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In addition, dried particle samples were resuspended after lyophilization without aggregation.
Hysteresis loop of dried particle powder was measured using a vibrating sample magnetometer.
Hysteresis loop of dried particle powder is shown in Figure 4c.
Structural properties of the shell are included in the model and influence the predicted dried particle morphology.
c Hysteresis loop of dried particle powder, showing that the suspension consists of a mixture of superparamagnetic and ferromagnetic nanoparticles.
These simulations demonstrate the model is capable of predicting dried particle morphology together with other properties of interest such as moisture profiles and moments of the solids particle-size distribution.
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The formulation and structure of initial liquid emulsion have an impact on the efficiency of encapsulation (encapsulated oil quantity) in spray dried particles (dried emulsions) and must be adapted to spray drying.
However, spray dried particles were larger than jet milled particles, these particles exhibited improved aerodynamic properties.
The crystallinity of spray dried particles was slightly decreased with increasing inlet temperature and concentration.
The dissolution of spray dried particles was markedly improved as compared to commercial artemisinin.
SEM study suggested that the inlet temperature and feed concentration impacted on the particle size of the spray dried particles.
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