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DFT Study of N(2)O Adsorption onto the Surface of M-Decorated Graphene Oxide (M = Mg, Cu or Ag)

In order to reduce the harm of nitrous oxide (N(2)O) on the environment, it is very important to find an effective way to capture and decompose this nitrous oxide. Based on the density functional theory (DFT), the adsorption mechanism of N(2)O on the surfaces of M-decorated (M = Mg, Cu or Ag) graphe...

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Autores principales: Liu, Zhong, Cheng, Xi-ren, Yang, Yi-min, Jia, Hong-zhang, Bai, Bao-quan, Zhao, Li
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6720633/
https://www.ncbi.nlm.nih.gov/pubmed/31426324
http://dx.doi.org/10.3390/ma12162611
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author Liu, Zhong
Cheng, Xi-ren
Yang, Yi-min
Jia, Hong-zhang
Bai, Bao-quan
Zhao, Li
author_facet Liu, Zhong
Cheng, Xi-ren
Yang, Yi-min
Jia, Hong-zhang
Bai, Bao-quan
Zhao, Li
author_sort Liu, Zhong
collection PubMed
description In order to reduce the harm of nitrous oxide (N(2)O) on the environment, it is very important to find an effective way to capture and decompose this nitrous oxide. Based on the density functional theory (DFT), the adsorption mechanism of N(2)O on the surfaces of M-decorated (M = Mg, Cu or Ag) graphene oxide (GO) was studied in this paper. The results show that the effects of N(2)O adsorbed onto the surfaces of Mg–GO by O-end and Cu–GO by N-end are favorable among all of the adsorption types studied, whose adsorption energies are −1.40 eV and −1.47 eV, respectively. Both adsorption manners belong to chemisorption. For Ag–GO, however, both the adsorption strength and electron transfer with the N(2)O molecule are relatively weak, indicating it may not be promising for N(2)O removal. Moreover, when Gibbs free energy analyses were applied for the two adsorption types on Mg–GO by O-end and Cu–GO by N-end, it was found that the lowest temperatures required to undergo a chemisorption process are 209 °C and 338 °C, respectively. After being adsorbed onto the surface of Mg–GO by O-end, the N(2)O molecule will decompose into an N(2) molecule and an active oxygen atom. Because of containing active oxygen atom, the structure O–Mg–GO has strong oxidizability, and can be reduced to Mg–GO. Therefore, Mg–GO can be used as a catalyst for N(2)O adsorption and decomposition. Cu–GO can be used as a candidate material for its strong adsorption to N(2)O.
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spelling pubmed-67206332019-09-10 DFT Study of N(2)O Adsorption onto the Surface of M-Decorated Graphene Oxide (M = Mg, Cu or Ag) Liu, Zhong Cheng, Xi-ren Yang, Yi-min Jia, Hong-zhang Bai, Bao-quan Zhao, Li Materials (Basel) Article In order to reduce the harm of nitrous oxide (N(2)O) on the environment, it is very important to find an effective way to capture and decompose this nitrous oxide. Based on the density functional theory (DFT), the adsorption mechanism of N(2)O on the surfaces of M-decorated (M = Mg, Cu or Ag) graphene oxide (GO) was studied in this paper. The results show that the effects of N(2)O adsorbed onto the surfaces of Mg–GO by O-end and Cu–GO by N-end are favorable among all of the adsorption types studied, whose adsorption energies are −1.40 eV and −1.47 eV, respectively. Both adsorption manners belong to chemisorption. For Ag–GO, however, both the adsorption strength and electron transfer with the N(2)O molecule are relatively weak, indicating it may not be promising for N(2)O removal. Moreover, when Gibbs free energy analyses were applied for the two adsorption types on Mg–GO by O-end and Cu–GO by N-end, it was found that the lowest temperatures required to undergo a chemisorption process are 209 °C and 338 °C, respectively. After being adsorbed onto the surface of Mg–GO by O-end, the N(2)O molecule will decompose into an N(2) molecule and an active oxygen atom. Because of containing active oxygen atom, the structure O–Mg–GO has strong oxidizability, and can be reduced to Mg–GO. Therefore, Mg–GO can be used as a catalyst for N(2)O adsorption and decomposition. Cu–GO can be used as a candidate material for its strong adsorption to N(2)O. MDPI 2019-08-16 /pmc/articles/PMC6720633/ /pubmed/31426324 http://dx.doi.org/10.3390/ma12162611 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Liu, Zhong
Cheng, Xi-ren
Yang, Yi-min
Jia, Hong-zhang
Bai, Bao-quan
Zhao, Li
DFT Study of N(2)O Adsorption onto the Surface of M-Decorated Graphene Oxide (M = Mg, Cu or Ag)
title DFT Study of N(2)O Adsorption onto the Surface of M-Decorated Graphene Oxide (M = Mg, Cu or Ag)
title_full DFT Study of N(2)O Adsorption onto the Surface of M-Decorated Graphene Oxide (M = Mg, Cu or Ag)
title_fullStr DFT Study of N(2)O Adsorption onto the Surface of M-Decorated Graphene Oxide (M = Mg, Cu or Ag)
title_full_unstemmed DFT Study of N(2)O Adsorption onto the Surface of M-Decorated Graphene Oxide (M = Mg, Cu or Ag)
title_short DFT Study of N(2)O Adsorption onto the Surface of M-Decorated Graphene Oxide (M = Mg, Cu or Ag)
title_sort dft study of n(2)o adsorption onto the surface of m-decorated graphene oxide (m = mg, cu or ag)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6720633/
https://www.ncbi.nlm.nih.gov/pubmed/31426324
http://dx.doi.org/10.3390/ma12162611
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