Optimization of Hydrogen Storage Capacity by Physical Adsorption on Open-ended Single-walled Carbon Nanotube as Diameter Function
In this paper, we perform combination methods of semi-empirical research, a theoretical approach, and force-matching to determine the optimum adsorption capacity on an open-ended single-walled carbon nanotube (SWCNT) as a diameter function. Using a semi-empirical study, we can determine the valu...
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doaj-53ccac87039245ab8667d8983e4933262020-11-25T01:33:20ZengUniversitas IndonesiaInternational Journal of Technology2086-96142087-21002016-02-017226427310.14716/ijtech.v7i2.16051605Optimization of Hydrogen Storage Capacity by Physical Adsorption on Open-ended Single-walled Carbon Nanotube as Diameter FunctionNasruddin0Engkos A. Kosasih1Budhi Kurniawan2Supriyadi3I.A. Zulkarnain4Department of Mechanical Engineering, Faculty of Engineering, Universitas Indonesia, Kampus UI Depok, Depok 16424, IndonesiaDepartment of Mechanical Engineering, Faculty of Engineering, Universitas Indonesia, Kampus UI Depok, Depok 16424, IndonesiaDepartment of Physics, Faculty of Mathematics and Natural Sciences, Universitas Indonesia, Kampus UI Depok, Depok 16424, IndonesiaDepartment of Mechanical Engineering, Faculty of Engineering, Universitas Indonesia, Kampus UI Depok, Depok 16424, IndonesiaDepartment of Mechanical Engineering, Faculty of Engineering, President University, Cikarang 17550, IndonesiaIn this paper, we perform combination methods of semi-empirical research, a theoretical approach, and force-matching to determine the optimum adsorption capacity on an open-ended single-walled carbon nanotube (SWCNT) as a diameter function. Using a semi-empirical study, we can determine the value of monolayer coverage and isosteric heat of adsorption from available thermodynamic data. By completing the semi-empirical study, we carried out quantum mechanical calculations to determine the adsorption energy on the interior and exterior of SWCNTs. Furthermore, monolayer coverage, specific surface area, and maximum adsorption capacity as the main quantity in the adsorption process was estimated using the combination method of force-matching and a classical Lennard-Jones potential model. Hydrogen physisorption was investigated on zig-zag SWCNTs at conditions for a pressure range of 0.1 to 10 MPa at 233 K and 298.15 K temperature. The adsorption of all data can be explained with the Toth model. The results shows the SWCNT exterior physisorption energy range between 1.35 to 1.62 kcal/mol. The interior range from 1.22 to 2.43 kcal/mol. With a wide degree of temperature and pressure variations, we obtained an optimum SWCNT diameter of 8-12 Å . At the optimum diameter maximum adsorption capacity, we achieved 1.75 wt% at 233 K and an operating pressure of 10 MPa.http://ijtech.eng.ui.ac.id/article/view/1605Adsorption energy, Hydrogen, Isotropic, Monolayer coverage, SWCNT |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Nasruddin Engkos A. Kosasih Budhi Kurniawan Supriyadi I.A. Zulkarnain |
spellingShingle |
Nasruddin Engkos A. Kosasih Budhi Kurniawan Supriyadi I.A. Zulkarnain Optimization of Hydrogen Storage Capacity by Physical Adsorption on Open-ended Single-walled Carbon Nanotube as Diameter Function International Journal of Technology Adsorption energy, Hydrogen, Isotropic, Monolayer coverage, SWCNT |
author_facet |
Nasruddin Engkos A. Kosasih Budhi Kurniawan Supriyadi I.A. Zulkarnain |
author_sort |
Nasruddin |
title |
Optimization of Hydrogen Storage Capacity by Physical Adsorption on Open-ended Single-walled Carbon Nanotube as Diameter Function |
title_short |
Optimization of Hydrogen Storage Capacity by Physical Adsorption on Open-ended Single-walled Carbon Nanotube as Diameter Function |
title_full |
Optimization of Hydrogen Storage Capacity by Physical Adsorption on Open-ended Single-walled Carbon Nanotube as Diameter Function |
title_fullStr |
Optimization of Hydrogen Storage Capacity by Physical Adsorption on Open-ended Single-walled Carbon Nanotube as Diameter Function |
title_full_unstemmed |
Optimization of Hydrogen Storage Capacity by Physical Adsorption on Open-ended Single-walled Carbon Nanotube as Diameter Function |
title_sort |
optimization of hydrogen storage capacity by physical adsorption on open-ended single-walled carbon nanotube as diameter function |
publisher |
Universitas Indonesia |
series |
International Journal of Technology |
issn |
2086-9614 2087-2100 |
publishDate |
2016-02-01 |
description |
In this paper, we
perform combination methods of semi-empirical research, a theoretical approach,
and force-matching to determine the optimum adsorption capacity on an
open-ended single-walled carbon nanotube (SWCNT) as a diameter function. Using
a semi-empirical study, we can determine the value of monolayer coverage and
isosteric heat of adsorption from available thermodynamic data. By completing
the semi-empirical study, we carried out quantum mechanical calculations to
determine the adsorption energy on the interior and exterior of SWCNTs.
Furthermore, monolayer coverage, specific surface area, and maximum adsorption
capacity as the main quantity in the adsorption process was estimated using the
combination method of force-matching and a classical Lennard-Jones potential model. Hydrogen
physisorption was investigated on zig-zag SWCNTs at conditions for a pressure
range of 0.1 to 10 MPa at 233 K and 298.15 K temperature. The adsorption of all
data can be explained with the Toth model. The results shows the
SWCNT exterior physisorption energy range between 1.35 to 1.62 kcal/mol. The interior range from 1.22 to
2.43 kcal/mol.
With a wide degree of temperature and pressure variations, we obtained an
optimum SWCNT diameter of 8-12 Å . At the optimum diameter maximum adsorption
capacity, we achieved 1.75 wt% at 233 K and an operating pressure of 10 MPa. |
topic |
Adsorption energy, Hydrogen, Isotropic, Monolayer coverage, SWCNT |
url |
http://ijtech.eng.ui.ac.id/article/view/1605 |
work_keys_str_mv |
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1725077795549216768 |