Core Level Spectra of Organic Molecules Adsorbed on Graphene

We perform first principle calculations based on density functional theory to investigate the effect of the adsorption of core-excited organic molecules on graphene. We simulate Near Edge X-ray absorption Fine Structure (NEXAFS) and X-ray Photoemission Spectroscopy (XPS) at the N and C edges for two...

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Main Authors: Abhilash Ravikumar, Gian Paolo Brivio, Guido Fratesi
Format: Article
Language:English
Published: MDPI AG 2018-03-01
Series:Materials
Subjects:
Online Access:http://www.mdpi.com/1996-1944/11/4/518
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spelling doaj-50f1dd4a2c52496a9d619f8bea5106892020-11-24T20:59:48ZengMDPI AGMaterials1996-19442018-03-0111451810.3390/ma11040518ma11040518Core Level Spectra of Organic Molecules Adsorbed on GrapheneAbhilash Ravikumar0Gian Paolo Brivio1Guido Fratesi2Dipartimento di Scienza dei Materiali, Università di Milano-Bicocca, via Cozzi, 55, 20125 Milano, ItalyDipartimento di Scienza dei Materiali, Università di Milano-Bicocca, via Cozzi, 55, 20125 Milano, ItalyDipartimento di Fisica, Università degli Studi di Milano, via Celoria, 16, 20133 Milano, ItalyWe perform first principle calculations based on density functional theory to investigate the effect of the adsorption of core-excited organic molecules on graphene. We simulate Near Edge X-ray absorption Fine Structure (NEXAFS) and X-ray Photoemission Spectroscopy (XPS) at the N and C edges for two moieties: pyridine and the pyridine radical on graphene, which exemplify two different adsorption characters. The modifications of molecular and graphene energy levels due to their interplay with the core-level excitation are discussed. We find that upon physisorption of pyridine, the binding energies of graphene close to the adsorption site reduce mildly, and the NEXAFS spectra of the molecule and graphene resemble those of gas phase pyridine and pristine graphene, respectively. However, the chemisorption of the pyridine radical is found to significantly alter these core excited spectra. The C 1s binding energy of the C atom of graphene participating in chemisorption increases by ∼1 eV, and the C atoms of graphene alternate to the adsorption site show a reduction in the binding energy. Analogously, these C atoms also show strong modifications in the NEXAFS spectra. The NEXAFS spectrum of the chemisorbed molecule is also modified as a result of hybridization with and screening by graphene. We eventually explore the electronic properties and magnetism of the system as a core-level excitation is adiabatically switched on.http://www.mdpi.com/1996-1944/11/4/518core excited spectraorganic molecules on graphenemagnetism in graphene
collection DOAJ
language English
format Article
sources DOAJ
author Abhilash Ravikumar
Gian Paolo Brivio
Guido Fratesi
spellingShingle Abhilash Ravikumar
Gian Paolo Brivio
Guido Fratesi
Core Level Spectra of Organic Molecules Adsorbed on Graphene
Materials
core excited spectra
organic molecules on graphene
magnetism in graphene
author_facet Abhilash Ravikumar
Gian Paolo Brivio
Guido Fratesi
author_sort Abhilash Ravikumar
title Core Level Spectra of Organic Molecules Adsorbed on Graphene
title_short Core Level Spectra of Organic Molecules Adsorbed on Graphene
title_full Core Level Spectra of Organic Molecules Adsorbed on Graphene
title_fullStr Core Level Spectra of Organic Molecules Adsorbed on Graphene
title_full_unstemmed Core Level Spectra of Organic Molecules Adsorbed on Graphene
title_sort core level spectra of organic molecules adsorbed on graphene
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2018-03-01
description We perform first principle calculations based on density functional theory to investigate the effect of the adsorption of core-excited organic molecules on graphene. We simulate Near Edge X-ray absorption Fine Structure (NEXAFS) and X-ray Photoemission Spectroscopy (XPS) at the N and C edges for two moieties: pyridine and the pyridine radical on graphene, which exemplify two different adsorption characters. The modifications of molecular and graphene energy levels due to their interplay with the core-level excitation are discussed. We find that upon physisorption of pyridine, the binding energies of graphene close to the adsorption site reduce mildly, and the NEXAFS spectra of the molecule and graphene resemble those of gas phase pyridine and pristine graphene, respectively. However, the chemisorption of the pyridine radical is found to significantly alter these core excited spectra. The C 1s binding energy of the C atom of graphene participating in chemisorption increases by ∼1 eV, and the C atoms of graphene alternate to the adsorption site show a reduction in the binding energy. Analogously, these C atoms also show strong modifications in the NEXAFS spectra. The NEXAFS spectrum of the chemisorbed molecule is also modified as a result of hybridization with and screening by graphene. We eventually explore the electronic properties and magnetism of the system as a core-level excitation is adiabatically switched on.
topic core excited spectra
organic molecules on graphene
magnetism in graphene
url http://www.mdpi.com/1996-1944/11/4/518
work_keys_str_mv AT abhilashravikumar corelevelspectraoforganicmoleculesadsorbedongraphene
AT gianpaolobrivio corelevelspectraoforganicmoleculesadsorbedongraphene
AT guidofratesi corelevelspectraoforganicmoleculesadsorbedongraphene
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