Generate 3D information about the structural elements of the specimen
By irradiating structural elements with an electron beam at varying angles and detecting forward scattered electrons, this method enables non-destructive, accurate three-dimensional evaluation of structural elements, addressing the limitations of existing techniques.
Patent Information
- Application Number
- JP2022570597
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-05-18
- Filing Date
- 2021-05-07
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2041-05-07
AI Technical Summary
Existing methods for evaluating structural elements, such as those on semiconductor wafers, are limited by their destructive nature and inability to provide accurate, non-destructive three-dimensional information, especially when structural elements have complex shapes and sizes.
The method involves irradiating structural elements with an electron beam at different angles of incidence, detecting forward scattered electrons, and generating three-dimensional information based on these detections, using techniques such as spatial and energy filtering to enhance accuracy.
This approach allows for the non-destructive acquisition of detailed three-dimensional information about structural elements, overcoming the limitations of traditional methods and providing comprehensive insights into complex nanometric structures.
Smart Images

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Abstract
Description
[Technical field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Patent Application No. 16 / 876,637, filed May 18, 2020, the disclosure of which is incorporated herein by reference in its entirety for all purposes. [Background technology]
[0002] Samples such as semiconductor wafers are created by complex manufacturing processes. Many samples contain numerous structural elements with nanometric dimensions formed on one side of the sample, which must be characterized during and after the manufacturing process.
[0003] Structural elements may extend from a surface of the substrate and may have a shape and size such that one or more structural elements obscure portions of one or more other structural elements, thereby limiting evaluation of the structural elements.
[0004] Three-dimensional information about such structural elements may be obtained using destructive methods such as transmission electron microscopy (TEM) or scanning transmission electron microscopy (STEM).
[0005] There is an increasing demand to provide an accurate, non-destructive solution for obtaining three-dimensional information about structural elements. Summary of the Invention
[0006] A method, a non-transitory computer readable medium and a detection system for providing three-dimensional information about structural elements of a sample may be provided.
[0007] In some embodiments, a method is provided for providing three-dimensional information about a structural element of a specimen, the method including illuminating a structural element with an electron beam at different angles of incidence, the electron beam penetrating the structural element, the structural element having dimensions on the nanometer scale, detecting forward scattered electrons scattered from the structural element to provide the detected forward scattered electrons, and generating three-dimensional information about the structural element based on at least the detected forward scattered electrons.
[0008] The subject matter which is regarded as embodiments of the present disclosure is particularly shown and distinctly claimed in the concluding portion of this specification, however, the embodiments of the present disclosure, both as to organization and method of operation, together with its objects, features, and advantages, can best be understood by reference to the following detailed description when read in conjunction with the accompanying drawings. [Brief description of the drawings]
[0009] [Figure 1] FIG. 1 illustrates an example of a method. [Diagram 2] FIG. 1 illustrates a cross-section of a portion of a sample and examples of various electron beams and trajectories. [Diagram 3] FIG. 1 is a diagram showing an example of a sample and a three-dimensional evaluation system. [Figure 4] FIG. 1 is a diagram showing an example of a sample and a three-dimensional evaluation system. [Diagram 5] FIG. 1 is a diagram showing an example of a sample and a three-dimensional evaluation system. [Figure 6] FIG. 1 is a diagram showing an example of a sample and a three-dimensional evaluation system. [Figure 7] FIG. 1 is a diagram showing an example of a sample and a three-dimensional evaluation system. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0010] In the following detailed description, numerous specific details are set forth in order to provide a thorough understanding of embodiments of the present disclosure.
[0011] However, it will be understood by those skilled in the art that embodiments of the present disclosure may be practiced without these specific details. In other instances, well-known methods, procedures and components have not been described in detail so as not to obscure the embodiments of the present disclosure.
[0012] The subject matter which is regarded as embodiments of the present disclosure is particularly shown and distinctly claimed in the concluding portion of this specification, however, the embodiments of the present disclosure, both as to organization and method of operation, together with its objects, features, and advantages, can best be understood by reference to the following detailed description when read in conjunction with the accompanying drawings.
[0013] It will be understood that for simplicity and clarity of illustration, elements shown in the figures have not necessarily been drawn to scale. For example, the dimensions of some of the elements may be exaggerated relative to other elements for clarity. Further, where considered appropriate, reference numerals may be repeated among the accompanying figures to indicate corresponding or analogous elements.
