Books: 'Microscopes à rayons X' – Grafiati (2024)

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Relevant bibliographies by topics / Microscopes à rayons X / Books

To see the other types of publications on this topic, follow the link: Microscopes à rayons X.

Author: Grafiati

Published: 4 June 2021

Last updated: 29 January 2023

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1

Poulsen, Henning Friis. Three-dimensional X-ray diffraction microscopy: Mapping polycrystals and their dynamics. Berlin: Springer, 2004.

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2

International Conference on X-Ray Microscopy (6th 1999 Berkeley, Calif.). X-ray microscopy: Proceedings of the sixth international conference, Berkeley, CA, 2-6 August 1999. Edited by Meyer-Ilse Werner 1955-1999, Warwick Tony, and AttwoodDavidT. Melville, N.Y: American Institute of Physics, 2000.

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3

Garratt-Reed,A.J. Energy-dispersive X-ray analysis in the electron microscope. Oxford: BIOS, 2003.

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4

Symposium B on Epitaxial Thin Film Growth and Nanostructures (1997 Strasbourg, France). Recent developments in thin film research: Epitaxial growth and nanostructures, electron microscopy, and x-ray diffraction : proceedings of Symposium B on Epitaxial Thin Film Growth and Nanostructures and proceedings of Symposium C on Recent Developments in Electron Microscopy and X-Ray Diffraction of Thin Film Structures of the 1997 ICAM/E-MRS Spring Conference, Strasbourg, France, June 16-20, 1997. Edited by RitterG and Symposium C on Recent Developments in Electron Microscopy and X-Ray Diffraction of Thin Film Structures (1997 : Strasbourg, France). Amsterdam: Elsevier, 1997.

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5

Morgan,A.John. X-ray microanalysis in electron microscopy for biologists. Oxford [Oxfordshire]: Oxford University Press Oxford [Oxfordshire], 1985.

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6

DeGroot,RodneyC. Sem X-ray microanalysis of tracheid cell walls in southern yellow pine sapwood treated with water-dispersible pentachlorophenol. Madison, WI: USDA, Forest Service, Forest Products Laboratory, 1986.

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7

DeGroot,RodneyC. Sem X-ray microanalysis of tracheid cell walls in southern yellow pine sapwood treated with water-dispersible pentachlorophenol. Madison, WI: USDA, Forest Service, Forest Products Laboratory, 1986.

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8

DeGroot,RodneyC. Sem X-ray microanalysis of tracheid cell walls in southern yellow pine sapwood treated with water-dispersible pentachlorophenol. Madison, WI: USDA, Forest Service, Forest Products Laboratory, 1986.

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9

DeGroot,RodneyC. Sem X-ray microanalysis of tracheid cell walls in southern yellow pine sapwood treated with water-dispersible pentachlorophenol. Madison, WI: USDA, Forest Service, Forest Products Laboratory, 1986.

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10

DeGroot,RodneyC. Sem X-ray microanalysis of tracheid cell walls in southern yellow pine sapwood treated with water-dispersible pentachlorophenol. Madison, WI: USDA, Forest Service, Forest Products Laboratory, 1986.

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11

DeGroot,RodneyC. Sem X-ray microanalysis of tracheid cell walls in southern yellow pine sapwood treated with water-dispersible pentachlorophenol. Madison, WI: USDA, Forest Service, Forest Products Laboratory, 1986.

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12

Turcu,I.C.E. X-rays from laser plasmas: Generation and applications. Chichester: Wiley, 1999.

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13

Lucchesi, Xavier. Africa x-ray: Photographies aux rayons X. Trézélan [France]: Filigranes, 2008.

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14

Rochow, Theodore George. Introduction to microscopy by means of light, electrons, X rays, or acoustics. 2nd ed. New York: Plenum Press, 1994.

