The Enhanced Hydrogen Storage Capacity of Carbon Fibers: The Effect of Hollow Porous Structure and Surface Modification
In this study, highly porous carbon fiber was prepared for hydrogen storage. Porous carbon fiber (PCF) and activated porous carbon fiber (APCF) were derived by carbonization and chemical activation after selectively removing polyvinyl alcohol from a bi-component fiber composed of polyvinyl alcohol a...
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doaj-08c22e9d489c4823bbd006e0204bc3932021-07-23T13:57:49ZengMDPI AGNanomaterials2079-49912021-07-01111830183010.3390/nano11071830The Enhanced Hydrogen Storage Capacity of Carbon Fibers: The Effect of Hollow Porous Structure and Surface ModificationSung-Ho Hwang0Young Kwang Kim1Hye-Jin Seo2Soon Moon Jeong3Jongwon Kim4Sang Kyoo Lim5Division of Energy Technology, DGIST, Daegu 42988, KoreaDivision of Energy Technology, DGIST, Daegu 42988, KoreaDivision of Energy Technology, DGIST, Daegu 42988, KoreaDivision of Energy Technology, DGIST, Daegu 42988, KoreaDepartment of Fiber System Engineering, Yeungnam University, Gyeongsan 38541, KoreaDivision of Energy Technology, DGIST, Daegu 42988, KoreaIn this study, highly porous carbon fiber was prepared for hydrogen storage. Porous carbon fiber (PCF) and activated porous carbon fiber (APCF) were derived by carbonization and chemical activation after selectively removing polyvinyl alcohol from a bi-component fiber composed of polyvinyl alcohol and polyacrylonitrile (PAN). The chemical activation created more pores on the surface of the PCF, and consequently, highly porous APCF was obtained with an improved BET surface area (3058 m<sup>2</sup> g<sup>−1</sup>) and micropore volume (1.18 cm<sup>3</sup> g<sup>−1</sup>) compare to those of the carbon fiber, which was prepared by calcination of monocomponent PAN. APCF was revealed to be very efficient for hydrogen storage, its hydrogen capacity of 5.14 wt% at 77 K and 10 MPa. Such hydrogen storage capacity is much higher than that of activated carbon fibers reported previously. To further enhance hydrogen storage capacity, catalytic Pd nanoparticles were deposited on the surface of the APCF. The Pd-deposited APCF exhibits a high hydrogen storage capacity of 5.45 wt% at 77 K and 10 MPa. The results demonstrate the potential of Pd-deposited APCF for efficient hydrogen storage.https://www.mdpi.com/2079-4991/11/7/1830hydrogen storagemicroporositysurface modificationcarbon fiber |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Sung-Ho Hwang Young Kwang Kim Hye-Jin Seo Soon Moon Jeong Jongwon Kim Sang Kyoo Lim |
spellingShingle |
Sung-Ho Hwang Young Kwang Kim Hye-Jin Seo Soon Moon Jeong Jongwon Kim Sang Kyoo Lim The Enhanced Hydrogen Storage Capacity of Carbon Fibers: The Effect of Hollow Porous Structure and Surface Modification Nanomaterials hydrogen storage microporosity surface modification carbon fiber |
author_facet |
Sung-Ho Hwang Young Kwang Kim Hye-Jin Seo Soon Moon Jeong Jongwon Kim Sang Kyoo Lim |
author_sort |
Sung-Ho Hwang |
title |
The Enhanced Hydrogen Storage Capacity of Carbon Fibers: The Effect of Hollow Porous Structure and Surface Modification |
title_short |
The Enhanced Hydrogen Storage Capacity of Carbon Fibers: The Effect of Hollow Porous Structure and Surface Modification |
title_full |
The Enhanced Hydrogen Storage Capacity of Carbon Fibers: The Effect of Hollow Porous Structure and Surface Modification |
title_fullStr |
The Enhanced Hydrogen Storage Capacity of Carbon Fibers: The Effect of Hollow Porous Structure and Surface Modification |
title_full_unstemmed |
The Enhanced Hydrogen Storage Capacity of Carbon Fibers: The Effect of Hollow Porous Structure and Surface Modification |
title_sort |
enhanced hydrogen storage capacity of carbon fibers: the effect of hollow porous structure and surface modification |
publisher |
MDPI AG |
series |
Nanomaterials |
issn |
2079-4991 |
publishDate |
2021-07-01 |
description |
In this study, highly porous carbon fiber was prepared for hydrogen storage. Porous carbon fiber (PCF) and activated porous carbon fiber (APCF) were derived by carbonization and chemical activation after selectively removing polyvinyl alcohol from a bi-component fiber composed of polyvinyl alcohol and polyacrylonitrile (PAN). The chemical activation created more pores on the surface of the PCF, and consequently, highly porous APCF was obtained with an improved BET surface area (3058 m<sup>2</sup> g<sup>−1</sup>) and micropore volume (1.18 cm<sup>3</sup> g<sup>−1</sup>) compare to those of the carbon fiber, which was prepared by calcination of monocomponent PAN. APCF was revealed to be very efficient for hydrogen storage, its hydrogen capacity of 5.14 wt% at 77 K and 10 MPa. Such hydrogen storage capacity is much higher than that of activated carbon fibers reported previously. To further enhance hydrogen storage capacity, catalytic Pd nanoparticles were deposited on the surface of the APCF. The Pd-deposited APCF exhibits a high hydrogen storage capacity of 5.45 wt% at 77 K and 10 MPa. The results demonstrate the potential of Pd-deposited APCF for efficient hydrogen storage. |
topic |
hydrogen storage microporosity surface modification carbon fiber |
url |
https://www.mdpi.com/2079-4991/11/7/1830 |
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