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Amino Acid-Containing Phase-Selective Organogelators: A Water-Based Delivery System for Oil Spill Treatment

[Image: see text] The simple structural modification of replacing a terminal carboxylic acid with a primary amide group was found to lower the minimum gelation concentration (MGC), by at least an order of magnitude, for a series of N-lauroyl-l-amino acid phase-selective organogelators in decane. The...

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Autores principales: Chen, Jun, Boott, Charlotte E., Lewis, Lev, Siu, Andrew, Al-Debasi, Renad, Carta, Veronica, Fogh, Amanda A., Kurek, Daniel Z., Wang, Lilo, MacLachlan, Mark J., Hum, Gabriel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7408258/
https://www.ncbi.nlm.nih.gov/pubmed/32775877
http://dx.doi.org/10.1021/acsomega.0c01821
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author Chen, Jun
Boott, Charlotte E.
Lewis, Lev
Siu, Andrew
Al-Debasi, Renad
Carta, Veronica
Fogh, Amanda A.
Kurek, Daniel Z.
Wang, Lilo
MacLachlan, Mark J.
Hum, Gabriel
author_facet Chen, Jun
Boott, Charlotte E.
Lewis, Lev
Siu, Andrew
Al-Debasi, Renad
Carta, Veronica
Fogh, Amanda A.
Kurek, Daniel Z.
Wang, Lilo
MacLachlan, Mark J.
Hum, Gabriel
author_sort Chen, Jun
collection PubMed
description [Image: see text] The simple structural modification of replacing a terminal carboxylic acid with a primary amide group was found to lower the minimum gelation concentration (MGC), by at least an order of magnitude, for a series of N-lauroyl-l-amino acid phase-selective organogelators in decane. The amide-functionalized analogue N-lauroyl-l-alanine-CONH(2) was demonstrated to gel a broad range of solvents from diesel to THF at MGCs of 2.5% w/v or less, as well as to produce gels with a higher thermal stability (ca. 30 °C) and enhanced mechanical properties (5 times increase in complex modulus), compared to the carboxylic acid analogue, N-lauroyl-l-alanine-COOH. These improved properties may be due to the additional hydrogen bonding in the primary amide analogue as revealed by SCXRD. Most significantly for this study, the introduction of the primary amide functionality enabled N-lauroyl-l-alanine-CONH(2) to form a self-assembled fibrillar network in water. The aqueous network could then actively uptake and rapidly gel decane, diesel, and diluted bitumen (“dilbit”) with MGCs of 2.5% w/v or less. This aqueous delivery method is advantageous for oil-remediation applications as no harmful carrier solvents are required and the gel can be easily separated from the water, allowing the oil to be recovered and the gelator recycled.
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spelling pubmed-74082582020-08-07 Amino Acid-Containing Phase-Selective Organogelators: A Water-Based Delivery System for Oil Spill Treatment Chen, Jun Boott, Charlotte E. Lewis, Lev Siu, Andrew Al-Debasi, Renad Carta, Veronica Fogh, Amanda A. Kurek, Daniel Z. Wang, Lilo MacLachlan, Mark J. Hum, Gabriel ACS Omega [Image: see text] The simple structural modification of replacing a terminal carboxylic acid with a primary amide group was found to lower the minimum gelation concentration (MGC), by at least an order of magnitude, for a series of N-lauroyl-l-amino acid phase-selective organogelators in decane. The amide-functionalized analogue N-lauroyl-l-alanine-CONH(2) was demonstrated to gel a broad range of solvents from diesel to THF at MGCs of 2.5% w/v or less, as well as to produce gels with a higher thermal stability (ca. 30 °C) and enhanced mechanical properties (5 times increase in complex modulus), compared to the carboxylic acid analogue, N-lauroyl-l-alanine-COOH. These improved properties may be due to the additional hydrogen bonding in the primary amide analogue as revealed by SCXRD. Most significantly for this study, the introduction of the primary amide functionality enabled N-lauroyl-l-alanine-CONH(2) to form a self-assembled fibrillar network in water. The aqueous network could then actively uptake and rapidly gel decane, diesel, and diluted bitumen (“dilbit”) with MGCs of 2.5% w/v or less. This aqueous delivery method is advantageous for oil-remediation applications as no harmful carrier solvents are required and the gel can be easily separated from the water, allowing the oil to be recovered and the gelator recycled. American Chemical Society 2020-07-23 /pmc/articles/PMC7408258/ /pubmed/32775877 http://dx.doi.org/10.1021/acsomega.0c01821 Text en Copyright © 2020 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Chen, Jun
Boott, Charlotte E.
Lewis, Lev
Siu, Andrew
Al-Debasi, Renad
Carta, Veronica
Fogh, Amanda A.
Kurek, Daniel Z.
Wang, Lilo
MacLachlan, Mark J.
Hum, Gabriel
Amino Acid-Containing Phase-Selective Organogelators: A Water-Based Delivery System for Oil Spill Treatment
title Amino Acid-Containing Phase-Selective Organogelators: A Water-Based Delivery System for Oil Spill Treatment
title_full Amino Acid-Containing Phase-Selective Organogelators: A Water-Based Delivery System for Oil Spill Treatment
title_fullStr Amino Acid-Containing Phase-Selective Organogelators: A Water-Based Delivery System for Oil Spill Treatment
title_full_unstemmed Amino Acid-Containing Phase-Selective Organogelators: A Water-Based Delivery System for Oil Spill Treatment
title_short Amino Acid-Containing Phase-Selective Organogelators: A Water-Based Delivery System for Oil Spill Treatment
title_sort amino acid-containing phase-selective organogelators: a water-based delivery system for oil spill treatment
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7408258/
https://www.ncbi.nlm.nih.gov/pubmed/32775877
http://dx.doi.org/10.1021/acsomega.0c01821
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