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15

Canada. Direction de l'hygiène du milieu. Dispositifs à rayons X pour l'inspection des bagages - radioprotection. Ottawa, Ont: Direction de l'hygiène du milieu, 1994.

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16

Blois,CharlesN.de. Notes pratiques sur l'hydrothérapie, l'électricité et les rayons X. [Trois-Rivières, Québec?: P.V. Ayotte, 1994.

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17

Fultz, Brent. Transmission Electron Microscopy and Diffractometry of Materials. 4th ed. Berlin, Heidelberg: Springer Berlin Heidelberg, 2013.

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18

Burkel, Eberhard. Inelastic scattering of x-rays with very high energy resolution. New York: Springer-Verlag, 1991.

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19

Tucker,WallaceH. The x-ray universe. Cambridge, Mass: Harvard University Press, 1985.

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20

Maharaj,H.P. Appareils d'analyse aux rayons X - exigences et recommandations en matière de sécurité. Ottawa, Ont: Direction de l'hygiène du milieu, 1994.

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21

RX, 2003 (2003 Strasbourg France). Rayons X et matière: RX 2003 : Strasbourg, France, 9-11 décembre 2003. Les Ulis codex A, France: EDP Sciences, 2004.

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22

Elton,RaymondC. X-ray lasers. Boston: Academic Press, 1990.

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23

J,DukeP., and MichetteAlanG, eds. Modern microscopies: Techniques and applications. New York: Plenum Press, 1990.

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24

Johnson,R.Barry. Interferometric and optical tests of water window imaging X-ray microscopes: Final report. [Washington, DC: National Aeronautics and Space Administration, 1993.

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25

Maharaj,H.P. Dispositifs à rayons X pour l'inspection des bagages: Précautions à prendre. Ottawa, Ont: Direction de l'hygiène du milieu, 1993.

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26

Symonds,G.R. Étude nationale des cliniques de mammographie canadiennes. Ottawa, Ont: Santé Canada, 1997.

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27

milieu, Canada Direction de l'hygiène du. Exigences relatives à l'équipement à rayons X industriel, son utilisation et son installation. Ottawa, Ont: Direction de l'hygiène du milieu, 1987.

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28

Zonta, Pat. Jessica's x-ray. Toronto: Firefly Books, 2002.

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29

Rochow, Theodore George. An Introduction to Microscopy by Means of Light, Electrons, X-Rays, or Ultrasound. Boston, MA: Springer US, 1995.

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30

milieu, Canada Direction de l'hygiène du. Radioprotection dans l'exercice de la mammographie: Recommandations concernant l'utilisation des appareils de mammographie. Ottawa, Ont: Direction de l'hygiène du milieu, 1995.

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31

Michette,AlanG. Optical systems for soft X rays. New York: Plenum Press, 1986.

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32

Charles,PhilipA. Exploring the X-ray universe. Cambridge: Cambridge University Press, 1995.

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33

Michette,AlanG., GraemeR.Morrison, and ChristopherJ.Buckley. X-Ray Microscopy III: Proceedings of the Third International Conference, London, September 3–7, 1990. Michette Alan G, 2013.

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34

Michette,AlanG., GraemeR.Morrison, and ChristopherJ.Buckley. X-Ray Microscopy III: Proceedings of the Third International Conference, London, September 3-7 1990. Springer, 2013.

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35

Morrison,G.R., and A.G.Michette. X-Ray Microscopy III: Proceedings (Springer Series in Optical Sciences). Springer, 1992.

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36

X-ray microscopy III: Proceedings of the third international conference, London, September 3-7, 1990. Berlin: Springer-Verlag, 1992.

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37

(Editor),G.Morrison, and C.H.Buckley(Editor), eds. X-ray Microscopy (Series in Optical Sciences). Springer-Verlag Berlin and Heidelberg GmbH & Co. K, 1992.

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38

Scanning electron microscopy and x-ray microanalysis. 3rd ed. New York, NY: Kluwer Academic/Plenum Publishers, 2004.

