding a height sensor 1100 to Fig. 1, and therefore descriptions of components other than the height sensor 1100 will be omitted.

[0066] The height sensor 1100 is a device that measures the height of the sample 103 placed on the sample stage 106, and is configured by, for example, a laser displacement meter. The height sensor 1100 measures, for example, the distance between the surface of the sample 103 and the objective lens 107, and transmits the measured value to the control unit 115.

[0067] An example of the process flow of the second embodiment will be described with reference to Fig. 12. Note that the difference from Fig. 5 is that S502 is replaced with S1202, so the description of steps other than S1202 will be simplified.

[0068] (S501) The control unit 115 acquires the observation conditions in the same manner as in the first embodiment.

[0069] (S1202) The control unit 115 adjusts the irradiation position of the excitation light and the lens strength of the objective lens 107 based on the height of the sample measured by the height sensor 1100. More specifically, the irradiation position of the excitation light is adjusted according to the amount of deviation between a predetermined reference height and the height of the sample 103, and the lens strength is adjusted according to the distance between the surface of the sample 103 and the objective lens 107. A correspondence table of the distance between the surface of the sample 103 and the objective lens 107 and the lens strength is stored in advance in the storage unit 116.

[0070] A change in the irradiation position of the excitation light due to a change in the height of the sample 103 will be described with reference to FIG. 13. FIG. 13 shows excitation light 1301 and excitation light 1302 irradiated onto the sample 103. When the surface of the sample 103 is at a reference height 1300, the excitation light 1301 irradiated onto the central axis 1303 of the objective lens is irradiated onto a position shifted by a distance D from the central axis 1303 of the objective lens when the height of the sample 103 changes. Therefore, the control unit 115 changes the irradiation position of the excitation light to the distance D, thereby changing the excitation light 1301 into the excitation light 1302 irradiated onto the central axis 1303 of the objective lens. The distance D can be calculated by the following formula when the amount of deviation in the height of the sample 103 is H and the incidence angle of the excitation light 1301 is θ. The incidence angle θ is determined by the positional relationship between the optical path 102, the irradiation position adjustment unit 104, and the sample 103.

[0071] D=H / tanθ … (Equation 1) That is, the control unit 115 obtains the amount of deviation H from the height of the sample measured by the height sensor 1100, and controls the irradiation position adjustment unit 104 based on the distance D calculated using (Equation 1). (S503)~(S514) As in the first embodiment, the irradiation position of the excitation light, the center of the field of view, and the central axis of the objective lens are aligned.

[0072] 12, the alignment of the irradiation position of the excitation light, the center of the field of view, and the central axis of the objective lens is automated based on the height of the sample as well as the photoelectron image, thereby shortening the preparation time for imaging. Note that by aligning based on the height of the sample as well as the photoelectron image, the processes from S503 to S506 may be omitted, further shortening the preparation time. EXAMPLES

[0073] In the second embodiment, it has been described that the alignment of the irradiation position of the excitation light, the center of the field of view, and the central axis of the objective lens is automated based on the height of the sample together with the photoelectron image. In the third embodiment, it will be described that the height of the sample is adjusted, and then the alignment of the irradiation position of the excitation light, the center of the field of view, and the central axis of the objective lens is performed. Note that since some of the configurations and functions described in the first and second embodiments can be applied to the third embodiment, the same reference numerals are used for the similar configurations and functions, and the description thereof will be omitted.

[0074] The overall configuration of the photoelectron microscope of the third embodiment will be described with reference to Fig. 14. Note that the photoelectron microscope shown in Fig. 14 is obtained by adding a height adjustment unit 1400 to Fig. 11, and therefore descriptions of parts other than the height adjustment unit 1400 will be omitted.

[0075] The height adjustment unit 1400 is a device that adjusts the height of the sample stage 106. The control unit 115 may control the height adjustment unit 1400 based on the height of the sample measured by the height sensor 1100.

[0076] An example of the process flow of the third embodiment will be described with reference to Fig. 15. Note that the difference from Fig. 5 is that S502 is replaced with S1502, so the description of steps other than S1502 will be simplified.

[0077] (S501) The control unit 115 acquires the observation conditions in the same manner as in the first embodiment.

[0078] (S1502) The control unit 115 controls the height adjustment unit 1400 to adjust the height of the sample 103. More specifically, the height of the sample 103, the reference height, and the amount of deviation H are calculated based on the measurement value of the height sensor 1100, and the height of the sample stage 106 is adjusted so that the amount of deviation H falls within the allowable range. (S503)~(S514) As in the first embodiment, the irradiation position of the excitation light, the center of the field of view, and the central axis of the objective lens are aligned.

[0079] 15, the height of the sample 103 is adjusted to the reference height, and then the irradiation position of the excitation light, the center of the field of view, and the central axis of the objective lens are aligned. Since the alignment is automated based on the photoelectron image, the preparation time for imaging can be shortened. Furthermore, since the height of the sample 103 is adjusted to the reference height prior to the alignment, the number of repetitive processes from S503 to S514 is reduced, and the preparation time can be further shortened. EXAMPLES

[0080] In the first to third embodiments, the adjustment of the center of the field of view by controlling the deflector 110 has been described. The adjustment of the center of the field of view is not limited to the control of the deflector 110. In the fourth embodiment, the adjustment of the center of the field of view by tilting the sample will be described. Since some of the configurations and functions described in the first to third embodiments can be applied to the fourth embodiment, the same reference numerals are used for the similar configurations and functions, and the description thereof will be omitted.

[0081] The overall configuration of the photoelectron microscope of the fourth embodiment will be described with reference to Fig. 16. Note that the photoelectron microscope shown in Fig. 16 is obtained by adding a tilt adjustment unit 1600 to Fig. 14, and therefore descriptions of parts other than the tilt adjustment unit 1600 will be omitted.

