SPECTROMETER
20220349844 · 2022-11-03
Assignee
Inventors
Cpc classification
G01N23/085
PHYSICS
G01N23/223
PHYSICS
G01N23/2076
PHYSICS
International classification
Abstract
The invention described herein is a spectrometer having components allowing remote orientation of crystal analyzer and detector.
Claims
1. A spectrometer comprising: a detector and a crystal analyzer; wherein the crystal analyzer is operably attached to a first arm; the detector is operably attached to a second arm; the first arm and the second arm are linked; and the detector and crystal analyzer move rotationally around a first axis and independently of each other.
2. The spectrometer of claim 1, wherein the axis is centered on a Rowland Circle having radius.
3. The spectrometer of claim 2, wherein the first arm and the second arm are configured so that the crystal analyzer and detector are tangent to a Rowland circle.
4. The spectrometer of claim 3 where the Rowland circle is on a vertical plane.
5. The spectrometer of claim 3, where the Rowland circle is on a horizontal plane.
6. The spectrometer of claim 1 further comprising of a sample holder; wherein the sample holder is located along a radiation path between a source and the crystal analyzer.
7. The spectrometer of claim 1 further comprising a sample holder; wherein the sample holder is located along a radiation path between the crystal analyzer and the detector.
8. The spectrometer of claim 1, wherein a sample is within the region of acceptance for Bragg diffraction by the crystal analyzer.
9. The spectrometer of claim 1, wherein the radiation source is within the region of acceptance for Bragg diffraction by the crystal analyzer.
10. The spectrometer of claim 1, wherein the spectrometer is used to study actinide elements.
11. The spectrometer of claim 1, wherein the crystal analyzer has a cylindrical shape.
12. The spectrometer of claim 1, wherein the crystal analyzer has a toroidal shape.
13. The spectrometer of claim 1, wherein the crystal analyzer has a spherical shape.
14. The spectrometer of claim 1, wherein the focusing circle has a diameter of 10 cm-100 cm.
15. The spectrometer of claim 1 further comprising a linear translation stage; wherein the spectrometer is operably mounted to the linear translation stage so that the linear transition stage moves the spectrometers from at least one first location to at least one second location.
16. The spectrometer of claim 1, wherein the spectrometer is located inside an inert-gas chamber.
17. The spectrometer of claim 16, wherein the spectrometer is used to study air-sensitive electrode materials for electrical energy storage.
18. The spectrometer of claim 16, wherein the spectrometer is used to study air-sensitive materials for chemical catalysis.
19. The spectrometer of claim 1, wherein the spectrometer is located inside of a vacuum chamber.
20. The spectrometer of claim 1, wherein the spectrometer is located inside a chamber filled with helium.
21. The spectrometer of claim 1 wherein the crystal analyzer is of the Johansson type.
22. The spectrometer of claim 1 in which wherein the crystal analyzer is of the Johansson type.
23. The spectrometer of claim 1 wherein at least the first arm is operably attached to a motor.
24. The spectrometer of claim 1 wherein the spectrometer is used for determining an oxidation state distribution.
25. The spectrometer of claim 1 wherein a diffraction grating is used in place of a crystal analyzer.
Description
DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0008] Other features and advantages of the present invention will become apparent in the following detailed descriptions of the preferred embodiment with reference to the accompanying drawing. (to be finalized when drawings are finalized)
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DETAILED DESCRIPTION OF THE INVENTION
[0025] In the following detailed description, reference is made to the accompanying drawings, which form a part hereof. In the drawings, the use of similar or the same symbols in different drawings typically indicates similar or identical items, unless context dictates otherwise.
[0026] The illustrative embodiments described in the detailed description, drawings, and claims are not meant to be limiting. Other embodiments may be utilized, and other changes may be made, without departing from the spirit or scope of the subject matter presented here.
[0027] One skilled in the art will recognize that the herein described components (e.g., operations), devices, objects, and the discussion accompanying them are used as examples for the sake of conceptual clarity and that various configuration modifications are contemplated. Consequently, as used herein, the specific exemplars set forth and the accompanying discussion are intended to be representative of their more general classes. In general, use of any specific exemplar is intended to be representative of its class, and the non-inclusion of specific components (e.g., operations), devices, and objects should not be taken as limiting.
