scholarly journals Reactive Monte Carlo Simulations for Charge Regulation of Colloidal Particles

Author(s):  
Amin Bakhshandeh ◽  
Derek Frydel ◽  
Yan Levin
2015 ◽  
Vol 143 (6) ◽  
pp. 064509 ◽  
Author(s):  
W. Rżysko ◽  
S. Sokołowski ◽  
T. Staszewski

Soft Matter ◽  
2019 ◽  
Vol 15 (21) ◽  
pp. 4351-4362
Author(s):  
Ruben Zakine ◽  
Dasith de Silva Edirimuni ◽  
Doru Constantin ◽  
Paolo Galatola ◽  
Jean-Baptiste Fournier

Within the framework of a discrete Gaussian model, we present analytical results, Monte Carlo simulations, and comparison with experimental data for the interaction between colloidal particles embedded in a lamellar phase.


Author(s):  
Matthew T. Johnson ◽  
Ian M. Anderson ◽  
Jim Bentley ◽  
C. Barry Carter

Energy-dispersive X-ray spectrometry (EDS) performed at low (≤ 5 kV) accelerating voltages in the SEM has the potential for providing quantitative microanalytical information with a spatial resolution of ∼100 nm. In the present work, EDS analyses were performed on magnesium ferrite spinel [(MgxFe1−x)Fe2O4] dendrites embedded in a MgO matrix, as shown in Fig. 1. spatial resolution of X-ray microanalysis at conventional accelerating voltages is insufficient for the quantitative analysis of these dendrites, which have widths of the order of a few hundred nanometers, without deconvolution of contributions from the MgO matrix. However, Monte Carlo simulations indicate that the interaction volume for MgFe2O4 is ∼150 nm at 3 kV accelerating voltage and therefore sufficient to analyze the dendrites without matrix contributions.Single-crystal {001}-oriented MgO was reacted with hematite (Fe2O3) powder for 6 h at 1450°C in air and furnace cooled. The specimen was then cleaved to expose a clean cross-section suitable for microanalysis.


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