IP Library Granted Patent US 9,269,468
Granted Patent B2
US 9,269,468 · App. 13/872,196 · Granted Feb 23, 2016

X-ray beam conditioning

Inventors: Paul Anthony Ryan (Darlington, GB); John Leonard Wall (Durham, GB); John Spence (Durham, GB)
Assignee: Jordan Valley Semiconductors Ltd.
G21K1/06G01N23/20G01N2223/308G01N2223/315G01N2223/316
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Quick Facts
Patent No.
US 9,269,468
App. No.
13/872,196
Granted
Feb 23, 2016
Kind
B2
Abstract

An X-ray optical device includes a crystal containing a channel, which passes through the crystal and has multiple internal faces. A mount is configured to hold the crystal in a fixed location relative to a source of an X-ray beam and to shift the crystal automatically between two predefined dispositions: a first disposition in which the X-ray beam passes through the channel while diffracting from one or more of the internal faces, and a second disposition in which the X-ray beam passes through the channel without diffraction by the crystal.

Claims (27)

1. An X-ray optical device, comprising:

a crystal containing a channel, which passes through the crystal and has multiple internal faces;

a mount, which is configured to hold the crystal in a fixed location relative to a source of an X-ray beam and to shift the crystal automatically between two predefined dispositions by rotating the crystal about an axis:

a first disposition in which the X-ray beam passes through the channel while diffracting from one or more of the multiple internal faces; and

a second disposition in which the X-ray beam passes through the channel without diffraction by the crystal;

an automatically-controlled actuator, which is energized in order to rotate the crystal about the axis into one of the two predefined dispositions, wherein the automatically-controlled actuator is energized in order to rotate the crystal into the second disposition; and

a stop, which engages the mount in the first disposition and is adjustable so as to fix an angle of entry of the X-ray beam into the channel.

2. The X-ray optical device according to claim 1 , wherein the axis coincides with an endpoint of the channel.

3. The X-ray optical device according to claim 1 , further comprising a return spring, which is configured to return the crystal to the other of the two predefined dispositions when the actuator is released.

4. The X-ray optical device according to claim 1 , and comprising at least one X-ray mirror, which is configured to collect X-rays emitted from the source so as to generate and direct the X-ray beam into the channel of the crystal.

5. An X-ray optical device, comprising:

a crystal containing a channel, which passes through the crystal and has multiple internal faces;

a mount, which is configured to hold the crystal in a fixed location relative to a source of an X-ray beam and to shift the crystal automatically between two predefined dispositions:

a first disposition in which the X-ray beam passes through the channel while diffracting from one or more of the multiple internal faces; and

a second disposition in which the X-ray beam passes through the channel without diffraction by the crystal; and

at least one X-ray mirror, which is configured to collect X-rays emitted from the source so as to generate and direct the X-ray beam into the channel of the crystal,

wherein the at least one X-ray mirror comprises:

a first X-ray mirror, which is positioned so as to intercept the X-rays emitted from the source at a first angle so as to direct a first beam into the channel of the crystal; and

a second X-ray mirror, which is positioned so as to intercept the X-rays emitted from the source at a second angle, different from the first angle, so as to direct a second beam toward a target while bypassing the channel.

6. The X-ray optical device according to claim 5 , wherein the first and second X-ray mirrors are operative to intercept the X-rays so as to generate the first and second beams simultaneously, and wherein the X-ray optical device comprises an exit aperture, which is automatically positionable so as to permit either the first beam, after transit of the channel, or the second beam to exit the X-ray optical device, while blocking the other of the first and second beams.

7. A method for conditioning an X-ray beam, comprising:

positioning a crystal containing a channel, which passes through the crystal and has multiple internal faces, so that the X-ray beam enters the channel; and

shifting the crystal automatically between two predefined dispositions by rotating the crystal about an axis by an automatically-controlled actuator, which is energized in order to rotate the crystal about the axis into one of the two redefined dispositions, while a return spring returns the crystal to the other of the two predefined dispositions when the automatically-controlled actuator is released, the two predefined dispositions comprising:

a first disposition in which the x-ray beam passes through the channel while diffracting from one or more of the multiple internal faces; and

a second disposition in which the X-ray beam passes through the channel without diffraction by the crystal.

8. The method according to claim 7 , wherein the axis coincides with an endpoint of the channel.

9. The method according to claim 7 , further comprising applying an X-ray mirror to collect X-rays emitted from a source so as to generate and direct the X-ray beam into the channel of the crystal.

Assignments (2)
CHANGE OF NAME Recorded Apr 13, 2021
From: JORDAN VALLEY SEMICONDUCTORS LTD.
To: BRUKER TECHNOLOGIES LTD.
Reel/Frame 055994/0565 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 29, 2013
From: RYAN, PAUL ANTHONY; WALL, JOHN LEONARD; SPENCE, JOHN
To: JORDAN VALLEY SEMICONDUCTORS LTD.
Reel/Frame 030303/0769 →
Continuity (2)
Provisional Application 61640062 · Apr 30, 2012
Related Publication 20130287178A1 · Oct 31, 2013