[0014] Because the illustrated embodiments of the present disclosure can, for the most part, be implemented using electronic components and electronic circuits known to those skilled in the art, as set forth above, details will not be described in more detail than is deemed necessary for an understanding and appreciation of the ideas underlying the embodiments of the present disclosure, so as not to obscure or distract from the teachings of the embodiments of the present disclosure.
[0015] Any reference in this specification to a method should, mutatis mutandis, apply to a system capable of carrying out that method, and should, mutatis mutandis, apply to a non-transitory computer readable medium storing instructions for carrying out that method.
[0016] Any reference in this specification to a system should be applied, mutatis mutandis, to the manner in which that system may be performed, and should be applied, mutatis mutandis, to a non-transitory computer readable medium storing instructions executable by that system.
[0017] Any reference herein to a non-transitory computer readable medium should be applied, mutatis mutandis, to methods that may be applied in executing instructions stored on the computer readable medium, and should be applied, mutatis mutandis, to a system configured to execute instructions stored on the computer readable medium.
[0018] The term "and / or" means in addition to or instead.
[0019] Any reference to the term "may be" should be applied mutatis mutandis to the term "may not be".
[0020] "Several times" could be once, twice, three times, four times, etc.
[0021] The terms tilt and deflection are used interchangeably.
[0022] FIG. 1 is an example of a method 10 for providing three-dimensional information about structural elements of a specimen.
[0023] The structural element may have nanometer-scale dimensions, such that at least one dimension of the width, length, and depth of the structural element may be between 1 nanometer and 100 nanometers. The top of the structural element may be located a nanometer-scale distance above or below the surface of the sample.
[0024] The specimen can be a semiconductor wafer, a MEMS substrate, a solar panel, etc.
[0025] The method 10 may begin with step 20 of irradiating a structural element with an electron beam at different angles of incidence, the angles being the angles at which the electron beam strikes the specimen.
[0026] These different angles of incidence may be oblique and may belong to an angle range that may have a width of several tens of degrees. For example, the different angles of incidence may belong to an angle range that spans between 90 degrees and 30 degrees relative to the top surface of the sample. Other angle ranges may be provided. The number of angles of incidence within an angle range may be two, three, four, five or more than six.
[0027] The different angles of incidence may span a range of angles, and may have different orders of symmetry about an axis of planar symmetry, e.g., reflection about an axis oriented at an angle other than the normal to the surface or perpendicular to the surface, or rotational symmetry.
[0028] Based on the expected shape and size of the structural elements, at least one of the value of the angle of incidence, the number of angles of incidence, and the angle range can be determined. Based on the obscurity of at least some portions of the structural elements, the manner of illumination can be determined. For example, when the density and / or height of the structural elements is high, more angles of incidence and / or a wider angle range may be required.
[0029] The energy level of the electron beam can be selected to allow the electron beam to penetrate the structural element at different angles of incidence to provide forward scattered electrons that have undergone up to several interactions during irradiation and scattering. For example, the energy of the electron beam can be in the range of energies typical for high voltage SEMs. A typical range for high voltage SEMs is 10-30 keV, but can also be higher, for example 50-70 keV.
[0030] For example, the penetration depth of the electron beam can be 5, 6, 7, 8, 9, 10, or more than 10 times the height of the structural element. The penetration depth is a function of the energy of the electron beam and the material of the structural element and the material of the rest of the sample. For example, the penetration depth of the electron beam into a silicon (Si) sample was on the order of 3000 nanometers (nm), while typical sizes of the features of interest ranged between tens of nm and 100 nm.
[0031] Assuming there is a first plurality (N1) of electron beams at different angles of incidence, step 20 may include sequentially irradiating the sample one beam at a time, or irradiating the sample with from two to N1 electron beams at a time.
[0032] Irradiation can be performed by up to N1 columns, by one or more multi-beam columns, or by other electron optics capable of generating one to N1 electron beams at different angles of incidence.
[0033] The difference between the angles of incidence of the electron beams can be achieved by mechanical tilt about a horizontal axis and / or rotation about a vertical axis and / or by electromagnetic deflection.
[0034] Mechanical tilting can include (a) tilting only the sample, (b) tilting only the electron optics associated with the electron beam, or (c) tilting the sample and the electron optics.
[0035] Step 20 can be performed iteratively, with each iteration including illuminating (step 22) followed by tilting (step 24), where the tilting changes the angle of incidence.
