Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
12014 | Biomaterials | 2005 | 5 Pages |
Abstract
Inverted colloidal crystal geometry has been recently utilized in the design of highly organized 3D cell scaffolds. The regularity of the resulting scaffolds enables computational modeling of scaffold properties. In this work we probe the resistance offered by these scaffolds to nutrient transport, by using Brownian dynamics and Monte Carlo simulations to model the effective nutrient diffusivity. Brownian dynamics simulations indicate that the effective diffusivity for small nutrients in the scaffold, Deff=0.3D0Deff=0.3D0, where D0D0 is the free solution diffusivity. Further, results of Monte Carlo simulations for dilute solutions of larger particles show that the DeffDeff decreases linearly with the size of the particles.
Keywords
Related Topics
Physical Sciences and Engineering
Chemical Engineering
Bioengineering
Authors
Sachin Shanbhag, Jung Woo Lee, Nicholas Kotov,