[0082] The tilt adjustment unit 1600 is a device that adjusts the tilt of the sample 103 by controlling the tilt of the sample stage 106. The control unit 115 may control the tilt adjustment unit 1600 based on the height of the sample measured by the height sensor 1100.

[0083] The change in the field of view due to the tilt adjustment of the sample will be described with reference to Figures 17A and 17B. Figure 17A shows the trajectory of photoelectrons 201 when the surface of the sample 103 is horizontal. Note that the trajectory that enters the camera 109 is shown by a solid line, the trajectory that does not enter is shown by a dotted line, and the field of view 202 is shown by a double-headed arrow.

[0084] Fig. 17B shows the trajectory of photoelectrons 201 when the surface of sample 103 is tilted by tilt adjustment unit 1600. By tilting the surface of sample 103, the trajectory of photoelectrons 201 changes, and while in Fig. 17A the field of view 202 is in the center of sample 103, in Fig. 17B the field of view 1402 moves to the left side of sample 103. In other words, by tilting the surface of sample 103 by tilt adjustment unit 1600, the field of view of camera 109 can be controlled.

[0085] Note that the control of the field of view is not limited to tilting the surface of the sample. For example, the field of view may be controlled by moving or tilting at least a part of the objective lens. The field of view may also be controlled by moving the camera.

[0086] Four embodiments of the photoelectron microscope of the present invention have been described above. The photoelectron microscope of the present invention is not limited to the above embodiments, and the components can be modified and embodied without departing from the gist of the invention. Furthermore, multiple components disclosed in the above embodiments may be appropriately combined. Furthermore, some components may be deleted from all the components shown in the above embodiments. [Explanation of symbols]

[0087] 101: excitation light source, 102: optical path, 103: sample, 104: irradiation position adjustment unit, 105: irradiation position of excitation light, 106: sample stage, 107: objective lens, 108: magnifying lens, 109: camera, 110: deflector, 112: vacuum chamber, 113: device body, 114: input / output unit, 115: control unit, 116: memory unit, 201: photoelectron, 202: field of view, 203: field of view, 300: detection surface, 301: trajectory, 302: trajectory, 303: trajectory, 304: trajectory, 311: photoelectron image, 312: photoelectron image, 313: photoelectron image, 314: photoelectron image, 320: position, 401: field of view, 402: bright pattern, 403: dark pattern, 404: irradiation position of excitation light, 405: central axis of objective lens, 601: conditions Selection section, 602: excitation light condition selection section, 603: electron optical system condition selection section, 604: camera condition selection section, 605: tolerance setting section, 606: preset button, 607: adjustment start button, 608: photoelectron image display section, 609: fine adjustment section, 610: parameter adjustment section, 611: field of view adjustment section, 612: excitation light irradiation position adjustment section, 613: wobbling button, 614: condition save button, 800: luminance distribution, 801: horizontal profile, 802: vertical profile, 901: division line, 1001: circular pattern, 1100: height sensor, 1300: reference height, 1301: excitation light, 1302: excitation light, 1303: central axis of objective lens, 1400: height adjustment section, 1600: tilt adjustment section

Claims

1. 1. A photoelectron microscope comprising: a sample stage on which a sample is placed; an excitation light source that irradiates excitation light onto the sample; a camera that detects photoelectrons emitted from the sample and captures a photoelectron image; an objective lens that focuses the photoelectrons on a detection surface of the camera; and a control unit that controls each unit, The control unit aligns the center of the field of view of the camera with the irradiation position of the excitation light based on the brightness distribution of a first photoelectron image, and aligns the center of the field of view with the central axis of the objective lens based on a second photoelectron image and a third photoelectron image captured by changing the lens strength of the objective lens.

2. 2. The photoelectron microscope according to claim 1, The control unit calculates the irradiation position of the excitation light based on a one-dimensional profile created by integrating the brightness distribution of the first photoelectron image in one direction.

3. 2. The photoelectron microscope according to claim 1, The control unit divides the first photoelectron image into a plurality of regions, and determines the direction in which the irradiation position of the excitation light is located by comparing the sums of brightness calculated for each divided region.

4. 2. The photoelectron microscope according to claim 1, A height sensor for measuring the height of the sample is further provided. The control unit adjusts the irradiation position of the excitation light based on the measurement result of the height sensor.

5. 2. The photoelectron microscope according to claim 1, A height sensor for measuring the height of the sample; A height adjustment unit for adjusting the height of the sample stage is further provided. The control unit controls the height adjustment unit so that the height of the sample becomes a reference height that is a predetermined height.

6. 2. The photoelectron microscope according to claim 1, The photoelectron microscope, wherein the control unit adjusts the center of the field of view by controlling a deflector that deflects the trajectory of the photoelectrons.

7. 2. The photoelectron microscope according to claim 1, The photoelectron microscope according to claim 1, wherein the control unit adjusts the center of the field of view by controlling a tilt adjustment unit that adjusts the tilt of the sample stage.

8. 2. The photoelectron microscope according to claim 1, The control unit adjusts the center of the field of view by controlling a lens position adjustment unit that moves or tilts at least a part of the objective lens.

9. 2. The photoelectron microscope according to claim 1, The control unit adjusts the center of the field of view by controlling a camera position adjustment unit that moves the camera.

10. 2. The photoelectron microscope according to claim 1, The control unit adjusts the irradiation position of the excitation light by controlling a mirror adjustment unit that moves or tilts a mirror that reflects the excitation light.

11. 2. The photoelectron microscope according to claim 1, The control unit adjusts the irradiation position of the excitation light by controlling a light source position adjustment unit that moves or tilts the excitation light source.

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