[0036] The high resolution of this method can be achieved by (a) limiting the interaction of the electron beam and forward scattered electrons with the substrate, thereby preventing or reducing beam broadening, and (b) using an electron beam having a diameter smaller than the structural elements, and in particular an electron beam having a diameter much smaller than the structural elements (e.g., less than 1 / x, where the variable x is 2, 3, 4, 5, 6, 7, 8, 10, and 10 or more). The diameter of the electron beam when it enters the pattern is typically a few nm, and at typical energies, the diameter of this electron beam remains within 10 nm as it propagates through the pattern.
[0037] The use of mechanical tilt (either alone or in combination with electrical deflection) allows for wider angular coverage of the structural elements, as opposed to electronic tilt alone, which may be limited to providing narrow angle tilts of less than 10 degrees due to aberrations.
[0038] Following step 20, a step 30 may be performed of detecting the forward scattered electron beam scattered from the structural element to provide detected forward scattered electrons. Forward scattered electrons may also be scattered from the vicinity of the structural element.
[0039] Step 30 may include at least one of spatial filtering 32 and energy filtering 34. Spatial filtering may be performed to reduce detection of noise, such as backscattered electrons scattered from the sample.
[0040] Spatial filtering can include positioning at least one forward scattered electron detector within the expected path(s) of the forward scattered electrons, for example by placing the forward scattered electron detector within an angular range within which the emission of these electrons from the sample is expected. The at least one forward scattered electron detector can have a field of view that is substantially limited to the expected path(s) of the forward scattered electrons. For example, the field of view can be slightly larger than the area bounded by the expected path(s) of the forward scattered electrons.
[0041] Energy filtering can be performed to reduce detection of noise, such as backscattered electrons scattered from the sample.
[0042] Energy filtering can include passing (not blocking) electrons having trajectories that represent electron paths that include up to a few scattering events (forward scattered electrons) and not passing electrons having energy levels that represent electron paths that include more than a few scattering events (backscattered electrons).
[0043] Step 30 may be followed by step 40 of generating three-dimensional information about the structural elements based on at least the detected forward scattered electrons. Any method for reconstructing three-dimensional information from images taken from different angles may be used.
[0044] The three-dimensional information may provide complete or partial information about the structural element, for example, the three-dimensional information may be a three-dimensional model of the entire structural element, of at least some portion of the structural element that is obscured, etc.
[0045] It should be noted that steps 20 and 30 can be performed one region at a time on the sample. The entire sample or only the portion of the sample of interest can be irradiated during step 20. Areas in which one or more characteristics of the structural elements (e.g. density, shape, size, material) differ from each other can be irradiated in different ways.
[0046] 2 shows a cross-section of a region of a sample, which includes a bulk 51, an upper layer 52, a first structural element 53(1), a second structural element 53(2), a third structural element 53(3), a fourth structural element 53(4), a fifth structural element 53(5), and a sixth structural element 53(6).
[0047] FIG. 2 also shows electron beam 81, which illuminates this area at an angle of incidence 89 as it passes through first structural element 53(1) and second structural element 53(2) and can penetrate further into the sample (to a depth significantly exceeding the height of any of the structural elements).
[0048] The electron beam 81 causes a first forward scattered electron to be emitted from the center of the second structural element 53(1) by elastic scattering, and the first forward scattered electron travels along a first path 82(1) toward the energy filter 78 and the forward scattered electron detector 77.
[0049] The electron beam 81 causes second forward scattered electrons to be emitted by elastic scattering from around the second structural element 53(1), and the second forward scattered electrons travel along a second path 82(2) toward the energy filter 78 and the forward scattered electron detector 77.
[0050] The electron beam 81 causes third forward scattered electrons to be emitted by elastic scattering from the upper layer 52, for example from below the upper surface of the upper layer 52, and the third forward scattered electrons travel along a third path 82(3), pass through the third structural element 53(3) and the fourth structural element 53(4), and proceed toward the energy filter 78 and the forward scattered electron detector 77.
[0051] The backscattered electrons scatter multiple times within region 84 and then are emitted in different directions, primarily outside the field of view of the forward scattered electron detector 77. This is illustrated by a first backscattered electron path 83(1), a second backscattered electron path 83(2), a third backscattered electron path 83(3), a fourth backscattered electron path 83(4), a fifth backscattered electron path 83(5), a sixth backscattered electron path 83(6), and a seventh backscattered electron path 83(7).
