The interaction of acrolein with pristine and N-doped TiO2 anatase nanoparticles: A DFT study

Density functional theory calculations were carried out in order to study the effects of the adsorption of acrolein molecule on the structural and electronic properties of TiO2 anatase nanoparticles. The ability of pristine and N-doped TiO2 anatase nanoparticles to recognize toxic acrolein (C3H4O) m...

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Main Authors: Amirali Abbasi, Jaber Jahanbin Sardroodi
Format: Article
Language:English
Published: Slovenian Chemical Society 2016-11-01
Series:Acta Chimica Slovenica
Subjects:
Online Access:https://journals.matheo.si/index.php/ACSi/article/view/2350
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spelling doaj-f24c1f0a8fdc4e52ab52d515db5a5ce32020-11-24T23:48:48ZengSlovenian Chemical SocietyActa Chimica Slovenica1318-02071580-31552016-11-0163471372010.17344/acsi.2016.2350408The interaction of acrolein with pristine and N-doped TiO2 anatase nanoparticles: A DFT studyAmirali Abbasi0Jaber Jahanbin Sardroodi1Azarbaijan Shahid Madani UniversityAzarbaijan Shahid Madani UniversityDensity functional theory calculations were carried out in order to study the effects of the adsorption of acrolein molecule on the structural and electronic properties of TiO2 anatase nanoparticles. The ability of pristine and N-doped TiO2 anatase nanoparticles to recognize toxic acrolein (C3H4O) molecule was surveyed in detail. It was concluded that acrolein molecule chemisorbs on the N-doped anatase nanoparticles with large adsorption energy and small distance with respect to the nanoparticle. The results indicate that the adsorption of acrolein on the N-doped TiO2 is energetically more favorable than the adsorption on the pristine one, suggesting that the N doping can energetically facilitate the adsorption of acrolein on the N-doped nanoparticle. It means that the N-doped TiO2 nanoparticle can react with acrolein molecule more efficiently. The interaction between acrolein molecule and N-doped TiO2 can induce substantial variations in the HOMO/LUMO molecular orbitals of the nanoparticle, changing its electrical conductivity which is helpful for developing novel sensor devices for the removal of harmful acrolein molecule. The large overlaps in the projected density of states spectra reveal the formation of chemical bond between two interacting atoms. Charge analysis based on Mulliken charges indicates that charge is transferred from the acrolein molecule to the TiO2 nanoparticle.https://journals.matheo.si/index.php/ACSi/article/view/2350AcroleinTiO2Electronic propertiesDensity functional theorysensor
collection DOAJ
language English
format Article
sources DOAJ
author Amirali Abbasi
Jaber Jahanbin Sardroodi
spellingShingle Amirali Abbasi
Jaber Jahanbin Sardroodi
The interaction of acrolein with pristine and N-doped TiO2 anatase nanoparticles: A DFT study
Acta Chimica Slovenica
Acrolein
TiO2
Electronic properties
Density functional theory
sensor
author_facet Amirali Abbasi
Jaber Jahanbin Sardroodi
author_sort Amirali Abbasi
title The interaction of acrolein with pristine and N-doped TiO2 anatase nanoparticles: A DFT study
title_short The interaction of acrolein with pristine and N-doped TiO2 anatase nanoparticles: A DFT study
title_full The interaction of acrolein with pristine and N-doped TiO2 anatase nanoparticles: A DFT study
title_fullStr The interaction of acrolein with pristine and N-doped TiO2 anatase nanoparticles: A DFT study
title_full_unstemmed The interaction of acrolein with pristine and N-doped TiO2 anatase nanoparticles: A DFT study
title_sort interaction of acrolein with pristine and n-doped tio2 anatase nanoparticles: a dft study
publisher Slovenian Chemical Society
series Acta Chimica Slovenica
issn 1318-0207
1580-3155
publishDate 2016-11-01
description Density functional theory calculations were carried out in order to study the effects of the adsorption of acrolein molecule on the structural and electronic properties of TiO2 anatase nanoparticles. The ability of pristine and N-doped TiO2 anatase nanoparticles to recognize toxic acrolein (C3H4O) molecule was surveyed in detail. It was concluded that acrolein molecule chemisorbs on the N-doped anatase nanoparticles with large adsorption energy and small distance with respect to the nanoparticle. The results indicate that the adsorption of acrolein on the N-doped TiO2 is energetically more favorable than the adsorption on the pristine one, suggesting that the N doping can energetically facilitate the adsorption of acrolein on the N-doped nanoparticle. It means that the N-doped TiO2 nanoparticle can react with acrolein molecule more efficiently. The interaction between acrolein molecule and N-doped TiO2 can induce substantial variations in the HOMO/LUMO molecular orbitals of the nanoparticle, changing its electrical conductivity which is helpful for developing novel sensor devices for the removal of harmful acrolein molecule. The large overlaps in the projected density of states spectra reveal the formation of chemical bond between two interacting atoms. Charge analysis based on Mulliken charges indicates that charge is transferred from the acrolein molecule to the TiO2 nanoparticle.
topic Acrolein
TiO2
Electronic properties
Density functional theory
sensor
url https://journals.matheo.si/index.php/ACSi/article/view/2350
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