Mechanism-enabled population balance modeling (ME-PBM) was recently defined as the use of experimentally established (i.e., disproof-based, deliberately minimalistic, and pseudo-elementary step-based) mechanisms as more rigorous input for population balance models. ME-PBM addresses three long-sought goals: mechanism-based prediction and control of particle size distributions (PSDs), fitting PSDs by various mechanisms to test which mechanisms are refuted versus supported, and then also extracting rate constants for the most strongly supported mechanism from the wealth of kinetics information buried within the PSD. A full ordinary differential equation (ODE) approach is developed to the PBModeling that is a resurrection of Smoluchowski's 1918...
A review is presented of the pioneering 1950 model (V. K. LaMer, R. H. Dinegar, Theory, Production a...
Aerosol processes often are modeled using the population balance equation (PBE). This article prese...
Comprehensive representation of nanoparticle dynamics is necessary for understanding nucleation and ...
The concept of Mechanism-Enabled Population Balance Modeling (ME-PBM) is reported, illustrated by it...
The effects of microfiltration removal of filterable dust on nanoparticle formation kinetics and par...
Concerns have increased regarding the efficacy of population balance modeling (PBM) for determining ...
The two-step particle synthesis mechanism, also known as the Finke-Watzky (1997) mechanism, has emer...
Ligands are known to affect the formation, stabilization, size, and size-dispersion control of trans...
The two-step particle synthesis mechanism, also known as the Finke-Watzky (1997) mechanism, has emer...
Ligands are known to affect the formation, stabilization, size, and size-dispersion control of trans...
The two-step particle synthesis mechanism, also known as the Finke–Watzky (1997) mechanism, has emer...
Aerosol processes are often model using the population balance equation (PBE). This article present...
Properties of nanoparticles are size-dependent, therefore nucleation and growth of particle is often...
Aerosol processes often are modeled using the population balance equation (PBE). This article prese...
The formation of nanoparticles in microemulsion droplets is a promising technology for the control o...
A review is presented of the pioneering 1950 model (V. K. LaMer, R. H. Dinegar, Theory, Production a...
Aerosol processes often are modeled using the population balance equation (PBE). This article prese...
Comprehensive representation of nanoparticle dynamics is necessary for understanding nucleation and ...
The concept of Mechanism-Enabled Population Balance Modeling (ME-PBM) is reported, illustrated by it...
The effects of microfiltration removal of filterable dust on nanoparticle formation kinetics and par...
Concerns have increased regarding the efficacy of population balance modeling (PBM) for determining ...
The two-step particle synthesis mechanism, also known as the Finke-Watzky (1997) mechanism, has emer...
Ligands are known to affect the formation, stabilization, size, and size-dispersion control of trans...
The two-step particle synthesis mechanism, also known as the Finke-Watzky (1997) mechanism, has emer...
Ligands are known to affect the formation, stabilization, size, and size-dispersion control of trans...
The two-step particle synthesis mechanism, also known as the Finke–Watzky (1997) mechanism, has emer...
Aerosol processes are often model using the population balance equation (PBE). This article present...
Properties of nanoparticles are size-dependent, therefore nucleation and growth of particle is often...
Aerosol processes often are modeled using the population balance equation (PBE). This article prese...
The formation of nanoparticles in microemulsion droplets is a promising technology for the control o...
A review is presented of the pioneering 1950 model (V. K. LaMer, R. H. Dinegar, Theory, Production a...
Aerosol processes often are modeled using the population balance equation (PBE). This article prese...
Comprehensive representation of nanoparticle dynamics is necessary for understanding nucleation and ...