Senior Fitness - Exercise and Nutrition for Aging Men and Women
FREE Article Feed for your website.
Home Ownership Magazine
Party Planning Information
Article Marketing Resources
Bio-Medical Research Article Database
Informative Articles on Life, Love and Happiness
Tutorials on Business to Writing
Famous Quotes from Famous People
Song Lyric Information
New US Patent Information
Comprehensive List of Content by Category
Online Auctions and Shopping Related Articles
Article Search
Most Recent Articles
Title: Hybrid maize plant and seed 38R69
Patent Number: 6,909,038 Issued on 06/21/2005 to Kramer

Title: FeRAM with a single access/multiple-comparison operation
Patent Number: 6,704,218 Issued on 03/09/2004 to Rickes,   et al.

Title: Method and design for measuring SRAM array leakage macro (ALM)
Patent Number: 6,778,449 Issued on 08/17/2004 to Breitwisch,   et al.

Title: Knocked-down, rigid, sheathed, gate frame
Patent Number: 6,938,882 Issued on 09/06/2005 to Hadfield, Sr.,   et al.

Title: Marine vessel fuel overflow tank system
Patent Number: 6,929,039 Issued on 08/16/2005 to Vaitses

Title: Mold fill method and system
Patent Number: 6,929,053 Issued on 08/16/2005 to Doty

Title: Methods for the prevention of radon emissions
Patent Number: 6,743,963 Issued on 06/01/2004 to Centofanti,   et al.

Title: Erbium doped fiber amplifier for reducing transient phenomena of OSNR and BER in dynamic WDM system and amplifying method thereof
Patent Number: 7,133,196 Issued on 11/07/2006 to Lee,   et al.

Title: Detection system and method using thermal image analysis
Patent Number: 6,996,256 Issued on 02/07/2006 to Pavlidis

Title: Support arrangement for lighting devices for the illumination of the number plate of motor-vehicles
Patent Number: 6,928,760 Issued on 08/16/2005 to Bincoletto,   et al.

Title: System and method for gathering and automatically processing user and debug data for mobile devices
Patent Number: 6,910,159 Issued on 06/21/2005 to Phillips,   et al.

Title: Method of manufacturing transistor having germanium implant region on the sidewalls of the polysilicon gate electrode
Patent Number: 7,118,979 Issued on 10/10/2006 to Liu,   et al.

Title: Remotely actuated localized pressure and heat apparatus and method of use
Patent Number: 6,793,479 Issued on 09/21/2004 to Merret,   et al.

Title: Ink-jet printing apparatus
Patent Number: 6,786,587 Issued on 09/07/2004 to Koitabashi

Title: Wafer thinning using magnetic mirror plasma
Patent Number: 7,118,992 Issued on 10/10/2006 to Turner,   et al.

Title: High electron mobility transistor and method of manufacturing the same
Patent Number: 6,908,799 Issued on 06/21/2005 to Morizuka

Title: Symbol display apparatus for game machine
Patent Number: 6,880,826 Issued on 04/19/2005 to Inoue

Title: Waste treatment and disposal system
Patent Number: 6,905,609 Issued on 06/14/2005 to Nassef

Title: Microphone shroud and related method of use
Patent Number: 6,935,458 Issued on 08/30/2005 to Owens

Title: Synchronized data communication on a one-wired bus
Patent Number: 7,180,886 Issued on 02/20/2007 to Liu,   et al.

Title: System and a method for preventing tampering with a recorded accumulated running distance of a vehicle
Patent Number: 6,961,671 Issued on 11/01/2005 to Ko

Title: Dental articulation kit and method
Patent Number: 6,932,602 Issued on 08/23/2005 to Hamilton,   et al.

Title: Toothing assembly
Patent Number: 6,910,397 Issued on 06/28/2005 to Schapiro,   et al.

Title: Optical scanner
Patent Number: 6,785,029 Issued on 08/31/2004 to Takada,   et al.

