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X-ray θ 2θ, ω- and φ-scanning, AFM and electron backscattered diffraction techniques were used to reveal the significance of growing deposition conditions on the first buffer layer.
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Ice crystals that grow by deposition have much lower densities than solid ice because of the air pockets occurring within the volume of the crystal.
The size of aggregates grows with deposition time.
Films with carbon content from 15 to 22 at.% were grown at deposition rates as high as 0.12 μm s−1.
Figure 1b,c show X-ray diffraction (XRD) patterns of Bi thin films grown at deposition rates of 2.7 Å/s (RF power: 10 W) and 32.7 Å/s (RF power: 100 W), respectively, before and after thermal annealing.
The droplet then grows by deposition of water molecules in the air (vapor) onto the ice crystal surface where they are collected.
Its growing morphology and deposition rate are dependent on the etching depth of as-deposited TaN in the KOH solution.
This indicated that the columnar crystals would be synergistically growing during the deposition process.
Duck and chicken VLDLR genes probably perform similar function in the development of growing oocytes and deposition of yolk lipoprotein.
Displacement of the margin probably reflects a gradual increase in size of the urate nidus, growing by multicentric deposition of urate crystals.
At the upper or distal end of the internode is the maturation zone, where cells have stopped growing and secondary wall deposition predominates [ 2].
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