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39

Newbury,DaleE., JosephI.Goldstein, DavidC.Joy, JohnHenryJ.Scott, and NicholasW.M.Ritchie. Scanning Electron Microscopy and X-Ray Microanalysis. Springer, 2017.

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40

Goldstein, Joseph, DaleE.Newbury, Patrick Echlin, DavidC.Joy, and Charles Fiori. Scanning Electron Microscopy and X-Ray Microanalysis: A Text for Biologists, Materials Scientists, and Geologists. Springer, 2013.

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41

Goldstein, Joseph, DaleE.Newbury, CharlesE.Lyman, Patrick Echlin, and DavidC.Joy. Scanning Electron Microscopy and X-Ray Microanalysis: Third Edition. Springer London, Limited, 2012.

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42

Goldstein, Joseph, DaleE.Newbury, CharlesE.Lyman, Eric Lifshin, AltonD.RomigJr, Patrick Echlin, DavidC.Joy, and Charles Fiori. Scanning Electron Microscopy and X-Ray Microanalysis: A Text for Biologists, Materials Scientists, and Geologists. Springer, 2011.

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43

Goldstein, Joseph, DaleE.Newbury, Eric Lifshin, Patrick Echlin, DavidC.Joy, and Charles Fiori. Scanning Electron Microscopy and X-Ray Microanalysis: A Text For Biologists, Materials Scientists, And Geologists. Springer, 2013.

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44

Goldstein, Joseph, DaleE.Newbury, CharlesE.Lyman, Patrick Echlin, and DavidC.Joy. Scanning Electron Microscopy and X-Ray Microanalysis: Third Edition. Springer, 2013.

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45

J, Jacobsen Chris, TrebesJamesE, and Society of Photo-optical Instrumentation Engineers., eds. Soft X-ray microscopy: 19-21 July 1992, San Diego, California. Bellingham, Wash., USA: SPIE, 1993.

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46

Poulsen, Henning Friis. Three-Dimensional X-Ray Diffraction Microscopy: Mapping Polycrystals and their Dynamics. Springer, 2014.

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47

Poulsen, Henning Friis. Three-Dimensional X-Ray Diffraction Microscopy: Mapping Polycrystals and Their Dynamics. Springer Berlin / Heidelberg, 2013.

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48

(Editor),W.MeyerIlse, T.Warwick(Editor), and D.Attwood(Editor), eds. X-Ray Microscopy: Proceedings of the VI International Conference (Aip Conference Proceedings). AIP Press, 2000.

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49

Fultz, Brent, and JamesM.Howe. Transmission Electron Microscopy and Diffractometry of Materials 3rd Edition. Springer, 2008.

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50

Bell, Les, and Garrett-Reed. Energy Dispersive X-Ray Analysis in the Electron Microscope. Taylor & Francis Group, 2003.

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Books: 'Microscopes à rayons X' – Grafiati (2024)

FAQs

What is a microscope that can magnify up to 500 000 times? ›

The Scanning Electron Microscope (SEM) is a type of electron microscope that uses a focused beam of electrons to create high-resolution images of the surface of a sample. The SEM has the highest magnification of any microscope, with the ability to magnify objects up to 500,000 times their original size.

Which type of microscope can magnify up to 100000 times and can view the internal organelles? ›

A transmission electron microscope (TEM). Electrons, like electromagnetic radiation, can behave as waves, but with wavelengths of 0.005 nm, they can produce much better resolution than visible light. An EM can produce a sharp image that is magnified up to 100,000×.

How much resolution can an electron microscope obtain what can we see with this microscope )? ›

The wavelength of electrons is much smaller than that of photons (2.5 pm at 200 keV). Thus the resolution of an electron microscope is theoretically unlimited for imaging cellular structure or proteins. Practically, the resolution is limited to ~0.1 nm due to the objective lens system in electron microscopes.

