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Polymerization results showed that the properties of APPP films can be controlled through optimization of parameters such as discharge power, treatment time and flow rates of the main gas and monomer vapors.
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The morphology and growth rate of NTAs can be easily controlled through optimization of anodization parameters, such as anodization voltage, time, and electrolyte composition [15, 16, 17].
After optimization (see Figure S1 ESI†), the thickness of carbon black/graphite CE was controlled to about 10 μm.
The weighting factor would be changed through optimization control probability.
However, some control was afforded through optimization of reactant stoichiometry and reaction times, and we were able to isolate the desired vancomycin acrylamide derivatives (VA-1 and VA-2) as confirmed by analytical HPLC, MALDI-MS, and various NMR techniques.
This can potentially be increased through optimization of nanoparticle type and shape.
Robustness is achieved through optimization of the AMC mode selection.
The calcination parameters were also obtained through optimization tests.
Furthermore, our speculation about the mechanism of the velocity-dependent rotation F1-bead can be evaluated through such optimization by controlling the interaction not only between the tag-bead and flow, but also between the tag-bead and the surface by immobilizing F1-bead onto a nano-fabricated relief structures to control their mutual friction.
It has been concluded that sufficient improvement in control performance can be achieved through structural optimization.
In this paper, a global displacement control is realized through topology optimization with a global constraint that sets a displacement limit on the whole structure or certain sub-domains.
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