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Title: Sequential Infiltration Synthesis of Al2O3 in Polyethersulfone Membranes

Abstract

We report the sequential infiltration synthesis (SIS) of aluminum oxide (Al2O3) into polyethersulfone (PES) ultrafiltration (UF) membranes to form hybrid nanocomposites. SIS relies on chemical interactions between precursor vapors and polymer functional groups, and enables nucleation and growth of inorganic materials to controlled depth. Using in situ Fourier-transform infrared spectroscopy and ellipsometry measurements, we demonstrate that trimethylaluminum associates with the sulfonyl groups in PES, extending the library of SIS-modified polymer nanocomposites to a previously undescribed polymer system and new application space: PES UF membranes. Depth-profiled x-ray photoelectron spectroscopy showed that the trimethylaluminum purge time dictates the extent of Al2O3 infiltration. Energy dispersive spectroscopy revealed the differences between SIS and atomic layer deposition in the membranes. Furthermore, this work demonstrates the viability of SIS to access the entire macroporous volume of PES UF membranes.

Authors:
 [1];  [2];  [2];  [2];  [1];  [2];  [1]
  1. Univ. of Chicago, Chicago, IL (United States); Argonne National Lab. (ANL), Lemont, IL (United States)
  2. Argonne National Lab. (ANL), Lemont, IL (United States)
Publication Date:
Research Org.:
Argonne National Lab. (ANL), Argonne, IL (United States)
Sponsoring Org.:
USDOE Office of Science (SC), Basic Energy Sciences (BES) (SC-22). Materials Sciences & Engineering Division; University of Chicago, Materials Research Science & Engineering Center (MRSEC)
OSTI Identifier:
1491458
Grant/Contract Number:  
AC02-06CH11357
Resource Type:
Accepted Manuscript
Journal Name:
JOM. Journal of the Minerals, Metals & Materials Society
Additional Journal Information:
Journal Volume: 71; Journal Issue: 1; Journal ID: ISSN 1047-4838
Publisher:
Springer
Country of Publication:
United States
Language:
English
Subject:
36 MATERIALS SCIENCE

Citation Formats

Waldman, Ruben Z., Choudhury, Devika, Mandia, David J., Elam, Jeffrey W., Nealey, Paul F., Martinson, Alex B. F., and Darling, Seth B. Sequential Infiltration Synthesis of Al2O3 in Polyethersulfone Membranes. United States: N. p., 2018. Web. doi:10.1007/s11837-018-3142-3.
Waldman, Ruben Z., Choudhury, Devika, Mandia, David J., Elam, Jeffrey W., Nealey, Paul F., Martinson, Alex B. F., & Darling, Seth B. Sequential Infiltration Synthesis of Al2O3 in Polyethersulfone Membranes. United States. https://doi.org/10.1007/s11837-018-3142-3
Waldman, Ruben Z., Choudhury, Devika, Mandia, David J., Elam, Jeffrey W., Nealey, Paul F., Martinson, Alex B. F., and Darling, Seth B. Mon . "Sequential Infiltration Synthesis of Al2O3 in Polyethersulfone Membranes". United States. https://doi.org/10.1007/s11837-018-3142-3. https://www.osti.gov/servlets/purl/1491458.
@article{osti_1491458,
title = {Sequential Infiltration Synthesis of Al2O3 in Polyethersulfone Membranes},
author = {Waldman, Ruben Z. and Choudhury, Devika and Mandia, David J. and Elam, Jeffrey W. and Nealey, Paul F. and Martinson, Alex B. F. and Darling, Seth B.},
abstractNote = {We report the sequential infiltration synthesis (SIS) of aluminum oxide (Al2O3) into polyethersulfone (PES) ultrafiltration (UF) membranes to form hybrid nanocomposites. SIS relies on chemical interactions between precursor vapors and polymer functional groups, and enables nucleation and growth of inorganic materials to controlled depth. Using in situ Fourier-transform infrared spectroscopy and ellipsometry measurements, we demonstrate that trimethylaluminum associates with the sulfonyl groups in PES, extending the library of SIS-modified polymer nanocomposites to a previously undescribed polymer system and new application space: PES UF membranes. Depth-profiled x-ray photoelectron spectroscopy showed that the trimethylaluminum purge time dictates the extent of Al2O3 infiltration. Energy dispersive spectroscopy revealed the differences between SIS and atomic layer deposition in the membranes. Furthermore, this work demonstrates the viability of SIS to access the entire macroporous volume of PES UF membranes.},
doi = {10.1007/s11837-018-3142-3},
journal = {JOM. Journal of the Minerals, Metals & Materials Society},
number = 1,
volume = 71,
place = {United States},
year = {Mon Sep 24 00:00:00 EDT 2018},
month = {Mon Sep 24 00:00:00 EDT 2018}
}

Journal Article:
Free Publicly Available Full Text
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Citation Metrics:
Cited by: 22 works
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Figures / Tables:

Figure 1 Figure 1: The chemical structure of polyethersulfone is shown over an SEM image of the surface of a typical polyethersulfone membrane formed via phase inversion with a 200 nm average pore size. Note that the pore geometry is highly polydisperse and tortuous.

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Works referencing / citing this record:

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