Which microscope can magnify samples by 1000000 times? ›

An SEM can magnify a sample by about one million times (1,000,000x) at the most. Because a sample can be used in its natural state, the SEM is the easiest electron microscope to use.

What does 1000 times magnification look like? ›

With 1000x magnification, you can see very small details of objects that are not visible to the naked eye. For example, you can see the fine structure of cells, bacteria, and other microorganisms. You can also see the details of small structures such as hairs, fibers, and crystals.

What magnifies up to 100000 times? ›

The scanning electron microscope (SEM) is one of the most powerful microscopes available, capable of magnifying objects up to 100,000 times their actual size. But how does this incredible instrument work? At its core, the SEM uses a beam of electrons to create a detailed image of an object.

Which microscope can magnify 10000 times? ›

Scanning Electron Microscope (SEM) image at 10,000x magnification. Scanning Electron Microscope (SEM) image at 20,000x magnification.

Which microscope can magnify objects up to 2000000 times? ›

Electron Microscopy

Light microscopes can reach about 1000x magnification, while electron microscopes can reach 2,000,000x magnification.

What is the best microscope to see organelles? ›

The electron microscope is necessary to see smaller organelles like ribosomes, macromolecular assemblies, and macromolecules. With light microscopy, one cannot visualize directly structures such as cell membranes, ribosomes, filaments, and small granules and vesicles.

What microscope has the highest resolution? ›

The electron microscope is widely regarded as having the best resolution among all types of microscopes. It is capable of observing ultrafine details that are not visible with other types of microscopes.

What is the highest resolution microscope in the world? ›

The technnique, called Electron ptychography, was developed by a team of researchers led by David Muller of Cornell University (USA) and the images were published in Science on 21 May 2021. The “ptychographic” microscope is capable of magnifying atoms by 100 million times.

What microscope can be used to examine DNA? ›

The kind of microscope that is required to view a DNA structure is an electron microscope. This is because this microscope has the ability to view minor molecules. Similarly, an electron microscope is needed to view various protein molecules.

Which microscope can zoom in 40 400 times? ›

Celestron – Celestron Labs – Monocular Head Compound Microscope – 40-400x Magnification – Adjustable Mechanical Stage – Includes 10 Prepared Slides.

How much does an electron microscope cost? ›

According to the type, configuration, components, resolution, and other important factors, instruments can cost $75,000 - $10,000,000. New Scanning Electron Microscopes (SEM) can cost $70,000 to $1,000,000, while used instruments can cost $2,500 to $550,000 depending on condition.

Who was the first person to use a microscope? ›

In the 1660s, another Dutchman, Antonie van Leeuwenhoek (1632-1723) made microscopes by grinding his own lenses. His simple microscopes were more like magnifying glasses, with only one lens. But the high-quality, hand-ground lenses could magnify an object by up to 200 times.

What is the highest magnification on a microscope? ›

When it comes to what we consider "light" microscopes, electron microscopes provide the greatest magnification. A scanning transmission electron (STED) microscope has reached resolutions down to a 50 picometer level and provided magnifications of up to 10,000,000x.

What is the maximum magnification of a microscope? ›

The maximum magnification that can be achieved by an optical microscope typically ranges from 500x to 1500x. While this level of magnification has many purposes and can be useful for a number of practical applications, it is considerably lower than the magnification that can be achieved with electron microscopy.

What is the most magnified microscope? ›

The most powerful microscope known (most powerful meaning greatest resolution) is the Transmission Electronic Microscope (TEM) developed by the japanese company Hitachi, with a resolution of 0.043 nanometers, or 43 picometers. This is less than half of the radius of most atoms.

What type of microscope is used to magnify specimens up to 100000 times? ›

With electron microscopy (EM), it is possible to magnify a structure 100,000 times. Two kinds of electron microscopic technologies have been developed: transmission electron microscopy (TEM) and scanning electron microscopy (SEM).

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