Elucidating the Role of Fluorine on Gas Transport Through Fluorinated Polymer Membranes

Fully fluorinated polymers (i.e., perfluoropolymers) are a unique class of materials that have shown exceptional separation performance due to their anomalous thermodynamic partitioning compared to typical hydrocarbon polymers. The goal of this work is to elucidate the role of fluorine on gas permea...

Full description

Bibliographic Details
Main Author: Wu, Albert Xiuyuan
Other Authors: Smith, Zachary P.
Format: Thesis
Published: Massachusetts Institute of Technology 2022
Online Access:https://hdl.handle.net/1721.1/139238
https://orcid.org/0000-0003-4823-2831
_version_ 1826206301384867840
author Wu, Albert Xiuyuan
author2 Smith, Zachary P.
author_facet Smith, Zachary P.
Wu, Albert Xiuyuan
author_sort Wu, Albert Xiuyuan
collection MIT
description Fully fluorinated polymers (i.e., perfluoropolymers) are a unique class of materials that have shown exceptional separation performance due to their anomalous thermodynamic partitioning compared to typical hydrocarbon polymers. The goal of this work is to elucidate the role of fluorine on gas permeability, diffusion, and sorption through the systematic synthesis and characterization of hydrocarbon, partially fluorinated, and fully fluorinated polymer structures, with a particular focus on the development of structure–property relationships and connecting the behavior of hydrocarbon and fully fluorinated polymers. The effect of the higher sorption selectivity displayed by perfluoropolymers on separation performance was demonstrated through a refinement of upper bound theory. Inclusion of aliphatic fluorine groups resulted in higher diffusion due to increased interchain spacing caused by the larger size of fluorine, while inclusion of aromatic fluorine groups resulted in significantly higher diffusion but also lower diffusion selectivity due to weakened interchain interactions as well as increased interchain spacing. Through the lens of the dual-mode sorption model, increased polymer fluorination affected only the Henry sorption mode through increased amounts of unfavorable equilibrium mixing interactions while the sorption in the Langmuir mode was relatively unchanged. Within the scope of the non-equilibrium lattice fluid model, increased fluorine content resulted in larger unfavorable deviations from ideal mixing, particularly for CH4. Increased enthalpic selectivity with fluorine content was also observed, driving the increase in infinite dilution sorption selectivity. Additionally, an updated group contribution method for estimating fractional free volume in polymers was developed to streamline calculation for any polymer structure.
first_indexed 2024-09-23T13:27:17Z
format Thesis
id mit-1721.1/139238
institution Massachusetts Institute of Technology
last_indexed 2024-09-23T13:27:17Z
publishDate 2022
publisher Massachusetts Institute of Technology
record_format dspace
spelling mit-1721.1/1392382022-01-15T03:26:43Z Elucidating the Role of Fluorine on Gas Transport Through Fluorinated Polymer Membranes Wu, Albert Xiuyuan Smith, Zachary P. Massachusetts Institute of Technology. Department of Chemical Engineering Fully fluorinated polymers (i.e., perfluoropolymers) are a unique class of materials that have shown exceptional separation performance due to their anomalous thermodynamic partitioning compared to typical hydrocarbon polymers. The goal of this work is to elucidate the role of fluorine on gas permeability, diffusion, and sorption through the systematic synthesis and characterization of hydrocarbon, partially fluorinated, and fully fluorinated polymer structures, with a particular focus on the development of structure–property relationships and connecting the behavior of hydrocarbon and fully fluorinated polymers. The effect of the higher sorption selectivity displayed by perfluoropolymers on separation performance was demonstrated through a refinement of upper bound theory. Inclusion of aliphatic fluorine groups resulted in higher diffusion due to increased interchain spacing caused by the larger size of fluorine, while inclusion of aromatic fluorine groups resulted in significantly higher diffusion but also lower diffusion selectivity due to weakened interchain interactions as well as increased interchain spacing. Through the lens of the dual-mode sorption model, increased polymer fluorination affected only the Henry sorption mode through increased amounts of unfavorable equilibrium mixing interactions while the sorption in the Langmuir mode was relatively unchanged. Within the scope of the non-equilibrium lattice fluid model, increased fluorine content resulted in larger unfavorable deviations from ideal mixing, particularly for CH4. Increased enthalpic selectivity with fluorine content was also observed, driving the increase in infinite dilution sorption selectivity. Additionally, an updated group contribution method for estimating fractional free volume in polymers was developed to streamline calculation for any polymer structure. Ph.D. 2022-01-14T14:58:39Z 2022-01-14T14:58:39Z 2021-06 2021-05-24T19:34:42.695Z Thesis https://hdl.handle.net/1721.1/139238 https://orcid.org/0000-0003-4823-2831 In Copyright - Educational Use Permitted Copyright MIT http://rightsstatements.org/page/InC-EDU/1.0/ application/pdf Massachusetts Institute of Technology
spellingShingle Wu, Albert Xiuyuan
Elucidating the Role of Fluorine on Gas Transport Through Fluorinated Polymer Membranes
title Elucidating the Role of Fluorine on Gas Transport Through Fluorinated Polymer Membranes
title_full Elucidating the Role of Fluorine on Gas Transport Through Fluorinated Polymer Membranes
title_fullStr Elucidating the Role of Fluorine on Gas Transport Through Fluorinated Polymer Membranes
title_full_unstemmed Elucidating the Role of Fluorine on Gas Transport Through Fluorinated Polymer Membranes
title_short Elucidating the Role of Fluorine on Gas Transport Through Fluorinated Polymer Membranes
title_sort elucidating the role of fluorine on gas transport through fluorinated polymer membranes
url https://hdl.handle.net/1721.1/139238
https://orcid.org/0000-0003-4823-2831
work_keys_str_mv AT wualbertxiuyuan elucidatingtheroleoffluorineongastransportthroughfluorinatedpolymermembranes