Ordered mesoporous carbons with body centred cubic pore structure

The preparation of mesoporous carbons possessing a highly ordered body centred cubic (bcc) arrangement of pores by employing a halide- and metal-free synthesis method is reported. Products were characterised using gas physisorption, Small Angle X-ray Diffraction and X-ray Scattering, Raman spectrosc...

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Main Authors: F. Sakina, R.T. Baker
Format: Article
Language:English
Published: Elsevier 2021-07-01
Series:Carbon Trends
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2667056921000286
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spelling doaj-deaf543fba2b42119891fa357c079d9b2021-07-15T04:28:51ZengElsevierCarbon Trends2667-05692021-07-014100051Ordered mesoporous carbons with body centred cubic pore structureF. Sakina0R.T. Baker1School of Chemistry, University of St Andrews, St Andrews, Fife KY16 9ST, Scotland, United KingdomCorresponding author.; School of Chemistry, University of St Andrews, St Andrews, Fife KY16 9ST, Scotland, United KingdomThe preparation of mesoporous carbons possessing a highly ordered body centred cubic (bcc) arrangement of pores by employing a halide- and metal-free synthesis method is reported. Products were characterised using gas physisorption, Small Angle X-ray Diffraction and X-ray Scattering, Raman spectroscopy and High Resolution Transmission Electron Microscopy (TEM). The materials produced in this work had Specific Surface Areas of between 422 and 988 m2g−1 and pore diameters of around 7 nm. From the TEM images, high quality Digital Diffraction Patterns, relating to the ordered mesopore structure, were obtained. On increasing calcination temperature from 350 to 1000°C the bcc structure was retained but its dimensions decreased progressively as the mesopore structure shrank. The effects on the structure and texture of the materials of the three key parameters of polymerisation time and the concentrations of the two catalysts employed, NH4OH and oxalic acid, were studied. Shorter polymerisation times and lower catalyst concentrations gave rise to the most well-ordered products whereas longer polymerisation times with higher concentrations of base and acid catalyst resulted in disordered pore structures.http://www.sciencedirect.com/science/article/pii/S2667056921000286Porous materialsTransmission Electron MicroscopyGas physisorptionResolCubicCarbon
collection DOAJ
language English
format Article
sources DOAJ
author F. Sakina
R.T. Baker
spellingShingle F. Sakina
R.T. Baker
Ordered mesoporous carbons with body centred cubic pore structure
Carbon Trends
Porous materials
Transmission Electron Microscopy
Gas physisorption
Resol
Cubic
Carbon
author_facet F. Sakina
R.T. Baker
author_sort F. Sakina
title Ordered mesoporous carbons with body centred cubic pore structure
title_short Ordered mesoporous carbons with body centred cubic pore structure
title_full Ordered mesoporous carbons with body centred cubic pore structure
title_fullStr Ordered mesoporous carbons with body centred cubic pore structure
title_full_unstemmed Ordered mesoporous carbons with body centred cubic pore structure
title_sort ordered mesoporous carbons with body centred cubic pore structure
publisher Elsevier
series Carbon Trends
issn 2667-0569
publishDate 2021-07-01
description The preparation of mesoporous carbons possessing a highly ordered body centred cubic (bcc) arrangement of pores by employing a halide- and metal-free synthesis method is reported. Products were characterised using gas physisorption, Small Angle X-ray Diffraction and X-ray Scattering, Raman spectroscopy and High Resolution Transmission Electron Microscopy (TEM). The materials produced in this work had Specific Surface Areas of between 422 and 988 m2g−1 and pore diameters of around 7 nm. From the TEM images, high quality Digital Diffraction Patterns, relating to the ordered mesopore structure, were obtained. On increasing calcination temperature from 350 to 1000°C the bcc structure was retained but its dimensions decreased progressively as the mesopore structure shrank. The effects on the structure and texture of the materials of the three key parameters of polymerisation time and the concentrations of the two catalysts employed, NH4OH and oxalic acid, were studied. Shorter polymerisation times and lower catalyst concentrations gave rise to the most well-ordered products whereas longer polymerisation times with higher concentrations of base and acid catalyst resulted in disordered pore structures.
topic Porous materials
Transmission Electron Microscopy
Gas physisorption
Resol
Cubic
Carbon
url http://www.sciencedirect.com/science/article/pii/S2667056921000286
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