Systems and methods for X-ray diffraction
09976971 ยท 2018-05-22
Assignee
Inventors
Cpc classification
H01J35/10
ELECTRICITY
H01J35/101
ELECTRICITY
G01N23/20
PHYSICS
G01N23/207
PHYSICS
H01J35/025
ELECTRICITY
G01N23/20008
PHYSICS
International classification
G01N23/20
PHYSICS
H01J35/10
ELECTRICITY
H01J35/24
ELECTRICITY
G01N23/207
PHYSICS
Abstract
An x-ray diffraction system includes an x-ray source having a first interchangeable x-ray generating component, a second interchangeable x-ray generating component, an actuator and a controller operatively connected to the actuator. The first and second interchangeable x-ray generating components are interchangeable with one another. The actuator is operatively connected to the first and second interchangeable x-ray generating components. A method for non-destructive x-ray diffraction includes emitting a first x-ray beam from an x-ray source with a first interchangeable x-ray generating component based on a first desired depth to measure a crystallographic signature of a sample at the first desired depth, interchanging the first interchangeable x-ray generating component with a second interchangeable x-ray generating component to form a modified x-ray source, and emitting a second x-ray beam from the modified x-ray source based on a second desired depth, to non-destructively measure a crystallographic signature of the sample at the second desired depth.
Claims
1. An x-ray diffraction system comprising: an x-ray source including a first interchangeable x-ray generating component; a second interchangeable x-ray generating component configured to be interchanged with the first interchangeable x-ray generating component; an actuator operatively connected to both the first interchangeable x-ray generating component and the second interchangeable x-ray generating component for mechanically interchanging the first interchangeable x-ray generating component with the second interchangeable x-ray generating component; and a controller operatively connected to the actuator, wherein the first interchangeable x-ray generating component comprises a first interchangeable x-ray tube and the second interchangeable x-ray generating component comprises a second interchangeable x-ray tube.
2. An x-ray diffraction system as recited in claim 1, wherein the first interchangeable x-ray tube is configured to emit a respective first x-ray beam at a first energy and a first wavelength and wherein the second interchangeable x-ray tube is configured to emit a respective second x-ray beam at a second energy and a second wavelength, wherein at least one of the first energy and the first wavelength is different from at least one of the second energy and the second wavelength.
3. An x-ray diffraction system as recited in claim 1, wherein the first interchangeable x-ray tube includes a first interchangeable x-ray target and the second interchangeable x-ray tube includes a second interchangeable x-ray target, wherein the first interchangeable x-ray target of the first interchangeable x-ray tube is different from the second interchangeable x-ray target of the second interchangeable x-ray tube.
4. An x-ray diffraction system as recited in claim 3, wherein at least one of the first interchangeable x-ray target of the first interchangeable x-ray tube and the second interchangeable x-ray target of the second interchangeable x-ray tube includes a material selected from the group consisting of copper, silver, chromium, vanadium, manganese, cobalt, molybdenum, and titanium.
5. A method for non-destructive x-ray diffraction, comprising: emitting a first x-ray beam from an x-ray source with a first interchangeable x-ray generating component based on a first desired measurement depth, wherein the first x-ray beam has first energy and a first wavelength, wherein the first x-ray beam is emitted in response to a first focused stream of electrons directed at the first interchangeable x-ray generating component and wherein the first x-ray beam is not parallel to the first focused stream of electrons, wherein the first x-ray beam is not a transmitted x-ray beam; measuring a crystallographic signature of a sample at the first desired measurement depth; interchanging the first interchangeable x-ray generating component with a second interchangeable x-ray generating component to form a modified x-ray source; emitting a second x-ray beam from the modified x-ray source based on a second desired measurement depth, wherein the second desired measurement depth is different from the first desired measurement depth, wherein the second x-ray beam has second energy and a second wavelength, wherein the second x-ray beam is emitted in response to a second focused stream of electrons directed at the second interchangeable x-ray generating component and wherein the second x-ray beam is not parallel to the second focused stream of electrons, wherein the second x-ray beam is not a transmitted x-ray beam; and measuring a crystallographic signature of the sample at the second desired measurement depth.
6. A method as recited in claim 5, wherein the step of interchanging the first interchangeable x-ray generating component with a second interchangeable x-ray generating component includes interchanging a first interchangeable x-ray target with a second interchangeable x-ray target.
7. A method as recited in claim 5, wherein at least one of the first energy and the first wavelength is different from at least one of the second energy and the second wavelength.
8. A method as recited in claim 5, further comprising adjusting an alignment of the sample relative to at least one of the x-ray source and the modified x-ray source to adjust an angle of incidence between at least one of the first x-ray beam, the second x-ray beam, and the sample.
9. A method as recited in claim 5, further comprising adjusting an alignment of a multi-axis sample stage relative to at least one of the x-ray source and the modified x-ray source based on a desired crystallographic measurement depth in the sample.