[0052] The spatial filtering shown in FIG. 2 is implemented by positioning the energy filter 78 and the forward scattered electron detector 77 outside the first backscattered electron path 83(1), the second backscattered electron path 83(2), the third backscattered electron path 83(3), the fourth backscattered electron path 83(4), the fifth backscattered electron path 83(5) and the seventh backscattered electron path 83(7).
[0053] The energy filtering shown in FIG. 2 is implemented by placing an energy filter 78 in front of the forward scattered electron detector 77 such that the energy filter 78 can block backscattered electrons propagating along the sixth backscattered electron path 83(6).
[0054] FIG. 2 further shows that the area of spot 81(1) formed by electron beam 81 is much smaller than the area of the portion of first structural element 53(1) where the electron beam strikes (sidewall 53(1,1)).
[0055] It should also be noted that the energy of the electron beam may be selected to penetrate portions of the upper layer 52 and even the bulk 51 .
[0056] Figures 3, 4, 5, 6 and 7 show different examples of 3D characterization systems that apply mechanical tilt and / or electrical deflection.
[0057] All three-dimensional evaluation systems include electronic optical components and processing circuitry.
[0058] The electron optics are configured to (a) illuminate a structural element of the specimen with an electron beam at different angles of incidence, the electron beam passing through the structural element, the structural element having nanometer dimensions, and (b) detect a forward-scattered electron beam scattered from the structural element. The optics may include at least some of a lens, a beam splitter, a beam source, and the like.
[0059] The processing circuitry is configured to generate three-dimensional information regarding the structural element.
[0060] It should be noted that the processing circuitry may not reside in the 3D evaluation system, but may reside in a remote computer, and in another example the 3D evaluation system may perform parts of generating the 3D information about the construction element, and another processing circuitry may perform other parts of the processing.
[0061] In FIGS. 3, 4, 5, 6, 7 and 8 the three-dimensional evaluation system is shown as including electronic optical components, processing circuitry 71, a memory unit 72 and a controller 73.
[0062] The controller 73 may be configured to control the operation of the three-dimensional evaluation system. The memory unit 72 may store instructions, commands, recipes, image information, and the like.
[0063] 3, 4, 5, 6 and 7 show an electron beam 81 and a forward scattered electron path 82. It should be noted that there may be multiple paths for the forward scattered electrons.
[0064] Any of the three-dimensional characterization systems of Figures 3, 4, 5, 6, 7 and 8 may include energy filters placed in front of the forward scattered electron detector 77. For simplicity of illustration, those energy filters are not shown.
[0065] 3 illustrates a three-dimensional characterization system 70 as including a column 75, which may be a single beam column including a beam source (presently shown) for generating an electron beam 81, a deflector 76 for deflecting the electron beam (performing beam deflection) to provide an electron beam at a first angle of incidence, and electron optics such as a forward scattered electron detector 77. There may be more than a single scattered electron detector 77. The shape, size and / or location of the scattered electron detector 77 may differ from that shown in FIG. 3.
[0066] In FIG. 3, the vertical axis (optical axis) of the column is perpendicular to the sample 999.
[0067] FIG. 4 shows the same three-dimensional characterization system 70, but with the electron beam impinging (on the specimen) at a second angle of incidence different from the first angle of incidence.
[0068] Figure 5 shows a 3D characterization system 70' that includes a mechanical tilt unit 74 for tilting the sample 999 relative to the electron optics 75. Figure 5 does not show the electronic deflection of the electron beam 81.
[0069] 6 shows a 3D characterization system 70' that includes a mechanical tilt unit 74 for tilting the sample 999 relative to the electron optics 75. FIG. 6 further shows electronic deflection of the electron beam 81.
[0070] FIG. 7 shows a 3D characterization system 70″ that includes an additional mechanical tilt unit (not shown) for tilting the electron optics 75 with respect to the sample 999. FIG. 7 does not show electronic deflection of the electron beam 81.
[0071] FIG. 8 shows a three-dimensional characterization system 77 including a multi-column electron optics indicated by column 75 and an additional column 75''. These two columns irradiate the sample with two electron beams at different angles of incidence.
[0072] In the foregoing specification, embodiments of the present disclosure have been described with reference to specific examples of the present disclosure, however, it will be apparent that various modifications and changes can be made thereto without departing from the broader spirit and scope of the embodiments of the present disclosure as set forth in the appended claims.
[0073] Any reference to the terms "comprising" or "having" should be applied mutatis mutandis to the terms "consisting" or "consisting essentially".
