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In UHP Fe, conversely, the presence of He strongly increases the defect number density.
The presence of doped boron improves the electron density and increases the defect sites, resulting in the acceleration of electron transfer rate through the graphitic network.
It is inferred that KOH reaction potentially increases the defect sites, and produced the oxygen functional groups in the respected areas.
In fact, the increase of MA duration induces more strains and increases the defect concentration in the crystalline structure of elemental powders that leads to the destabilization of part of them into amorphous phase.
Whenever the soaking time of acid treatment increases, the defect sites in the outside appear, besides it can be seen some short length MWNTs in F-MWNT-4 h sample compared to others.
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Two explanations are postulated: the elastic deformation degrades the stability and increases the defects of the passive film; it increases the surface energy (ΔGS), causing the effective potential (EV) to move negative.
As is well known, with the temperature increases, the defect-related non-radiative recombination would be more and more serious and then results in the quenching of PL.
In order to increase the defect detection limit of the SATIR test bed, several possibilities have been evaluated.
Finally, by increasing the defect thickness leads to the presence of multiple defect modes which can be used to design a multichanneled filter.
Additionally, by increasing the defect thickness, it is also possible to have a filter with multiple resonant peaks, leading to a multichannel filter.
The rapid potential decrease in the Cu-containing alloys was primarily due to the Cu-dissolution from the film, which increased the defect density of the passive film and hence decreased its stability.
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