10. A method for non-destructive x-ray diffraction, comprising: emitting a first x-ray beam from an x-ray source with a first interchangeable x-ray generating component based on a first desired measurement depth; measuring a crystallographic signature of a sample at the first desired measurement depth; interchanging the first interchangeable x-ray generating component with a second interchangeable x-ray generating component to form a modified x-ray source; emitting a second x-ray beam from the modified x-ray source based on a second desired measurement depth, wherein the second desired measurement depth is different from the first desired measurement depth; and measuring a crystallographic signature of the sample at the second desired measurement depth, wherein the step of interchanging the first interchangeable x-ray generating component with a second interchangeable x-ray generating component includes interchanging a first interchangeable x-ray tube with a second interchangeable x-ray tube.
11. A tangible, non-transitory, computer-readable media having software encoded thereon, the software, when executed by a processor, operable to: receive a first desired crystallographic measurement depth of a sample; select a first interchangeable x-ray target and at least one of an incident beam collimating optic and a diffracted beam collimating optic based on the first desired crystallographic measurement depth for use in non-destructive x-ray crystallography, wherein the first interchangeable x-ray target is configured to emit a first x-ray beam at a first energy and a first wave length towards the sample, wherein the first x-ray beam is emitted in response to a first focused stream of electrons directed at the first interchangeable x-ray generating component and wherein the first x-ray beam is not parallel to the first focused stream of electrons, wherein the first x-ray beam is not a transmitted x-ray beam; execute a command to cause an actuator to mechanically alter the current interchangeable x-ray target and at least one of the incident beam collimating optic and the diffracted beam collimating optic to match the selected first interchangeable x-ray target and at least one of the incident beam collimating optic and the diffracted beam collimating optic for non-destructive below surface measurements of the sample; receive a second desired crystallographic measurement depth of the sample; select a second interchangeable x-ray target and at least one of the incident beam collimating optic and the diffracted beam collimating optic based on the second desired crystallographic measurement depth for use in non-destructive x-ray crystallography, wherein the second interchangeable x-ray target is configured to emit a second x-ray beam at a second energy and a second wave length towards the sample, wherein the second x-ray beam is emitted in response to a second focused stream of electrons directed at the second interchangeable x-ray generating component and wherein the second x-ray beam is not parallel to the second focused stream of electrons, wherein the second x-ray beam is not a transmitted x-ray beam; and execute a command to cause an actuator to mechanically alter the current interchangeable x-ray target and at least one of the incident beam collimating optic and the diffracted beam collimating optic to match the selected second interchangeable x-ray target and at least one of the incident beam collimating optic and the diffracted beam collimating optic for non-destructive below surface measurements of the sample.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) So that those skilled in the art to which the subject invention appertains will readily understand how to make and use the devices and methods of the subject invention without undue experimentation, embodiments thereof will be described in detail herein below with reference to certain figures, wherein:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF THE EMBODIMENTS
(7) Reference will now be made to the drawings wherein like reference numerals identify similar structural features or aspects of the subject disclosure. For purposes of explanation and illustration, and not limitation, a schematic top-elevation view of an exemplary embodiment of the x-ray diffraction system in accordance with the disclosure is shown in
(8) As shown in
(9) Actuator 108 is operatively connected to both first interchangeable x-ray generating component 104 and second interchangeable x-ray generating component 106 for mechanically interchanging first interchangeable x-ray generating component 104 with second interchangeable x-ray generating component 106. It is contemplated that actuator 108 can be motorized and controlled by controller 110 through use of software, such as that described below. In addition, those skilled in the art will readily appreciate that actuator 108 can be automated and/or manually controlled.
(10) Those skilled in the art will also readily appreciate that x-ray diffraction system 100 can include any suitable number of second interchangeable x-ray generating components 106 as indicated by additional second interchangeable x-ray generating components 106.sub.a, 106.sub.b . . . and 106.sub.n. Any suitable second interchangeable x-ray generating components 106, 106.sub.a, 106.sub.b . . . and/or 106.sub.n can be interchanged with first interchangeable x-ray generating component 104. In addition, it is further contemplated that after interchanging first interchangeable x-ray generating component 104 with second interchangeable x-ray generating component 106, second interchangeable x-ray generating component 106 can be interchanged with an additional second interchangeable x-ray generating component, such as second interchangeable x-ray generating components 106.sub.a, 106.sub.b . . . or 106.sub.n.
