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  4. Demonstrating and Unraveling a Controlled Nanometer-Scale Expansion of the Vacancy Defects in Graphene by CO2
 
research article

Demonstrating and Unraveling a Controlled Nanometer-Scale Expansion of the Vacancy Defects in Graphene by CO2

Rezaei, Mojtaba  
•
Villalobos, Luis Francisco  
•
Hsu, Kuang-Jung  
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March 16, 2022
Angewandte Chemie International Edition

A controlled manipulation of graphene edges and vacancies is desired for molecular separation, sensing and electronics applications. Unfortunately, available etching methods always lead to vacancy nucleation making it challenging to control etching. Herein, we report CO2-led controlled etching down to 2-3 angstrom per minute while completely avoiding vacancy nucleation. This makes CO2 a unique etchant for decoupling pore nucleation and expansion. We show that CO2 expands the steric-hindrance-free edges with an activation energy of 2.71 eV, corresponding to the energy barrier for the dissociative chemisorption of CO2. We demonstrate the presence of an additional configurational energy barrier for nanometer-sized vacancies resulting in a significantly slower rate of expansion. Finally, CO2 etching is applied to map the location of the intrinsic vacancies in the polycrystalline graphene film where we show that the intrinsic vacancy defects manifest mainly as grain boundary defects where intragrain defects from oxidative etching constitute a minor population.

  • Details
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Type
research article
DOI
10.1002/anie.202200321
Web of Science ID

WOS:000769506500001

Author(s)
Rezaei, Mojtaba  
Villalobos, Luis Francisco  
Hsu, Kuang-Jung  
Agrawal, Kumar Varoon  
Date Issued

2022-03-16

Publisher

Wiley-VCH Verlag GmbH

Published in
Angewandte Chemie International Edition
Article Number

e202200321

Subjects

Chemistry, Multidisciplinary

•

Chemistry

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co2 based etching

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grain-boundary defects

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intrinsic vacancy defects

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single-layer graphene

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vacancy defects

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vacancy expansion

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vacancy nucleation

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carbon dioxide reaction

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raman-spectroscopy

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kinetics

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oxidation

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gasification

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fabrication

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mechanisms

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

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Available on Infoscience
March 28, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/186595
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