Title: Apparatus for converting floating point values to gamma corrected fixed point values
Patent Number: 6,999,098 Issued on 02/14/2006 to Leather

Title: Laser countermeasure system and method
Patent Number: 6,785,032 Issued on 08/31/2004 to Le Mere

Title: Black generation for color management system
Patent Number: 6,778,300 Issued on 08/17/2004 to Kohler

Title: Bee venom polypeptides and methods of use thereof
Patent Number: 6,780,416 Issued on 08/24/2004 to Spertini

Title: Method and apparatus for providing a variable rate oversampling digital filter for resonance compensation in disk drive servo control systems
Patent Number: 6,785,080 Issued on 08/31/2004 to Sun,   et al.

Title: Control system of internal combustion engine
Patent Number: 7,181,336 Issued on 02/20/2007 to Muto,   et al.

Title: Pretreatment liquid for recording material and image recording method using the pretreatment liquid
Patent Number: 6,786,588 Issued on 09/07/2004 to Koyano,   et al.

Title: Apparatus comprising a particle sorter/dispenser and method therefor
Patent Number: 7,179,420 Issued on 02/20/2007 to Hatcher,   et al.

Title: Microscope focusing apparatus
Patent Number: 6,785,045 Issued on 08/31/2004 to Utsugi

Title: Methods for monitoring performance in optical networks
Patent Number: 6,912,359 Issued on 06/28/2005 to Blumenthal,   et al.

Title: Process to improve the Vss line formation for high density flash memory and related structure associated therewith
Patent Number: 6,784,061 Issued on 08/31/2004 to Yang,   et al.

Title: Method for measuring temperature in a wide range using a tunnel junction
Patent Number: 6,784,012 Issued on 08/31/2004 to Pekola,   et al.

Title: Hyperspectral imaging workstation having visible/near-infrared and ultraviolet image sensors
Patent Number: 6,998,614 Issued on 02/14/2006 to Lanoue

Title: Optical cross-connect with magnetic micro-electro-mechanical actuator cells
Patent Number: 6,785,038 Issued on 08/31/2004 to Hichwa,   et al.

Title: Distributed trunking mechanism for VHF networking
Patent Number: 6,996,088 Issued on 02/07/2006 to Kroon,   et al.

Title: Image quality improvement for liquid crystal displays
Patent Number: 6,999,052 Issued on 02/14/2006 to Pfeiffer,   et al.

Title: System and method for packet network media redirection
Patent Number: 6,996,094 Issued on 02/07/2006 to Cave,   et al.

Title: Objective lens holding apparatus
Patent Number: 6,785,063 Issued on 08/31/2004 to Peng,   et al.

Title: Printing device which operates with at least three brightness steps and methods to be executed therewith for determining printing parameters
Patent Number: 6,987,575 Issued on 01/17/2006 to Maess,   et al.

Title: Power supply apparatus
Patent Number: 6,903,538 Issued on 06/07/2005 to Umeda,   et al.

Title: Multi-combined multi-frequency antenna
Patent Number: 6,867,748 Issued on 03/15/2005 to Hsu

Title: Disk drive writer waveform induced precompensation
Patent Number: 6,785,071 Issued on 08/31/2004 to Elliott,   et al.

Title: Holographic stereogram printing system, holographic stereogram printing method and holographing device
Patent Number: 6,778,302 Issued on 08/17/2004 to Toyoda,   et al.

Title: Machine model estimating device of electric motor control apparatus
Patent Number: 6,903,528 Issued on 06/07/2005 to Komiya

Title: Adaptive uplink/downlink timeslot assignment in a hybrid wireless time division multiple access/code division multiple access communication system
Patent Number: 6,996,078 Issued on 02/07/2006 to Pan,   et al.

Title: Process for producing semiconductor integrated circuit device and semiconductor integrated circuit device
Patent Number: 6,784,038 Issued on 08/31/2004 to Tanabe,   et al.

