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On more closely packed planes, ND, structure and thickness change simultaneously.
The presence of the ND structure was confirmed by Raman spectroscopy, X-ray diffraction, and scanning electron microscopy analyses.
Clearly, these are edge states, and the PD structure shows contribution from two zones, compared to the ND structure with one.
As mentioned by Liu [19], the END structure is substantially more comprehensive than the ND structure in that it can reflect not only a negative dependence structure but also a positive one, to some extent.
As is mentioned in Liu [7], the END structure is substantially more comprehensive than the ND structure in that it can reflect not only a negative dependence structure but also a positive one, to some extent.
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The investigated desired optimum condition growth to control ND structures is shown in Table 1.
The process of synthesis of NDs by PECVD method involves Ni catalyst deposition and growth of ND structures in specific conditions.
It was found that the selective catalyst played an important role in producing ND structures by PECVD method on glass substrate in this research.
CVD methods [9] are widely utilized techniques to fabricate nanostructures such as the ND structures in large quantities, and much progress has been made on the yield, the synthesis costs, or the purity of the products.
Four quantities are calculated to characterize the nature of the electronic and transport properties on two-circled structures, with PD and defect-free (ND) structures: the total density of states N(E), the local density of states ρ i,E), the participation number P(E) and the transmission function T(E).
The main differences between the predictors usually rely in the set of D and ND structures adopted to train the method (for example, only those structures with ligands that are drugs known to be orally available) and the specific subset of all possible pocket descriptors that were considered.
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