[0074] Furthermore, when terms such as "front," "back," "top," "bottom," "upper," "lower," and the like are used in this description and in the claims, they are used for purposes of explanation and not necessarily to describe permanent relative positions, and it is understood that these terms, as so used, are interchangeable, under appropriate circumstances, such that the embodiments of the disclosure described herein can, for example, operate in orientations other than those illustrated or in other ways than those described herein.
[0075] The connections discussed herein may be any type of connection suitable for transferring signals from the respective corresponding nodes, units or devices, e.g., via an intermediate device, or any type of connection suitable for transferring signals to the respective corresponding nodes, units or devices, e.g., via an intermediate device. Thus, unless otherwise implied or stated, the connections may be, e.g., direct or indirect connections. The connections may be illustrated or described as being single, multiple, unidirectional or bidirectional connections. However, the implementation of the connections may differ in different embodiments. For example, separate unidirectional connections may be used instead of bidirectional connections, and vice versa. Furthermore, instead of multiple connections, a single connection may be used that transfers multiple signals sequentially or in a time division multiplexed manner. Similarly, a single connection carrying multiple signals may be split into different connections that carry subsets of these signals. Thus, there are many options for transferring signals.
[0076] Any arrangement of components to achieve the same functionality is effectively "associated" such that the desired functionality is achieved. Thus, any two components herein that are combined to achieve a particular functionality can be viewed as "associated" with one another such that the desired functionality is achieved, regardless of architecture or intervening components. Similarly, any two components so associated can also be viewed as "operably connected" or "operably coupled" with one another such that the desired functionality is achieved.
[0077] Moreover, those skilled in the art will recognize that the boundaries between operations described above are merely examples. Multiple operations may be combined into a single operation, a single operation may be divided into multiple additional operations, and operations may be performed in a manner that at least partially overlaps in time. Additionally, alternative embodiments may include multiple instances of a particular operation, and the order of operations may be changed in various other embodiments.
[0078] Further, for example, in one embodiment, the illustrated examples may be implemented as circuitry located on a single integrated circuit or within the same device, or the examples may be implemented as any number of separate integrated circuits or separate devices interconnected with each other in any suitable manner.
[0079] However, other modifications, variations and alternatives are also possible. Accordingly, the specification and drawings are to be regarded in an illustrative sense and not in a restrictive sense.
[0080] In the claims, reference signs in parentheses shall not be construed as limiting the claim. The word "comprising" does not exclude the presence of other elements or steps than those recited in the claim. Furthermore, as used herein, the terms "a" or "an" are defined as one or more than one. Furthermore, the use of introductory phrases such as "at least one" and "one or more" in the claims should not be construed as implying that the introduction of another claim element by the indefinite article "a" or "an" limits a particular claim containing such introduced claim element to an embodiment of the present disclosure containing only one such element. This is true even when the same claim contains the introductory phrase "one or more" or "at least one" and an indefinite article such as "a" or "an". The same is true with respect to the use of definite articles. Unless otherwise stated, terms such as "first" and "second" are used to arbitrarily distinguish between the elements that such terms describe. Thus, these terms are not necessarily intended to indicate a temporal or other priority of such elements. The mere fact that certain measures are recited in mutually different claims does not indicate that a combination of these measures cannot be used to advantage.
[0081] While certain features of the embodiments of the present disclosure have been illustrated and described herein, many modifications, substitutions, changes and equivalents will occur to those skilled in the art, and it is therefore understood that the appended claims are intended to cover all such modifications and changes that fall within the true spirit of the embodiments of the present disclosure.
Claims
1. A method for providing three-dimensional information regarding structural elements of a sample having dimensions on the nanometer scale, the method comprising: (a) detecting a forward scattered electron beam scattered from the structural element using a detector disposed above the specimen while irradiating the structural element with the electron beam at different angles of incidence using the electron beam generated by a column such that a central axis of the electron beam strikes the specimen at a first angle; (b) varying the angle of incidence, which is the angle at which the central axis of the electron beam strikes the sample, by mechanically tilting one or both of the sample and electron optics of an electron beam column; (c) detecting the forward scattered electron beam scattered from the structural element with the detector while irradiating the structural element at the varied angle of incidence with the electron beam produced by the column; (d) repeating steps (b) and (c) a plurality of times; and (e) generating the three-dimensional information about the structuring element based on the detected forward scattered electrons from at least each of the irradiating steps. The method includes:
2. The method of claim 1 , wherein detecting the forward scattered electron beam comprises performing spatial filtering to reduce detection of backscattered electrons scattered from the specimen.