Title: Optical modulator and image projection display apparatus using it
Patent Number: 6,785,034 Issued on 08/31/2004 to Um,   et al.

Title: Method and apparatus for accurately reading a potentiometer
Patent Number: 6,999,063 Issued on 02/14/2006 to Wright

Title: Reduced visibility surface
Patent Number: 6,778,336 Issued on 08/17/2004 to Tracy

Title: Active matrix organic light emitting display and method of forming the same
Patent Number: 6,784,032 Issued on 08/31/2004 to Lee,   et al.

Title: Method for forming a tunable piezoelectric microresonator
Patent Number: 7,179,392 Issued on 02/20/2007 to Robert,   et al.

Title: Fastening arrangement employing thread-forming screw
Patent Number: 7,179,036 Issued on 02/20/2007 to Griffin,   et al.

Title: Intra-cell mask alignment for improved overlay
Patent Number: 6,784,070 Issued on 08/31/2004 to Carpi,   et al.

Title: Power supply circuit for driving liquid crystal display device
Patent Number: 6,999,058 Issued on 02/14/2006 to Yano,   et al.

Title: Nozzle arrangement with an electrically heated actuator
Patent Number: 6,938,992 Issued on 09/06/2005 to Silverbrook

Title: Document reading apparatus which prevents a discrepancy between the reading results obtained in different reading modes
Patent Number: 6,937,367 Issued on 08/30/2005 to Yamaguchi

Title: Gas turbine shroud structure
Patent Number: 6,932,566 Issued on 08/23/2005 to Suzumura,   et al.

Title: Flow control valve with device for indicating the status of a fluid, particularly for gas containers
Patent Number: 7,134,449 Issued on 11/14/2006 to Frederiksen

Title: Throttle valve especially for high-pressure diesel pumps of injection devices of motor vehicles
Patent Number: 6,910,465 Issued on 06/28/2005 to Trzmiel,   et al.

Title: Method and apparatus for dispensing food granules in aquarium to minimize contamination of water filtration system
Patent Number: 6,910,442 Issued on 06/28/2005 to Berry

Title: Antenna device and portable machine
Patent Number: 6,771,223 Issued on 08/03/2004 to Shoji,   et al.

Title: Sync-time read only memory image binding for limited resource devices
Patent Number: 6,959,330 Issued on 10/25/2005 to McIlroy

Title: Caliper body for a fixed-caliper disk brake
Patent Number: 6,910,555 Issued on 06/28/2005 to Ciotti,   et al.

Title: Method and apparatus providing user with account balance notification of prepaid wireless packet data services
Patent Number: 6,990,330 Issued on 01/24/2006 to Veerepalli,   et al.

Title: Work drive for continuous generation gear grinding machine
Patent Number: 6,979,253 Issued on 12/27/2005 to Thyssen

Title: Rotary sheeter having an improved vacuum means for cross trim removal
Patent Number: 6,895,845 Issued on 05/24/2005 to Snyder

Title: Operational amplifier
Patent Number: 6,903,609 Issued on 06/07/2005 to Yasukouchi,   et al.

Title: Boat lifting device
Patent Number: 6,786,170 Issued on 09/07/2004 to Trowbridge

Title: Baler
Patent Number: 6,910,325 Issued on 06/28/2005 to Viaud

Title: Preamble pattern and magnetic recording system using the pattern
Patent Number: 6,785,074 Issued on 08/31/2004 to Tsuchinaga

Title: Interface receive circuits for modularized data optimization engines and methods therefor
Patent Number: 7,180,909 Issued on 02/20/2007 to Achler

X-ray detector Number:7,435,966 from the United States Patent and Trademark Office (PTO) owispatent

Home    Author Login    Submit Article    Article Search    Add Your Link    Edit Your Link    Contact Us    Advertising    Disclaimer

   

 
Web LinkGrinder.com

Top Breaking News
     Greek, Cypriot Leaders Resume Unification Talks in Nicosia by Nathan Morley
     Indonesia Tobacco Sales Grow, Raising Health Fears
     South Korea Allows Top Defector to Travel Overseas by VOA News

