High speed crystallography detector

6057552
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Inventors

Stettner, Roger
Bailey, Howard

Application #

855805

Filed

May-12-1997

Published

May-2-2000

Current US Class

250/208.1
250/370.08
250/370.09
378/98.8

International Classes

G01T 001/24

Field of Search

250/370.08 250/370.09 250/580 250/208.1 378/98.8

Assignee

Advanced Scientific Concepts, Inc. (Santa Barbara, CA)

Examiners

Hannaher; Constatine

Attorney, Agent or Firm

Gottlieb, Rackman and Reisman, P.C.

US Patent References

5043582   X-ray imaging syst...
5220170   X-ray imaging syst...
5245191   Semiconductor sen...
5629524   High speed crystall...

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Abstract
A device for the collection, digitization and analysis of synchrotron x-ray crystallographic data using an area detector which detects x-ray photons directly on arrays of solid state detectors and stores the information on capacitors located on readout unit cell array chips. The device consists of a two dimensional area detector, for amplification, collection and conversion of the diffracted x-rays to electrical signals, drive electronics for providing the timing pulses and biases to the area sensor, output electronics for converting the x-ray signals to digital signals and storing the signals, and a data processor to analyze the digital signal form the output electronics. The solid-state detector array is made up of a variable-area three-dimensional array of detector array chips where each chip is in turn made up of an array of solid-state detectors. Each detector on the detector array chip is electrically connected to a readout unit cell on a readout array chip directly beneath the detector array chip. The readout unit cell contains the circuitry for storage, switching and readout of the x-ray signals.
 
Claims
We claim:

1. A method for the continuous integration and readout of the intensity of a source of x-rays or light striking an area sensor comprising the following steps:

a) exposing an area sensor to the source of x-rays or light, said area sensor comprised of a plurality of detector-array chips, each detector-array chip comprising a plurality of detectors and each array chip being coupled to corresponding readout array chips, each readout array chip comprised of a plurality of unit cells, where a unit cell of each readout array chip is coupled to a corresponding detector in the detector array chip, wherein signals are formed in each of the plurality of detectors indicative of the intensity of the source of x-rays or light exposing said detector,



Description
BACKGROUND OF THE INVENTION

This invention relates to electronic apparatus for capturing and digitizing x-ray patterns. More particularly, it relates to apparatus for imaging the x-ray pattern resulting from the diffraction of x-rays by crystals.

X-ray diffraction patterns are useful in the analysis of molecular structures, such as protein and virus molecules. Protein and virus crystallography imposes stringent requirements on x-ray detectors, particularly where the x-ray source is high flux synchrotron radiation that enables an experiment to be done rapidly. Furthermore, an important and developing protein-crystallography field is time-resolved crystallography using synchrotrons. Monitoring a time-dependent reaction in a crystal can elucidate the time-dependent molecular changes that occur in a chemical reaction. High time resolution speed is often critical to such monitoring

Film has traditionally been used in crystallographic analysis but now competes with storage phosphor (SP) imaging plates. Film has poor dynamic range and non-optimal sensitivity because of low stopping power, particularly for higher crystallographic x-ray energies. SP imaging plates have much greater dynamic range than film and are much more convenient to use because an SP laser readout leads directly to a digitized image. However, in spite of the greater SP stopping power, SP sensitivity is relatively as low as film because of photon losses in the readout system See E. F. Eikenberry, et al, "X-ray Detectors: Comparison of Film, Storage Phosphors and CCD detectors", Conference on Photoelectronic Image Devices, London, September, 1991, Section 3. Neither film nor SP imaging plates provide x-ray analysis in real time; they must first be removed from their apparatus before development or read out. Because of either their low stopping power or low x-ray quantum efficiency and long readout time, film and SP imaging plates perform poorly as synchrotron radiation detectors.
 
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