The present invention relates to a pole measuring method for analyzing polycrystalline samples by using an X-ray diffractometer.
As one of pole measuring methods for analyzing a polycrystalline sample using an X-ray diffractometer, there is a pole measuring method for analyzing preferred orientation (texture) and the like of the sample by using a pole figure. The pole figure refers to a figure representing poles with respect to a specified lattice plane of crystallites constituting the sample by a polar net (a stereographic projection) as shown in FIG. 6. Here, the term “pole” signifies an intersection of the normal to a lattice plane with a projection sphere about the crystallites constituting the sample.
As shown in
An X-ray detector 1 is mounted on a counter arm which rotates about the Ω-axis along the equator plane. In the pole measuring, the X-ray detector 1 is generally disposed at the symmetrical position on the equator plane which satisfies a Bragg's diffraction condition, that is, a position in the direction of a diffracting angle of an X-ray equal to the incident angle θ of the X-ray with respect to the sample surface Sa. Specifically, the X-ray detector 1 is positioned, by revolving the counter arm about the Ω-axis, at an angle of 2θ with respect to the incident X-ray X0 which is applied to the sample at the incident angle θ.
The sample S is rotated about the ψ-axis in minute angle units (tilting angle α), and is in-plane rotated about the Φ-axis at each predetermined angle. In this manner, with each of the tilting angles α and each of the in-plane rotation angles β as parameters, a diffracted X-ray X1 which is a Bragg diffraction by the sample surface Sa is measured by the X-ray detector 1, disposed on the equator plane and fixed at a position at an angle of 2θ with respect to the direction of the incident X-ray X0.
By representing these measurement results on a graph named as a polar net, a pole figure is produced. In the polar net, the tilting angles α are shown in radial directions thereof, and the tilting angle α is defined so that α=90° at the center thereof, and that α=0° at the outer periphery thereof. When the sample surface Sa is perpendicular to the equator plane, the tilting angle α is 90°. In the polar net, the in-plane rotation angle β is shown in the circumferential direction thereof.
In the conventional pole measuring, an X-ray beam of line-shaped cross-section is used as an incident X-ray, and therefore, when the tilting angle becomes small, that is, when the sample surface is tilted to a position near the horizontal plane in
Accordingly, in a low angle region, a transmission method, in which a diffracted X-ray transmitted through the sample is measured, has been hitherto used for a pole measuring. In general, the reflection method has been used when the tilting angle α is in a range of 90° to 25°, while the transmission method has been used when the tilting angle α is in a range of 25° to 0°.
However, in the measurement by transmission, the intensity of a transmitted X-ray is reduced by the self-absorption. This has raised a problem that, since a sufficient intensity of X-ray cannot be obtained with respect to thick samples or samples formed on a substrate, extremely thin samples alone have been measurable. Hitherto, therefore, the pole measuring with respect to these thick samples and thin-film samples formed on a substrate have not been possible in a low region of the tilting angle α.
Accordingly, it is an object of the present invention to realize a pole measuring, using the reflection method, substantially over all measurement regions ranging from the region of high-tilting-angle α in the conventional pole measuring to the in-plane diffraction region corresponding to low-tilting-angle α.
Here, the in-plane diffraction refers to a diffraction phenomenon wherein, as shown in
The pole measuring method according to the present invention is implemented by using an X-ray diffractometer named as an in-plane diffractometer and having the following functions. That is, as shown in
The sample S is arranged so that the surface Sa thereof is disposed on the Ω-axis, and that an incident X-ray X0 is applied to the origin on the surface Sa thereof. The incident angle ω of the incident X-ray X0 with respect to the sample surface Sa is set by the ω-rotation of the sample S. The in-plane diffractometer has also a function of in-plane rotating (β-rotating) the sample S about the Φ-axis passing through the origin O and perpendicular to the sample surface Sa.
While the conventional four-axis X-ray diffractometer, as shown in
The present invention is characterized in that, by utilizing such characteristics of the in-plane diffractometer, a diffracted X-ray which is to occur on the equator plane when the sample S is tilted by the tilting angle α in the conventional pole measuring method using the four-axis X-ray diffractometer, is detected on a diffraction plane different from the equator plane, by the 2θ- and 2θχ-revolutions of the X-ray detector 1, without need to tilt the sample.
That is, in the present invention, pole measuring is performed by a method including the following operations (a) to (d).
By this method, it is possible to achieve pole measuring by the reflection method over all measurement regions ranging from the region of high-tilting-angle α to the in-plane diffraction region, and to obtain highly accurate pole measuring data even with respect to thin-film samples and thick samples.
c is a left side view explaining the principle of the pole measuring method according to the present invention, as a follow-up view to FIG. 3C.