Title: X-ray detector

Abstract: The invention relates to an X-ray detector for detecting X-radiation, as used, in particular, in computer tomographic (CT) systems. The X-ray detector in accordance with the invention is composed of a photo sensor device, which comprises individual detector elements (1), above which scintillator elements (2) are disposed. These convert the incident X-ray light (6) into visible or UV light (7), which is detected by a photodiode (4) located on the detector element (1). In accordance with the invention, a micro-lens (3), which focuses the light (7) departing from the scintillator element (2) onto the photodiode (4), is disposed between the scintillator element (2) and the detector element (1). It is possible, in this manner, to use large areas of the detector element (1) for further electronic components (5) outside the photodiode (4), and, at the same time, to ensure a high DQE (Detection Quantum Efficiency) in that the light (7) departing from the scintillator element (2) is virtually fully exploited. The crosstalk from scatter radiation from adjacent detector elements is effectively prevented simultaneously.

Patent Number: 7,435,966 Issued on 10/14/2008 to Vogtmeier,   et al.


Inventors: Vogtmeier; Gereon (Aachen, DE), Morales Serrano; Francisco (Eindhoven, NL), Steadman; Roger (Aachen, DE)
Assignee: Koninklijke Philips Electronics N.V. (Eindhoven, NL)
Appl. No.: 10/543,563
Filed: January 22, 2004
PCT Filed: January 22, 2004
PCT No.: PCT/IB2004/050046
371(c)(1),(2),(4) Date: July 27, 2005
PCT Pub. No.: WO2004/068168
PCT Pub. Date: August 12, 2004


Foreign Application Priority Data

Jan 28, 2003 [EP] 03100166

Current U.S. Class: 250/370.11
Current International Class: G01T 1/24 (20060101)
Field of Search: 250/370.11


References Cited [Referenced By]

U.S. Patent Documents
4180737 December 1979 Kingsley
5617463 April 1997 Beierlein
6215844 April 2001 Adachi et al.
6221687 April 2001 Abramovich
6252285 June 2001 Furumiya et al.
6307243 October 2001 Rhodes
6472665 October 2002 Ishisaka et al.
6474665 November 2002 Fink et al.
6895077 May 2005 Karellas et al.
2003/0042425 March 2003 Tashiro et al.
Foreign Patent Documents
0 583 844 Feb., 1994 EP
04276587 Oct., 1992 JP
Primary Examiner: Sung; Christine

Claims



The invention claimed is:

1. An X-ray detector, comprising: a photosensor device, including: at least one detector element, including: a photosensor disposed centrally on the detector element; additional scatter diodes; and electronic components located in the detector element outside an area of the photosensor; scintillator elements; and micro-lenses are disposed between the photosensor device and the scintillator elements, wherein said micro-lenses focus light emitted from the scintillator elements onto parts of the photosensor device.

2. The X-ray detector as claimed in claim 1, wherein the photosensor device comprises a matrix of individual detector elements.

3. The X-ray detector as claimed in claim 1, wherein the photosensor includes at least one photodiode.

4. The X-ray detector as claimed in claim 1, wherein the photosensor forms only one pail of the surface of the detector element.

5. The X-ray detector as claimed in claim 1, wherein the electronic components surround the photo sensor.

6. The X-ray detector as claimed in claim 3, wherein the micro-lenses have a focal length and a distance from the detector elements such that the incident light in the area of a detector element is focused onto the surface of the photodiode of the detector element.

7. The X-ray detector as claimed in claim 2, wherein one micro-lens is assigned to each detector element.

8. The X-ray detector as claimed in claim 1, wherein the micro-lenses have a square base area.

9. The X-ray detector as claimed in claim 1, wherein the micro-lenses directly adjoin the scintillator elements,

10. The X-ray detector as claimed in claim 9, wherein the surfaces of the sides of the micro-lenses facing the scintillator elements are matched to the surfaces of the scintillator elements.