(11) Those skilled in the art will readily appreciate that first interchangeable x-ray generating component 104 and second interchangeable x-ray generating component 106 can be interchangeable x-ray anode targets, e.g. interchangeable targets 204, 206, described below, or interchangeable x-ray tubes, e.g. interchangeable x-ray tubes 303, 305, 403, and 405, with respective anode targets, e.g. targets 304, 306, 404 and 406, within the respective tube. It is also contemplated that first interchangeable x-ray generating component 104 and second interchangeable x-ray generating components 106 can be mounted on the incident beam side of a sample stage, e.g. multi-axis sample stage 112, as described below. Those skilled in the art will also readily appreciate that an x-ray diffraction system 100, as described above and as shown in
(12) With continued reference to
(13) Controller 110 is also configured to direct actuator 108 to interchange first interchangeable x-ray generating component 104 with second interchangeable x-ray generating component 106, after a first non-destructive below surface measurement is taken, based on a desired crystallographic measurement depth in sample 114 for a second non-destructive below surface measurement at a different depth. Those skilled in the art will readily appreciate that the interchangeable x-ray generating components 104 and 106 allow for multiple crystallographic measurements at a variety different depths within a single sample 114 without having to etch or machine off a surface of the sample 114. This tends to increase efficiency and reduce the cost of obtaining crystallographic measurements as compared with traditional x-ray diffraction systems and methods because the sample 114 can be used for its intended purpose after being evaluated.
(14) Now with reference to
(15) With continued reference to
(16) Those skilled in the art will readily appreciate that the first energy and/or the first wavelength of first x-ray beam 220 are different from the second energy and/or second wavelength of second x-ray beam 223 in order to penetrate to different depths in a sample 214. Those skilled in the art will readily appreciate that first and/or second interchangeable x-ray targets 204 and 206, respectively, can include chromium, vanadium, manganese, cobalt, copper, silver, molybdenum, titanium, and/or any other suitable target material.
(17) Those skilled in the art will also readily appreciate that x-ray diffraction system 200 can include any suitable number of second interchangeable x-ray targets 206 to form an integrated system of anode targets within an x-ray tube 203, as indicated by additional second interchangeable x-ray targets 206.sub.a, 206.sub.b . . . and 206.sub.n. Any suitable second interchangeable x-ray targets 206, 206.sub.a, 206.sub.b . . . and/or 206.sub.n can be interchanged with first interchangeable x-ray target 204 by manual or automatic rotation of rotary carousel 211. Those skilled in the art will readily appreciate that the double-headed arrows shown in
(18) As shown in
(19) With continued reference to
(20) Those skilled in the art will also readily appreciate that x-ray diffraction system 300 can include any suitable number of second interchangeable x-ray tubes 305 with respective x-ray targets 306 as indicated by additional second interchangeable x-ray tubes 305.sub.a, 305.sub.b . . . and 305.sub.n and respective x-ray targets 306.sub.a, 306.sub.b . . . and 306.sub.n. It is contemplated that x-ray targets 306, 306.sub.a, 306.sub.b . . . and 306.sub.n can each include a different material as described above. Any suitable second interchangeable x-ray tubes 305, 305.sub.a, 305.sub.b . . . and/or 305.sub.n can be interchanged with first interchangeable x-ray tube 303 by manual or automatic actuation of linear carousel 311. Those skilled in the art will readily appreciate that the double-headed arrow shown in
(21) Now with reference to
(22) With continued reference to
(23) Those skilled in the art will also readily appreciate that second interchangeable x-ray tubes 405.sub.a- . . . -405.sub.n are similar to second interchangeable x-ray tubes 305.sub.a, 305.sub.b . . . and 305.sub.n described above. The x-ray diffraction system 400 can include any suitable number of second interchangeable x-ray tubes 405 with respective x-ray targets 406 as indicated by additional second interchangeable x-ray tubes 405.sub.a . . . 405n and respective x-ray targets 406.sub.a . . . 406.sub.n. Any suitable second interchangeable x-ray tubes 405, 405.sub.a . . . and/or 405.sub.n can be interchanged with first interchangeable x-ray tube 403 by manual or automatic rotation of rotary carousel 411. Those skilled in the art will readily appreciate that the double-headed arrow shown in
(24) With reference to
(25) With reference now to
(26) The software, when executed by the processor is further operable to execute a command to cause an actuator, e.g. actuator 108, 208, 308, 408, 330 and 430, to mechanically alter at least one of a current x-ray target, an incident beam collimating optic, and a diffracted beam collimating optic, to match the selected x-ray target, incident beam collimating optic and diffracted beam collimating optic for non-destructive below surface measurements of the sample. Those skilled in the art will readily appreciate that the actuator can be automated and/or manually controlled to perform the mechanical alteration described above.
(27) With further reference to
(28) With continued reference to
(29) While shown and described herein as having only first and second interchangeable x-ray generating components those skilled in the art will readily appreciate that a single x-ray diffraction system, can include more than two interchangeable components in order to provide a variety of wavelength and energy options depending on the desired crystallographic measurement depth in a certain sample.
(30) The methods and systems described above and shown in the drawings, provide for superior properties including improved efficiency and reduced cost. It should be recognized that these embodiments are merely illustrative of the principles of the present invention. Numerous modifications and adaptations thereof will be readily apparent to those skilled in the art without departing from the spirit and scope of the invention.