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Copper containing particles were identified with electron microscopy and by energy dispersive X-ray (EDX) analysis.
Prior to T2 evaluation the particles were identified in the data matrix and separated into distinct particles by suitable algorithms.
Each obtained CaCO3 particles were identified as calcite (cubic-like rhombohedral), which is in high demand in many industrial applications.
Among the new mZVIs, significant differences in reactivity were observed and the most reactive particles were identified.
Fe-bearing particles were identified, using Transmission Electron Microscopy, as large (200 nm–1 µm) aggregates of smaller (20 30 nm) spherical colloids of chemically-reactive ferrihydrite.
By varying native starch concentrations (15 20 wt%) and oil fractions (5 20 wt%), optimal concentrations for the formation of emulsion microgel particles were identified.
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The formation of Au-Pd alloy particles was identified.
The splitting of γ′ particles was identified as one of the main dissolution mechanisms.
Further, speed of feed particles are identified experimentally at various operating frequencies.
Neutron channeling between fuel particles is identified as the effect most responsible for the different neutronic results.
The modified particles are identified by infrared and raman spectroscopy, differential scanning calorimetry (DSC), and particle size analyzer.
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