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Laser coatings

The addition of the rare earth improves the corrosion resistance of the laser coatings. The microstmcture becomes more compact by the refining and purifying effect of La20s, which suppresses the corrosion. [Pg.250]

Imaging plates are exposed similar to radiographic films. They are read out by a LASER-scanner to a digital image without any developing process. After optical erasing of the virtual picture the same IP can be used cyclic up to more than 1000 times. The life time is limited by the mechanical stability of the IP s. An IP consists of a flexible polymer carrier which is coated with the sensitive layer. This layer is covered with a thin transparent protective foil. [Pg.468]

Ling X, Pritzker M D, Byerley J J and Burns C M 1998 Confocal scanning laser microscopy of polymer coatings J. Appl. Polym. Sc/. 67 149-58... [Pg.1675]

Figure C 1.5.6. Single Ag nanoparticles imaged with evanescent-wave excitation. (A) Unfiltered photograph showing scattered laser light (514.5 nm) from Ag particles immobilized on a polylysine-coated surface. (B) Bandpass filtered (540-580 nm) photograph taken from a blank Ag colloid sample incubated witli 1 mM NaCl and... Figure C 1.5.6. Single Ag nanoparticles imaged with evanescent-wave excitation. (A) Unfiltered photograph showing scattered laser light (514.5 nm) from Ag particles immobilized on a polylysine-coated surface. (B) Bandpass filtered (540-580 nm) photograph taken from a blank Ag colloid sample incubated witli 1 mM NaCl and...
Better detection limits are obtained using fluorescence, particularly when using a laser as an excitation source. When using fluorescence detection, a small portion of the capillary s protective coating is removed and the laser beam is focused on the inner portion of the capillary tubing. Emission is measured at an angle of 90° to the laser. Because the laser provides an intense source of radiation that can be focused to a narrow spot, detection limits are as low as 10 M. [Pg.604]

One of the mirrors forming the laser cavity is as close to 100% reflecting as possible (99.5%) the other is coated to allow 1% of the radiation to emerge as the laser beam. [Pg.354]

Nonmilitary infrared apphcations for germanium include CO2 lasers (qv), intmsion alarms, and pohce and border patrol surveillance devices. Germanium is used as a thin-film coating for infrared materials to decrease reflection losses or to provide heavy filtering action below 2 p.m. [Pg.281]

Applications. The applications sought for these polymers include composites, stmctural plastics, electronics/circuit boards, aircraft/spacecraft coatings, seals, dental and medical prosthetics, and laser window adhesives. However, other than the early commercialization by Du Pont of the NR-150 B material, Httie development has occurred. These polymers are quite expensive ( 110 to 2200 per kg for monomers alone). [Pg.540]

The laser spray process uses a high power carbon dioxide laser focused onto the surface of the part to be metallized. A carrier gas such as belium blows metal particles into the path of the laser and onto the part. The laser melted particles may fuse to the surface, or may be incorporated into an aHoy in a molten surface up to 1-mm thick. The laser can be used for selective aHoying of the surface, for production of amorphous coatings, or for laser hardening. [Pg.136]


See other pages where Laser coatings is mentioned: [Pg.463]    [Pg.572]    [Pg.249]    [Pg.326]    [Pg.347]    [Pg.123]    [Pg.463]    [Pg.572]    [Pg.249]    [Pg.326]    [Pg.347]    [Pg.123]    [Pg.24]    [Pg.506]    [Pg.542]    [Pg.543]    [Pg.1170]    [Pg.1312]    [Pg.1973]    [Pg.2487]    [Pg.3001]    [Pg.339]    [Pg.383]    [Pg.164]    [Pg.313]    [Pg.330]    [Pg.443]    [Pg.541]    [Pg.127]    [Pg.287]    [Pg.192]    [Pg.249]    [Pg.2]    [Pg.17]    [Pg.129]    [Pg.130]    [Pg.134]    [Pg.137]    [Pg.137]    [Pg.212]    [Pg.57]    [Pg.394]    [Pg.441]    [Pg.452]    [Pg.471]    [Pg.45]   
See also in sourсe #XX -- [ Pg.463 , Pg.464 , Pg.465 , Pg.466 ]




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