Preparation of MgO-Templated N-Doped Mesoporous Carbons from Polyvinylpyrrolidone: Effect of Heating Temperature on Pore Size Distribution

Magnesium oxide (MgO)-templated nitrogen (N)-doped mesoporous carbons were prepared by using polyvinylpyrrolidone (PVP) as a raw material and magnesium lactate (Mglac) as a precursor for the MgO template to examine the influence of heating temperature and MgO precursor (magnesium acetate was used in...

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Main Authors: Tomoya Takada, Mayu Kurihara
Format: Article
Language:English
Published: MDPI AG 2019-04-01
Series:C
Subjects:
Online Access:https://www.mdpi.com/2311-5629/5/2/15
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author Tomoya Takada
Mayu Kurihara
author_facet Tomoya Takada
Mayu Kurihara
author_sort Tomoya Takada
collection DOAJ
description Magnesium oxide (MgO)-templated nitrogen (N)-doped mesoporous carbons were prepared by using polyvinylpyrrolidone (PVP) as a raw material and magnesium lactate (Mglac) as a precursor for the MgO template to examine the influence of heating temperature and MgO precursor (magnesium acetate was used in similar previous studies) on the pore size and nitrogen content. The MgO-templated carbon was obtained by heating the PVP/Mglac mixture in an inert atmosphere followed by an acid treatment for MgO removal. The mesopore size of the carbons was approximately 4 nm regardless of heating temperature, corresponding to the crystallite size of the MgO template estimated via X-ray diffraction. This indicates that the mesopore of approximately 4 nm was generated using the MgO template. However, larger pores were also found to exist. This result indicates that the larger pores generated through processes other than the MgO templating, likely the thermal decomposition of PVP, are contained in the templated carbon. The volume of the larger pores and the specific surface area increased with increasing heating temperature. The nitrogen content of the carbon decreased as the heating temperature was increased, but it was found to be irrelevant to the MgO precursor.
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spelling doaj.art-6ad019cc60224d6598031a091028a6f42022-12-21T19:09:17ZengMDPI AGC2311-56292019-04-01521510.3390/c5020015c5020015Preparation of MgO-Templated N-Doped Mesoporous Carbons from Polyvinylpyrrolidone: Effect of Heating Temperature on Pore Size DistributionTomoya Takada0Mayu Kurihara1Department of Applied Chemistry and Bioscience, Faculty of Science and Technology, Chitose Institute of Science and Technology, Bibi, Chitose 066-8655, JapanDepartment of Applied Chemistry and Bioscience, Faculty of Science and Technology, Chitose Institute of Science and Technology, Bibi, Chitose 066-8655, JapanMagnesium oxide (MgO)-templated nitrogen (N)-doped mesoporous carbons were prepared by using polyvinylpyrrolidone (PVP) as a raw material and magnesium lactate (Mglac) as a precursor for the MgO template to examine the influence of heating temperature and MgO precursor (magnesium acetate was used in similar previous studies) on the pore size and nitrogen content. The MgO-templated carbon was obtained by heating the PVP/Mglac mixture in an inert atmosphere followed by an acid treatment for MgO removal. The mesopore size of the carbons was approximately 4 nm regardless of heating temperature, corresponding to the crystallite size of the MgO template estimated via X-ray diffraction. This indicates that the mesopore of approximately 4 nm was generated using the MgO template. However, larger pores were also found to exist. This result indicates that the larger pores generated through processes other than the MgO templating, likely the thermal decomposition of PVP, are contained in the templated carbon. The volume of the larger pores and the specific surface area increased with increasing heating temperature. The nitrogen content of the carbon decreased as the heating temperature was increased, but it was found to be irrelevant to the MgO precursor.https://www.mdpi.com/2311-5629/5/2/15N-doped mesoporous carbonpolyvinylpyrrolidoneMgO templatepore size distributionspecific surface area
spellingShingle Tomoya Takada
Mayu Kurihara
Preparation of MgO-Templated N-Doped Mesoporous Carbons from Polyvinylpyrrolidone: Effect of Heating Temperature on Pore Size Distribution
C
N-doped mesoporous carbon
polyvinylpyrrolidone
MgO template
pore size distribution
specific surface area
title Preparation of MgO-Templated N-Doped Mesoporous Carbons from Polyvinylpyrrolidone: Effect of Heating Temperature on Pore Size Distribution
title_full Preparation of MgO-Templated N-Doped Mesoporous Carbons from Polyvinylpyrrolidone: Effect of Heating Temperature on Pore Size Distribution
title_fullStr Preparation of MgO-Templated N-Doped Mesoporous Carbons from Polyvinylpyrrolidone: Effect of Heating Temperature on Pore Size Distribution
title_full_unstemmed Preparation of MgO-Templated N-Doped Mesoporous Carbons from Polyvinylpyrrolidone: Effect of Heating Temperature on Pore Size Distribution
title_short Preparation of MgO-Templated N-Doped Mesoporous Carbons from Polyvinylpyrrolidone: Effect of Heating Temperature on Pore Size Distribution
title_sort preparation of mgo templated n doped mesoporous carbons from polyvinylpyrrolidone effect of heating temperature on pore size distribution
topic N-doped mesoporous carbon
polyvinylpyrrolidone
MgO template
pore size distribution
specific surface area
url https://www.mdpi.com/2311-5629/5/2/15
work_keys_str_mv AT tomoyatakada preparationofmgotemplatedndopedmesoporouscarbonsfrompolyvinylpyrrolidoneeffectofheatingtemperatureonporesizedistribution
AT mayukurihara preparationofmgotemplatedndopedmesoporouscarbonsfrompolyvinylpyrrolidoneeffectofheatingtemperatureonporesizedistribution