Impact of hydrogen coverage trend on methyl formate adsorption on Mos2 surface: A first principles study

Adsorbates coverage plays a crucial role in a catalysis reaction. In hydrodeoxygenation (HDO), which involves high hydrogen pressure, hydrogen coverage on the surface may affect the adsorption of other adsorbates. The HDO is used in green diesel technology to produce clean and renewable energy from...

Full description

Saved in:
Bibliographic Details
Main Authors: Masan, Samuel E. P. P., Rusydi, Febdian, Prabowo, Wahyu A. E., Elisandro, Daniel, Mark-Lee, Wun F., A. Karim, Nabila, Saputro, Adhitya G.
Format: Article
Language:English
Published: American Chemical Society 2022
Subjects:
Online Access:http://eprints.utm.my/104859/1/MarkLeeWun2023_ImpactofHydrogenCoverageTrendonMethyl.pdf
http://eprints.utm.my/104859/
http://dx.doi.org/10.1021/acsomega.2c06888
Tags: Add Tag
No Tags, Be the first to tag this record!
id my.utm.104859
record_format eprints
spelling my.utm.1048592024-03-25T09:05:14Z http://eprints.utm.my/104859/ Impact of hydrogen coverage trend on methyl formate adsorption on Mos2 surface: A first principles study Masan, Samuel E. P. P. Rusydi, Febdian Prabowo, Wahyu A. E. Elisandro, Daniel Mark-Lee, Wun F. A. Karim, Nabila Saputro, Adhitya G. QD Chemistry Adsorbates coverage plays a crucial role in a catalysis reaction. In hydrodeoxygenation (HDO), which involves high hydrogen pressure, hydrogen coverage on the surface may affect the adsorption of other adsorbates. The HDO is used in green diesel technology to produce clean and renewable energy from organic compounds. This motivates us to study the hydrogen coverage effect on methyl formate adsorption on MoS2 as a model case of the actual HDO. We calculate the methyl formate adsorption energy as a function of hydrogen coverage using density functional theory (DFT) and then comprehensively analyze the physical origin of the results. We find that methyl formate can have several adsorption modes on the surface. The increased hydrogen coverage can stabilize or destabilize these adsorption modes. However, finally, it leads to convergence at high hydrogen coverage. We extrapolated the trend further and concluded that some adsorption modes might not exist at high hydrogen coverage, while others remain. American Chemical Society 2022 Article PeerReviewed application/pdf en http://eprints.utm.my/104859/1/MarkLeeWun2023_ImpactofHydrogenCoverageTrendonMethyl.pdf Masan, Samuel E. P. P. and Rusydi, Febdian and Prabowo, Wahyu A. E. and Elisandro, Daniel and Mark-Lee, Wun F. and A. Karim, Nabila and Saputro, Adhitya G. (2022) Impact of hydrogen coverage trend on methyl formate adsorption on Mos2 surface: A first principles study. ACS Omega, 8 (7). pp. 6523-6529. ISSN 2470-1343 http://dx.doi.org/10.1021/acsomega.2c06888 DOI : 10.1021/acsomega.2c06888
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
language English
topic QD Chemistry
spellingShingle QD Chemistry
Masan, Samuel E. P. P.
Rusydi, Febdian
Prabowo, Wahyu A. E.
Elisandro, Daniel
Mark-Lee, Wun F.
A. Karim, Nabila
Saputro, Adhitya G.
Impact of hydrogen coverage trend on methyl formate adsorption on Mos2 surface: A first principles study
description Adsorbates coverage plays a crucial role in a catalysis reaction. In hydrodeoxygenation (HDO), which involves high hydrogen pressure, hydrogen coverage on the surface may affect the adsorption of other adsorbates. The HDO is used in green diesel technology to produce clean and renewable energy from organic compounds. This motivates us to study the hydrogen coverage effect on methyl formate adsorption on MoS2 as a model case of the actual HDO. We calculate the methyl formate adsorption energy as a function of hydrogen coverage using density functional theory (DFT) and then comprehensively analyze the physical origin of the results. We find that methyl formate can have several adsorption modes on the surface. The increased hydrogen coverage can stabilize or destabilize these adsorption modes. However, finally, it leads to convergence at high hydrogen coverage. We extrapolated the trend further and concluded that some adsorption modes might not exist at high hydrogen coverage, while others remain.
format Article
author Masan, Samuel E. P. P.
Rusydi, Febdian
Prabowo, Wahyu A. E.
Elisandro, Daniel
Mark-Lee, Wun F.
A. Karim, Nabila
Saputro, Adhitya G.
author_facet Masan, Samuel E. P. P.
Rusydi, Febdian
Prabowo, Wahyu A. E.
Elisandro, Daniel
Mark-Lee, Wun F.
A. Karim, Nabila
Saputro, Adhitya G.
author_sort Masan, Samuel E. P. P.
title Impact of hydrogen coverage trend on methyl formate adsorption on Mos2 surface: A first principles study
title_short Impact of hydrogen coverage trend on methyl formate adsorption on Mos2 surface: A first principles study
title_full Impact of hydrogen coverage trend on methyl formate adsorption on Mos2 surface: A first principles study
title_fullStr Impact of hydrogen coverage trend on methyl formate adsorption on Mos2 surface: A first principles study
title_full_unstemmed Impact of hydrogen coverage trend on methyl formate adsorption on Mos2 surface: A first principles study
title_sort impact of hydrogen coverage trend on methyl formate adsorption on mos2 surface: a first principles study
publisher American Chemical Society
publishDate 2022
url http://eprints.utm.my/104859/1/MarkLeeWun2023_ImpactofHydrogenCoverageTrendonMethyl.pdf
http://eprints.utm.my/104859/
http://dx.doi.org/10.1021/acsomega.2c06888
_version_ 1794545938968084480
score 13.214268