11. The X-ray detector as claimed in claim 10, wherein the surfaces of the sides of the micro-lenses facing the scintillator elements are planar and lie flat against the scintillator elements.

12. The X-ray detector as claimed in claim 10, wherein the surfaces of the sides of the micro-lenses facing the scintillator elements are convex and matched to corresponding concave shapes of the scintillator elements.

13. The X-ray detector as claimed in claim 1, wherein the X-ray detector comprises optical filters.

14. The X-ray detector as claimed in claim 2, wherein the detector elements are components of CMOS chips.

15. A computer tomograph with an X-ray detector as claimed in claim 1.

16. An x-ray detector comprising: one or more scintillator elements; one or more detector elements, each detector element having a surface and comprising one or more photodiodes in a light detection sub-area of the surface and one or more electrical components in a second sub-area of the surface, wherein at least one of the one or more photodiodes is disposed in a central area of a corresponding one of the one or more detector elements and the second sub-area of the corresponding detector element is located outside of the central area wherein at least one of the one or more detector elements includes multiple scatter diodes; and one or more micro-lenses disposed between said one or more scintillator elements and said one or more detector elements, wherein each micro-lens focuses light from a given scintillator onto a corresponding photodiode.

17. The x-ray detector of claim 16, wherein said one or more micro-lens have a square lens.

18. An x-ray detector comprising: one or more scintillator elements, which converts x-ray radiation into UV light; one or more detector elements, and one or more micro-lenses that focus light from a given scintillator onto a corresponding photosensor located in a first sub-portion of a surface of a detector element and deflect lateral incident light onto a second sub-portion of the surface of the detector element; wherein at least one of the one or more detector elements includes multiple scatter diodes.
Description



The invention relates to an X-ray detector for detecting X-radiation, which is equipped with scintillator elements and a photosensor device. X-ray detectors of this kind are required, in particular, for computer tomographic (CT) systems.

In computer tomography, as in other image-producing X-ray methods, the X-radiation exerting its effect on the patient under examination is attenuated in accordance with the density and chemical composition of the tissue and bones. The photons of the X-radiation to be detected are then absorbed in the X-ray detector, initially by a scintillator material, which in turn re-emits photons in the range of visible or ultraviolet light. The light thus arising then falls onto a photosensor device, which generally comprises a multiplicity of individual detector elements, which are also designated channels. Accordingly, an X-ray detector may comprise from some thousands to several million pixels, wherein the size of the individual pixels may lie in the range from 0.03 to 30 mm.sup.2, especially in the range from 1 to 2 mm.sup.2. Photodiodes on CMOS chips are typically used hereby for light detection.

The resolution capability of an X-ray detector naturally increases along with the number of pixels. The resolution is, however, critically influenced negatively by crosstalk, in which scatter radiation gains access to detector elements adjacent to the provided detector element. In order to reduce this crosstalk, the X-radiation can pass through an anti-scatter grid focused on the focal point of the radiation source. In addition, absorber plates, which absorb oblique-incidence scatter radiation and thereby prevent it from reaching the adjacent detector element, may lie between the individual scintillator crystals.

In addition to the photodiode that converts the incident light into an electrical signal, the presence on the individual detector elements of further electronic components, especially transistors, which serve for processing the signals, is necessary. The problem hereby arises that the incident-light surface of a pixel is exploited only partially if the photodiode forms only one part of the surface of the detector element The DQE (Detection Quantum Efficiency) is reduced accordingly. If, on the other hand, the photodiode surface is increased relative to the overall surface of the detector element, the surface usable for further electronic components for processing the signals is reduced accordingly. Compromises are therefore necessary, and these cannot represent the optimum in either respect.

It is therefore an object of the invention, starting from the prior art, to create an X-ray detector in which the incident-light surface of every pixel is exploited virtually in its entirety, and in which, nevertheless, an adequate, usable area is available for further electronic components on the surface of each detector element. In addition, the problem of crosstalk is to be further reduced.