[0028] The present application uses formal outline headings for clarity of presentation. However, it is to be understood that the outline headings are for presentation purposes, and that different types of subject matter may be discussed throughout the application (e.g., device(s)/structure(s) may be described under process(es)/operations heading(s) and/or process(es)/operations may be discussed under structure(s)/process(es) headings; and/or descriptions of single topics may span two or more topic headings). Hence, the use of the formal outline headings is not intended to be in any way limiting.
[0029] Referring to
[0030] The crystal analyzer (30) is operably attached to a first arm (1a) whereby the position of the first arm (1a) is controlled by a first motor (20a). The first arm (1a) is comprised of a far end (21b) and a near end (21a). In an embodiment, the first motor (20a) is operably attached to the far end (21b) of the first arm (1a). The crystal analyzer (30) is operably attached to the far end (21b) of the first arm (1a). In an embodiment, the crystal analyzer (30) is mounted to the far end (21b) using any known mounting method. The first motor (20a) moves the first arm (1a) which moves the center of the Rowland Circle while keeping the crystal analyzer (30) tangential. In an embodiment, the crystal analyzer (30) is mounted in such a way that it can rotate with respect to its mount point. In an embodiment, the crystal analyzer is mounted in such a way that its radial position r can be adjusted such that the crystal analyzer is closer or further to the first axis. In an embodiment, the crystal analyzer (30) is of the Johann type, in which the surface of the crystal is curved to lie along a circle with size twice as large as the Rowland circle. In an embodiment, the crystal analyzer (30) is of the Johansson type, in which the crystal lattice planes are curved to have a radius twice as large as the Rowland circle, while the surface of the crystal is ground/manufactured to have the same radius as the Rowland circle. In an embodiment, a diffraction grating is used in place of a crystal analyzer.
[0031] The first arm (1a) is operably attached to a second arm (1b). The second arm (1b) has a near end (22a) and a far end (22b). The near end (21a) of the first arm (1a) is operably connected to the near end (22a) of the second arm (1b). The far end (22b) of the second arm (1b) is operably connected to a detector (40). In an embodiment, the detector (40) is mounted onto the second arm using any known mounting method. In an embodiment, the detector (40) is mounted to the second arm (1b) such that the detecting surface is perpendicular to the second arm (1b). In an embodiment, the detector is mounted in such a way that its radial position r can be adjusted.
[0032] The second arm (1b) is connected to a third arm (1c). The third arm (1c) has a near end (23a) and a far end (23b). The far end (22b) of the second arm (1b) is operably connected to the near end (23a) of the third arm (1c). In an embodiment, the second arm (1b) is operably connected to the third arm (1c) so that the detector (40) may move tangentially along the circle.
[0033] The third arm (1c) is connected to a fourth arm (1d). The fourth arm has a near end (24a) and a far end (24b). The near end (23a) of the third arm (1c) is operably connected to near end (24a) of the fourth arm (1d). The far end (24b) of the third arm (1d) is operably connected to a second motor (20b). In an embodiment, the second motor (20b) is mounted to the fourth arm (1d) by any known mounting method. The second motor (20b) moves the fourth arm (1d) rotationally.
[0034] In an embodiment, a computing device (not shown) controls the first motor (20a) and the second motor (20b).
[0035] Referring to
[0036] Referring to
[0037] Referring to
[0038] Referring to
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[0040] In an embodiment, the spectrometer is utilized to study actinide elements. In an embodiment, the spectrometer is utilized to study air-sensitive electrode materials for electrical energy storage. In an embodiment, the spectrometer is utilized to study air-sensitive materials for chemical catalysis.
[0041] In an embodiment, a computing device is programmed to control the motors (20a, 20b), and subsequently the arms (1a, 1b, 1c, 1d) such that a plurality of angles between the crystal analyzer (30) and sample (51) or radiation source (50) can be achieved. In an embodiment, the computing device is preprogrammed to control the motors (20a, 20b) to orient the crystal analyzer (30) and detector (40) to defined positions such as particular energies of elemental emission lines. In an embodiment, the second motor (1b) rotates the fourth arm (1d) and consequently the other linked arms (1c, 1b, 1a) such that the detector (40) is moved, but the crystal analyzer (30) remains stationary.
[0042] The high-resolution spectra of
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[0044] While various example aspects and example embodiments have been disclosed herein, other aspects and embodiments will be apparent to those skilled in the art. The various example aspects and example embodiments disclosed herein are for purposes of illustration and are not intended to be limiting.