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Page 84
Bernard Dennis Cullity. 3–3 The Bragg law. Two geometrical facts are worth
remembering: (1) The incident beam, the normal to the reflecting plane, and the
diffracted beam are always coplanar. - ...
Bernard Dennis Cullity. 3–3 The Bragg law. Two geometrical facts are worth
remembering: (1) The incident beam, the normal to the reflecting plane, and the
diffracted beam are always coplanar. - ...
Page 89
Some way of satisfying the Bragg law must be devised, and this can be done by
continuously varying either X or 0 during the experiment. The ways in which
these quantities are varied distinguish the three main diffraction methods: X 6
Laue ...
Some way of satisfying the Bragg law must be devised, and this can be done by
continuously varying either X or 0 during the experiment. The ways in which
these quantities are varied distinguish the three main diffraction methods: X 6
Laue ...
Page 125
Diffraction by a crystal rotated through the Bragg angle. characteristic of the
specimen while the latter is influenced by slight adjustments of the experimental
apparatus. Moreover, in the visual comparison of the intensities of diffraction lines
, it is ...
Diffraction by a crystal rotated through the Bragg angle. characteristic of the
specimen while the latter is influenced by slight adjustments of the experimental
apparatus. Moreover, in the visual comparison of the intensities of diffraction lines
, it is ...
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LibraryThing Review
User Review - ron_benson - LibraryThingExcellent reference book. Needs some updating in terms of advances in detector technology. Read full review
Contents
PROPERTIES OF XRAYs | 1 |
THE GEOMETRY OF CRYSTALs | 29 |
THE DIRECTIONs of DIFFRACTED BEAMs | 78 |
Copyright | |
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Elements of X-ray Diffraction Bernard Dennis Cullity,Stuart R. Stock,Stuart R.. Stock Snippet view - 2001 |
Common terms and phrases
absorption alloy analysis angle applied atoms axis Bragg calculated camera cause circle composition consider constant contains continuous copper counter counting crystal cubic curve decreases depends described determined diffracted beam diffraction lines diffractometer direction distance effect electrons elements energy equal equation error example factor Figure film fluorescent given gives grain hexagonal incident beam increases indices intensity involved kind known lattice Laue length located material means measured metal method normal observed obtained occur orientation parallel parameter particular pattern percent phase photograph plane plotted pole position possible powder produced projection proportional pulses radiation rays reference reflection relation relative result rotation sample scattering shown shown in Fig shows simple single solid solution spacing specimen stress structure substance surface temperature thickness tion tube twin unit cell usually vector voltage wave wavelength x-ray