The object is achieved in accordance with the invention by means of an X-ray detector with a photosensor device and scintillator elements, wherein disposed between the photosensor device and the scintillator elements are micro-lenses, which focus the light departing from the scintillator elements onto particular areas or parts of the photosensor device. The invention further relates to a computer tomograph with an X-ray detector in accordance with the invention.

The focusing, by means of micro-lenses located between the scintillation material and the photosensor device which converts the incident light into electrical signals, of the light arising as a result of the conversion, with the aid of the scintillator elements, of the X-radiation, considerably reduces the above-mentioned crosstalk, since the micro-lenses can laterally deflect incident radiation adjacent to the sensitive areas of a detector element and can accordingly prevent this radiation from entering neighboring detector elements. In addition, light in the boundary area of a pixel can also be used virtually to the full in this manner without the risk arising that this light will enter neighboring detector elements, so the overall quantum efficiency can be considerably improved.

The invention can be applied especially advantageously when the photosensor device comprises individual detector elements, as is typical for X-ray detectors. A matrix of detector elements of this kind may comprise up to several million individual elements. By means of the disposal of a micro-lens between the detector element and the associated scintillator element, the light can be focused accordingly onto a particular area of the detector element. Photodiodes are advantageously used to detect the light, wherein each detector element usefully comprises at least one photodiode. However, detection may perfectly well also take place with the aid of avalanche diodes or photomultipliers.

In particular, the invention enables especially large areas of the surface of the detector elements to be used for further electronic components, such as preprocessing electronics. The photodiode itself accordingly constitutes only one part of the surface. Nevertheless, the part of the incident-light surface that is not located vertically above the photodiode must not be dispensed with, since the light in this area is focused onto the photodiode by the micro-lens. As a result, despite the comparatively large useful area for further electronic components, the DQE is virtually unreduced, meaning that no compromises are necessary in this regard.

The positioning of the photodiode on the detector element depends fundamentally on the design of the micro-lens. However, this micro-lens is usefully symmetrical in design, so the light falling onto the detector element is focused onto the center of the detector element. Accordingly, the photodiode should also be disposed centrally on the detector element.

The micro-lens is expediently selected in respect of its focal length, and positioned in respect of its distance from the detector element, in such a way that the incident light in the area of a detector element is focused precisely onto the surface of the photodiode of the detector element. In this case, virtually 100% of the incident-light surface is used, although the photodiode forms only a part of the surface of the detector element.

Typically, one micro-lens is assigned to each detector element in order to focus the light falling on the detector element exclusively onto the photodiode belonging to the detector element. The incidence of light onto the photodiode of an adjacent detector element is, accordingly, virtually excluded. In addition, the micro-lenses may be of a design such that lateral incident light is deflected onto areas of the detector element outside the photodiode.

As regards the efficiency of the X-ray detector in accordance with the invention, square-lens structures with a square base area of the micro-lens have proved especially advantageous. Through the provision of square pixels combined with square-lens structures, the most complete possible use of the incident-light surface is also enabled in an especially simple manner.

As regards the surface geometry of the micro-lenses, various options are conceivable. In particular, the surface of the side of the micro-lens facing the scintillator element may also be matched to this surface of the scintillator element, and the micro-lens may directly adjoin the scintillator element. The correct positioning of the micro-lens relative to the scintillator element and, if applicable, the antiscatter grid, is also achieved in this manner. It is hereby possible both to design the corresponding micro-lens surface to be planar, and to couple it flat against the scintillator element, and to design the micro-lens surface to be convex if the associated scintillator element has a corresponding concave shape. A concave shape of this kind may be produced, for example, in the crystal compression structure of a scintillator element produced from individual scintillator particles. In particular, matrix of detector elements may take place owing to the arched micro-lens shape if the surfaces of the micro-lenses are matched to the corresponding surfaces of the scintillator elements.

