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Simultaneous in situ spectroscopic ellipsometry and gravimetric measurements have been performed to study the morphological evolution of the compound.
The present work is devoted to an investigation of the influence of the micro-structural evolution of the compound zone (iron (carbo nitrides zone) upon the development of hardness profiles in the diffusion zone.
Examples of the resurrection of "lost" structures include the evolution of the compound eye in myodocopid ostracod crustaceans [ 43], the induction of enamel organs in chick oral epidermis [ 44], and the development of wings in stick insects [ 45].
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The temporal evolution of the compounds, if diffusion and convection is neglected, can then be described by the balance equation (2) where N denotes the stoichiometric matrix constructed from the pre-factors α i and β j (see e.g. [ 31]).
The evolution of this compound series leading to optimized candidates with good cellular potency against multiple strains as well as decent in vivo profile is described in this Letter.
Ethylene and CO2 production was also monitored, as the evolution of these compounds reflects the physiological ripening stage of fruits and could also underlie the differences observed in ripening.
Theoretical results revealed a good match with experimental data and showed that the membrane surface, the volatile compound transfer properties and the operating conditions have a significant influence on the evolution of the volatile compound concentration in the liquid phase.
After forming at 150 °C and 200 °C, the microstructure evolution of the intermetallic compound layers, consisting of Al12Mg17 and Al3Mg2 layers at the interface at different regions of the drawn cup in rolling direction (RD) and transverse direction (TD), was investigated.
A mathematical model taking into account the mass and momentum conservation between the different device compartments has been built in order to predict the evolution of the volatile compound concentration.
The microstructure evolution of the intermetallic compound Ni3Al during severe deformation by torsion under high quasi-hydrostatic pressure, which eventually results in the formation of a disordered nanocrystalline structure with a high level of internal stresses, was investigated as a function of the amount of shear strain.
Herein we describe the evolution of these compounds to a novel class of thiophene and thiazole JNK inhibitors that retain favorable solubility, permeability, and P-gp properties for development as CNS agents for treatment of neurodegeneration.
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