Density functional theory calculations on boron-doped carbon nanotubes as a potential metal-free catalyst for CO oxidation
碩士 === 中原大學 === 化學研究所 === 106 === By means of density functional theory (DFT) calculation, we used the carbon nanotubes with different content of doped boron as potential metal-free catalysts for the CO oxidation. In order to find the possible active sites for CO oxidation, we investigated the O2 -...
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ndltd-TW-106CYCU50650222019-10-31T05:22:11Z http://ndltd.ncl.edu.tw/handle/vqv3zc Density functional theory calculations on boron-doped carbon nanotubes as a potential metal-free catalyst for CO oxidation 利用密度泛函理論探討一氧化碳在無金屬催化劑-硼摻雜奈米碳管的氧化反應 Wei-Huan Kao 高偉桓 碩士 中原大學 化學研究所 106 By means of density functional theory (DFT) calculation, we used the carbon nanotubes with different content of doped boron as potential metal-free catalysts for the CO oxidation. In order to find the possible active sites for CO oxidation, we investigated the O2 -adsorption behavior on different position of 1 and 2 B-doped carbon nanotubes and find the most stable structures of adsorbed O2 are flat on C-B site of both nanotubes with the adsorption energies of -0.85 and -1.29 eV, respectively. Then we investigated the catalytic reaction paths of CO oxidation, divided into two parts: (1) CO + O2* → CO2 + O*, where the activation energy required for B-doped and BB-doped catalysts are 0.34 eV and 0.42 eV, respectively; (2) O* + CO → CO2: the activation energy required for BB-doped is 0.14 eV. The reaction is through the Eley-Rideal mechanism (ER) to produce carbon dioxide. After two CO oxidation processes, the carbon nanotubes can be recovered to their original structures and recycled. After calculation, we found that B-doped carbon nanotubes not only improved adsorption capacity of O2, but also reduced the activation energy of CO oxidation. According to our research, the higher stability of O2 , the more boron-doped content. Hsin-Tsung Chen 陳欣聰 2018 學位論文 ; thesis 91 zh-TW |
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碩士 === 中原大學 === 化學研究所 === 106 === By means of density functional theory (DFT) calculation, we used the carbon nanotubes with different content of doped boron as potential metal-free catalysts for the CO oxidation. In order to find the possible active sites for CO oxidation, we investigated the O2 -adsorption behavior on different position of 1 and 2 B-doped carbon nanotubes and find the most stable structures of adsorbed O2 are flat on C-B site of both nanotubes with the adsorption energies of -0.85 and -1.29 eV, respectively.
Then we investigated the catalytic reaction paths of CO oxidation, divided into two parts: (1) CO + O2* → CO2 + O*, where the activation energy required for B-doped and BB-doped catalysts are 0.34 eV and 0.42 eV, respectively; (2) O* + CO → CO2: the activation energy required for BB-doped is 0.14 eV. The reaction is through the Eley-Rideal mechanism (ER) to produce carbon dioxide. After two CO oxidation processes, the carbon nanotubes can be recovered to their original structures and recycled.
After calculation, we found that B-doped carbon nanotubes not only improved adsorption capacity of O2, but also reduced the activation energy of CO oxidation. According to our research, the higher stability of O2 , the more boron-doped content.
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author2 |
Hsin-Tsung Chen |
author_facet |
Hsin-Tsung Chen Wei-Huan Kao 高偉桓 |
author |
Wei-Huan Kao 高偉桓 |
spellingShingle |
Wei-Huan Kao 高偉桓 Density functional theory calculations on boron-doped carbon nanotubes as a potential metal-free catalyst for CO oxidation |
author_sort |
Wei-Huan Kao |
title |
Density functional theory calculations on boron-doped carbon nanotubes as a potential metal-free catalyst for CO oxidation |
title_short |
Density functional theory calculations on boron-doped carbon nanotubes as a potential metal-free catalyst for CO oxidation |
title_full |
Density functional theory calculations on boron-doped carbon nanotubes as a potential metal-free catalyst for CO oxidation |
title_fullStr |
Density functional theory calculations on boron-doped carbon nanotubes as a potential metal-free catalyst for CO oxidation |
title_full_unstemmed |
Density functional theory calculations on boron-doped carbon nanotubes as a potential metal-free catalyst for CO oxidation |
title_sort |
density functional theory calculations on boron-doped carbon nanotubes as a potential metal-free catalyst for co oxidation |
publishDate |
2018 |
url |
http://ndltd.ncl.edu.tw/handle/vqv3zc |
work_keys_str_mv |
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