In addition to the positioning of a photodiode preferably in the center of the detector element, it is also possible to accommodate on the detector element additional scatter diodes, which are intended to detect, in particular, scatter radiation. This scatter radiation is caused, in particular, by crosstalk of neighboring pixels and, with a suitable geometry of the micro-lens, is deflected to areas of the detector element outside of the actual photodiode. The provision of these additional scatter diodes makes it possible to make further geometrical statements regarding the vertically incident direct radiation and the laterally incident radiation. In additional, the crosstalk can be monitored in this manner.

It is, of course, possible to provide the X-ray detector in accordance with the invention with additional features as known from the prior art, such as optical filters, a scatter-radiation grid focused on the focal point of the radiation source or X-ray-absorbing shields (separators) incorporated into the scintillator configuration. The use of CMOS chips for accommodating the detector elements has proved especially advantageous.

It goes without saying that, even if the X-ray detector in accordance with the invention is destined to be used primarily in a computer tomograph, its use in other areas, such as nondestructive materials testing, is also possible.

The invention will be further described with reference to examples of embodiments shown in the drawings, to which, however, the invention is not restricted.

FIG. 1 shows the side view of a segment of an X-ray detector in accordance with the invention.

FIG. 2 shows the view from above onto a detector element of an X-ray detector in accordance with the invention.

FIG. 1 shows, schematically, the structure of a pixel which belongs to the X-ray detector in accordance with the invention. This comprises a detector element which, in its entirety, is provided with the reference number 1, and centrally located on the surface of which is a photodiode 4. Above the detector element 1 is located a micro-lens 3, which focuses the light 7 departing from the scintillator element 2. For its part, the scintillator element 2 converts the X-ray light 6 falling onto the scintillator element 2 into visible or ultraviolet light 7. The light 8 focused through the micro-lens 3 falls onto the photodiode 4, which in turn converts the incident light into electrical signals. The photodiode 4 hereby covers only a small part of the detector element 1, whereas various electronic components 5 serving for the further processing of the electrical signals are located outside the photodiode 4. Nevertheless, owing to the focusing of the light 7 by the micro-lens 3, virtually the entire incident-light surface originating from the scintillator element 2 is exploited, since the light 7 falling vertically onto the micro-lens 3 is focused virtually in its entirety onto the photodiode 4. At the same time, the micro-lens 3 is able to deflect laterally-incident light onto areas of the detector element 1 outside the photodiode 4. The invention thereby combines a large useful area for further electronic components 5 with an extensive exploitation of the incident light and an associated high quantum efficiency (DQE).

FIG. 2 shows, in plan view, a detector element 1 as part of the X-ray detector in accordance with the invention. The detector element 1 is here square in design, wherein the photodiode 4 is located in the center of the detector element 1. Outside the photodiode 4 electronic components 5 are again located on the detector element 1. The micro-lens 3 focuses the incident light onto the photodiode 4.

*


Free Web Sudoku Puzzles.
Solve with your browser.
1       6   9 4 5
    7   1       3
      3          
    1   5   4   9
  6           7  
2   8   9   6    
          9      
7       2   1    
4 3 9   7       8
What is it?



Add Your Site · Terms Of Service · Privacy Policy


DISCLAIMER
Linkgrinder is a free service that searches the Internet and indexes all files found so that you may search quickly and easily for shared files. These files are created and made available individually by users whose identity we are not aware of and who we have no control over. In essence we function like a search engine tool; these files ARE NOT STORED OR SERVED BY OUR NETWORK. We are not responsible for any materials obtained by using our service. We do not monitor any of the contents of these files. These files may contain viruses, illegal materials, materials inappropriate for minors, offensive files and the like. BY USING OUR SERVICE, YOU ASSUME FULL RESPONSIBILITY FOR DOWNLOADING THESE MATERIALS AND WILL INDEMNIFY US FOR ANY DAMAGES THAT MAY BE INCURRED.

For More Specific Information VIEW OUR TERMS OF SERVICE.

Thank you and Enjoy!