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A solvent-free porous liquid comprising hollow nanorod–polymer surfactant conjugates

Liquids having permanent porosity can offer significant processing advantages over their solid counterparts. This has recently led to tremendous activity towards the design and development of intrinsic pores in the liquid phase, predominantly for studies involving gas sequestration. We show here the...

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Autores principales: Kumar, Raj, Dhasaiyan, Prabhu, Naveenkumar, Parinamipura M., Sharma, Kamendra P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9417940/
https://www.ncbi.nlm.nih.gov/pubmed/36132113
http://dx.doi.org/10.1039/c9na00353c
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author Kumar, Raj
Dhasaiyan, Prabhu
Naveenkumar, Parinamipura M.
Sharma, Kamendra P.
author_facet Kumar, Raj
Dhasaiyan, Prabhu
Naveenkumar, Parinamipura M.
Sharma, Kamendra P.
author_sort Kumar, Raj
collection PubMed
description Liquids having permanent porosity can offer significant processing advantages over their solid counterparts. This has recently led to tremendous activity towards the design and development of intrinsic pores in the liquid phase, predominantly for studies involving gas sequestration. We show here the development of a solvent-free mesoporous liquid material based on anisotropic “hollow-core and silica-shell” nanorods conjugated with polymer surfactant chains, which can sequester CO(2) gaseous molecules at 0 °C. Hollow silica nanorods (SiNRs) with average aspect ratios of 2.5, 8, and 11 (as obtained by transmission electron microscopy (TEM) and small angle X-ray scattering) were synthesized using a surfactant-templating methodology, and fluidity/flow processability were imparted by a three-step process involving covalent coupling of an organosilane (OS) canopy to form OS@SiNR, followed by electrostatic grafting of polymer surfactant (PS) chains to the organosilane, and subsequent removal of solvent to provide a solvent-free composite, PS-OS@SiNR. Differential scanning calorimetric and frequency sweep rheological measurements of PS-OS@SiNR indicated melting transition between 15 and 20 °C, while thermal gravimetric analysis showed ca. 20 w/w% silica content (i.e. 9.5% volume fraction of silica and containing ca. 3% volume fraction as voids). As observed using TEM, the surface modification of the nanorods resulting in the formation of PS-OS@SiNR does not lead to blockage of the hollow core. We show that whilst N(2) adsorption in the porous liquid is hindered due to the glassy polymer-surfactant layer at −196 °C, CO(2) adsorption at 0 °C showed 3.3–4.8 w/w% gas uptake. Overall we demonstrate the synthesis of an anisotropic porous liquid which not only sequesters CO(2) but also has the ability to flow like a liquid.
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spelling pubmed-94179402022-09-20 A solvent-free porous liquid comprising hollow nanorod–polymer surfactant conjugates Kumar, Raj Dhasaiyan, Prabhu Naveenkumar, Parinamipura M. Sharma, Kamendra P. Nanoscale Adv Chemistry Liquids having permanent porosity can offer significant processing advantages over their solid counterparts. This has recently led to tremendous activity towards the design and development of intrinsic pores in the liquid phase, predominantly for studies involving gas sequestration. We show here the development of a solvent-free mesoporous liquid material based on anisotropic “hollow-core and silica-shell” nanorods conjugated with polymer surfactant chains, which can sequester CO(2) gaseous molecules at 0 °C. Hollow silica nanorods (SiNRs) with average aspect ratios of 2.5, 8, and 11 (as obtained by transmission electron microscopy (TEM) and small angle X-ray scattering) were synthesized using a surfactant-templating methodology, and fluidity/flow processability were imparted by a three-step process involving covalent coupling of an organosilane (OS) canopy to form OS@SiNR, followed by electrostatic grafting of polymer surfactant (PS) chains to the organosilane, and subsequent removal of solvent to provide a solvent-free composite, PS-OS@SiNR. Differential scanning calorimetric and frequency sweep rheological measurements of PS-OS@SiNR indicated melting transition between 15 and 20 °C, while thermal gravimetric analysis showed ca. 20 w/w% silica content (i.e. 9.5% volume fraction of silica and containing ca. 3% volume fraction as voids). As observed using TEM, the surface modification of the nanorods resulting in the formation of PS-OS@SiNR does not lead to blockage of the hollow core. We show that whilst N(2) adsorption in the porous liquid is hindered due to the glassy polymer-surfactant layer at −196 °C, CO(2) adsorption at 0 °C showed 3.3–4.8 w/w% gas uptake. Overall we demonstrate the synthesis of an anisotropic porous liquid which not only sequesters CO(2) but also has the ability to flow like a liquid. RSC 2019-09-03 /pmc/articles/PMC9417940/ /pubmed/36132113 http://dx.doi.org/10.1039/c9na00353c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Kumar, Raj
Dhasaiyan, Prabhu
Naveenkumar, Parinamipura M.
Sharma, Kamendra P.
A solvent-free porous liquid comprising hollow nanorod–polymer surfactant conjugates
title A solvent-free porous liquid comprising hollow nanorod–polymer surfactant conjugates
title_full A solvent-free porous liquid comprising hollow nanorod–polymer surfactant conjugates
title_fullStr A solvent-free porous liquid comprising hollow nanorod–polymer surfactant conjugates
title_full_unstemmed A solvent-free porous liquid comprising hollow nanorod–polymer surfactant conjugates
title_short A solvent-free porous liquid comprising hollow nanorod–polymer surfactant conjugates
title_sort solvent-free porous liquid comprising hollow nanorod–polymer surfactant conjugates
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9417940/
https://www.ncbi.nlm.nih.gov/pubmed/36132113
http://dx.doi.org/10.1039/c9na00353c
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