Title Information
Title
Geometry and Mechanics of Self-Assembled Colloidal Membranes
Name: Personal
Name Part
Jia, Leroy
Role
Role Term: Text
creator
Name: Personal
Name Part
Powers, Thomas
Role
Role Term: Text
Advisor
Name: Personal
Name Part
Pelcovits, Robert
Role
Role Term: Text
Advisor
Name: Personal
Name Part
Matzavinos, Anastasios
Role
Role Term: Text
Reader
Name: Corporate
Name Part
Brown University. Department of Applied Mathematics
Role
Role Term: Text
sponsor
Origin Information
Copyright Date
2018
Physical Description
Extent
12, 114 p.
digitalOrigin
born digital
Note: thesis
Thesis (Ph. D.)--Brown University, 2018
Genre (aat)
theses
Abstract
Colloidal membranes are an example of a novel bioinspired soft material with rich properties that stem from the interplay of geometry and molecular order. A colloidal membrane is a two-dimensional monolayer composed of colloidal particles--in this case, rod-shaped viruses roughly 1 micron long and 6 nm in diameter--that are bound by entropic depletion forces. Because of their relatively large (micron) size, these membranes can be manipulated directly in the laboratory, offering a promising avenue to study other similar systems of biological importance such as lipid bilayer membranes or the endoplasmic reticulum. Perhaps the most notable feature of these colloidal membranes is their propensity to bend into exotic shapes such as saddles, unduloids, helicoidal ribbons, and closed vesicles under appropriate conditions. Strikingly, many of these shapes have zero mean curvature and/or negative Gaussian curvature, which contrasts with the case for other commonly encountered membranes and materials. Using a combination of theory and experiments, we put forth a minimal model based only on geometric quantities|such as length, curvature, and geodesic torsion to describe these phases mathematically and characterize the conditions under which they appear. Our effective model is most valid when the twist penetration depth of the membrane is much smaller than the membrane length scale|if this is the case, then it provides a way to describe membrane configurations without resorting to calculation of the cumbersome full liquid crystal energy.
Subject
Topic
Soft Matter
Language
Language Term (ISO639-2B)
English
Record Information
Record Content Source (marcorg)
RPB
Record Creation Date (encoding="iso8601")
20180618
Identifier: DOI
10.26300/0gc4-c598
Access Condition: rights statement (href="http://rightsstatements.org/vocab/InC/1.0/")
In Copyright
Access Condition: restriction on access
Collection is open for research.
Type of Resource (primo)
dissertations