Hereinafter, the preferred embodiment according to the present invention will be described with reference to the drawings.
In the pole measuring method according to this embodiment, by utilizing the in-plane diffractometer shown in
With reference to these figures, the principle of the pole measuring method according to the present invention will be now described.
Consider x, y, and z orthogonal coordinate axes intersecting one another at an origin, in which the Φ axis in the in-plane diffractometer shown in
As shown in
Next, as shown in
Furthermore, the diffraction plane 2 is rotated about the x-axis by an angle of Δβ in the counterclockwise direction in
In the pole measuring method according to the present invention, the incident angle ω of an incident X-ray X0 with respect to the sample surface, and the angles of 2θ- and 2θχ-revolutions of the X-ray detector 1 are set so as to satisfy the diffraction condition of the above-described diffraction plane 3 with respect to a preset tilting angle α of the sample S. Also, on the basis of the above-mentioned preset tilting angle α of the sample S, a correction angle Δβ with respect to the measuring angle of the sample in an in-plane rotational direction, is calculated. Then, a measuring angle φ of the sample in the in-plane rotational direction, obtained by adding the above-mentioned Δβ to a preset measuring angle β of the sample in the in-plane rotational direction, is set, and pole measuring of the sample is performed.
When rotation matrices about the coordinate axes x, y, and z are designated by Rx, Ry, and Rz, respectively, rotation matrices Rx(δ), Ry(δ), and Rz(δ) at a rotation angle δ are expressed by the following expressions.
Next, when unit vectors on the x, y, and z coordinate axis are denoted as ex, ey, and ez, respectively, and a specified Bragg angle of a reflection is denoted as θb, the wave number vector K0 of the incident X-ray, the wave number vector K1 of the diffracted X-ray, and the wave number vector K of the scattered X-ray each of which exists on the above-described first diffraction plane 1, are expressed by the following expressions using the above-described equation (3).
K1=Rz(−2θb)K0 (4)
K=K1−K0 (5)
Therefore, the wave number vector K0′ of the incident X-ray, the wave number vector K1′ of the diffracted X-ray, and the wave number vector K′ of the scattered X-ray each of which exists on the above-described second diffraction plane 2, are expressed by the following expressions.
K0′=Ry(−α)K0 (6)
K1′=Ry(−α)K1 (7)
K′=K1′−K0′ (8)
Thereby, the correction angle Δβ with respect to the measuring angle of the sample surface Sa in the in-plane rotational direction can be obtained by the following expressions.
K0″=Rx(Δβ)K0′ (10)
K1″=Rx(Δβ)K1′ (11)
Next, in the in-plane diffractometer, the X-ray incident angle ω, the pivoting angles 2θ and 2θχ of the X-ray detector, and the measuring angle φ of the sample surface Sa in the in-plane rotational direction, are obtained by the following expressions. Here, β in the equation (15) is a preset measuring angle of the sample in an in-plane rotational direction.
φ=β+Δβ−180° (15)
Here, in the equation (15), φ is set to be an angle obtained by subtracting 180° from Δβ. This is because the actual rotational direction of the tilting angle α is opposite to the rotational direction of the diffraction plane 2 shown in
In the pole measuring method according to the present invention, by using the above-described equations (13) and (14), set values of ω, 2θ, and 2θχ are calculated on the basis of the preset tilting angle α of the sample, and the in-plane diffractometer is set to these set values. Then, the measuring angle φ of the sample S in the in-plane rotational direction, which has been obtained from the equation (15), is set, and a pole is measured. Since the pole measuring method according to the present invention involves no tilting operation with respect to the sample, pole measuring by the reflection method can be performed over all measurement regions ranging from the region of high-tilting-angle α to the in-plane diffraction region.
Industrial Applicability
As described above, according to the present invention, it is possible to achieve pole measuring by the reflection method, over all measurement regions ranging from the region of high-tilting-angle α to the in-plane diffraction region, and to obtain highly accurate pole measuring data even with respect to thin samples or thick samples to be obtained.
Number | Date | Country | Kind |
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11-164490 | Jun 1999 | JP | national |
This is a continuation-in-part of U.S. patent application Ser. No. 09/591,273, filed Jun. 9, 2000 now abandoned.
Number | Date | Country |
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2001-56304 | Feb 2001 | JP |
Number | Date | Country | |
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20030012335 A1 | Jan 2003 | US |
Number | Date | Country | |
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Parent | 09591273 | Jun 2000 | US |
Child | 10129415 | US |