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The phase, shape, and size of the resulting core shell NPs are confirmed by transmission electron microscopy and X-ray diffraction.
The experimental results revealed that the phase, shape and morphology, surface property and the photocatalytic activity were greatly affected by the calcination temperatures and amount of sodium present in the different samples.
In particular, this assessment involves a statistical characterization of the competition between crack deflection and crack penetration at matrix/reinforcement interfaces using a modified version of the energy criterion of He and Hutchinson which accounts for the effects of finite reinforcement size, phase volume fractions, phase shape and phase distribution.
In particular, thermolysis and solvothermal method are the two most widely used methods, as they can produce precise control over the phase, shape, size, and stoichiometric composition of the core only and/or the core/shell UCNPs.
Development of facile synthesis strategies for high-quality lanthanide-doped luminescent nanoparticles with controlled composition, crystalline phase, shape, and size is crucial to tune their chemical and optical properties and explore their potential applications in diverse fields.
This Review mainly focuses on thermolysis, hydro(solvo thermal, and Ostwald-ripening, which are the most widely used methods, as they can offer precise control over the phase, shape, size, and stoichiometric composition of the core only and/or the core/shell UCNPs.
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Furthermore, a finite bandwidth phase shaping technique via dissipative control theory is proposed.
Namely, the phase shaping in control bandwidth is achieved with no phase constraint in the higher frequency range.
Therefore, a control augmentation system which achieves the phase shaping in the control bandwidth is easily designed by the presented technique.
This paper discusses a vehicle control augmentation strategy bringing into focus the phase property, and proposes a control bandwidth phase shaping technique which is applicable to control augmentation system design.
Three computational strategies were employed: PHASE shape-based similarity, ROCS shape based similarity search, and EON electrostatic search.
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