3. The method of claim 2 , wherein the spatial filtering comprises positioning at least one forward scattered electron detector in an expected path of the forward scattered electrons.
4. The method of claim 1 , wherein detecting the forward scattered electron beam comprises performing energy filtering to reduce detection of backscattered electrons scattered from the specimen.
5. 5. The method of claim 4, wherein the energy filtering comprises passing electrons having energy levels representing electron paths that include up to a few scattering events and not passing electrons having energy levels representing electron paths that include more than a few scattering events.
6. The method of claim 1 , wherein the detecting comprises performing both spatial and energy filtering to reduce detection of backscattered electrons scattered from the sample.
7. The method of claim 1 , wherein the structural element is located within a distance of a few nanometers from a top surface of the sample.
8. The method of claim 1 , wherein the penetration depth of the electron beam is at least five times greater than the size of the structuring element in a dimension perpendicular to the propagation direction of the electron beam.
9. The method of claim 1 , wherein irradiating the structural element includes generating the electron beam at different angles of incidence by different columns.
10. The method of claim 1 , wherein the irradiating comprises tilting and / or rotating at least one of the sample and electron optics to generate different angles of incidence of the electron beam.
11. The method according to any of the preceding claims, wherein an area of a spot formed by each of said electron beams on a portion of a structuring element is smaller than an area of said portion of said structuring element.
12. (a) detecting forward scattered electrons scattered from a structural element of the specimen using a detector disposed above the specimen while irradiating the structural element with an electron beam at different angles of incidence using an electron beam generated by a column such that a central axis of the electron beam strikes the specimen at a first angle, the electron beam passing through the structural element, the structural element having dimensions on the nanometer scale; (b) varying the angle of incidence, which is the angle at which the central axis of the electron beam strikes the sample, by mechanically tilting one or both of the sample and electron optics of an electron beam column; (c) detecting forward scattered electrons scattered from the structural element using the detector while irradiating the structural element at the varied angle of incidence with the electron beam produced by the column; and (d) an electronic optical component configured to repeat steps (b) and (c) a plurality of times; and a processing circuit configured to generate three-dimensional information regarding the structuring element based on the detected forward scattered electrons from at least each of the illuminating steps; A three-dimensional evaluation system comprising:
13. The three-dimensional evaluation system of claim 12 , wherein the three-dimensional evaluation system is configured to perform spatial filtering to reduce detection of backscattered electrons scattered from the specimen.
14. The three-dimensional evaluation system of claim 12 , wherein the three-dimensional evaluation system is configured to perform energy filtering to reduce detection of backscattered electrons scattered from the specimen.
15. The three-dimensional evaluation system of claim 12 , wherein the three-dimensional evaluation system is configured to perform both spatial and energy filtering to reduce detection of backscattered electrons scattered from the specimen.
16. The three-dimensional evaluation system of claim 12 , wherein the penetration depth of the electron beam is at least five times greater than the height of the structural element.
17. The three-dimensional evaluation system of claim 12 , wherein the electronic optical components include different columns.
18. The three-dimensional evaluation system of claim 12, wherein the electron optical component is configured to generate an electron beam indicating that an area of a spot formed on a portion of a structural element by each of the electron beams is smaller than an area of the portion of the structural element.
19. The three-dimensional evaluation system according to any one of claims 12 to 18, further comprising at least one tilt unit for tilting at least one of the sample and the electron optical component to generate the electron beam at different angles of incidence. The three-dimensional evaluation system according to any one of claims 12 to 18,
20. 1. A non-transitory computer readable medium for providing three-dimensional information regarding structural elements of a sample, the non-transitory computer readable medium comprising: (a) detecting forward scattered electrons scattered from the structural element using a detector disposed above the specimen while irradiating the structural element with an electron beam having a different incidence angle using an electron beam generated by a column such that a central axis of the electron beam strikes the specimen at a first angle; (b) varying the angle of incidence, which is the angle at which the central axis of the electron beam strikes the sample, by mechanically tilting one or both of the sample and electron optics of an electron beam column; (c) detecting the forward scattered electrons scattered from the structural elements using the detector while irradiating all structural elements at the varied angle of incidence with the electron beam produced by the column; (d) repeating steps (b) and (c) a plurality of times; and (e) generating the three-dimensional information about the structuring element based on the detected forward scattered electrons from at least each of the irradiating steps. A non-transitory computer readable medium having stored thereon instructions for carrying out the steps of:
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