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Iodine atoms are generated in specially designed reactors and then injected into the primary gas flow in the COIL cavity.
At proton energies on the order of hundreds of MeV, exceptionally high levels of gas atoms are generated in all elemental constituents of typical iron-based and nickel-based structural alloys, with helium typically on the order of ∼150 appm per dpa and hydrogen at approximately a factor of 3 5 higher.
Using a magnetron discharge, hot atoms are generated by Ar+ bombardment on the target surface.
Pd atoms are generated during the photochemical decomposition and nucleation starts immediately after attaining certain concentration (saturation) of Pd atoms.
Finally, the optimized coordinates of all variable hydrogen atoms are generated by transferring the structural information of the individual modes back onto the protein-ligand complex.
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Gas cluster ions, being aggregates of a few to several thousands of atoms, were generated by the ionization of neutral clusters, which were created by the adiabatic expansion of a high pressure gas into a vacuum.
All hydrogen atoms were generated and the net charges of metal ions were assigned.
Organic hydrogen atoms were generated geometrically (C-H 0.96 Å) and refined with isotropic temperature factors.
The vapor of a mixture of Fe, Co, and Au atoms was generated by sputtering process.
In this technique, a supersaturated vapor of metal atoms is generated by sputtering, where fast atoms, dimers, trimers, and small clusters are sputtered by bombarding the metal cathode with Ar ions.
Genuine object structures can be maintained if dose rates below ~100 e/Å2s are used and the contrast required for detection of single atoms is generated by capturing large image series.
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