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Nano-FTIR identification of Functionalization in Two-Photon Oxidized Graphene

Year of publication

2025

Authors

Das Gour, Mohan; Hulkko, Eero; Emelianov, Aleksei; Santiveri, Marc Garriga; Myllyperkiö, Pasi; Johansson, Andreas; Pettersson, Mika

Abstract

Graphene oxide (GO) plays an important role in next-generation electronic, photonic, and sensing technologies due to its tunable chemical functionality and unique electronic properties. However, characterizing the spatial and chemical heterogeneity of GO at the nanoscale remains a persistent challenge, due to the limitations of conventional spectroscopy in resolving localized functional groups. This is especially true for GO modified by femtosecond laser-induced two-photon oxidation (TPO), which creates spatially confined chemical environments that bulk techniques struggle to resolve. Herein, we employ Fourier transform infrared nanospectroscopy (nano-FTIR) to achieve highly localized, nanoscale chemical characterization of two-photon produced GO. Using tip-enhanced spectroscopy, we resolve the vibrational fingerprints of key functional groups with sub-diffraction spatial resolution. Nano-FTIR analysis reveals that epoxide groups dominate the oxidation, with a strong vibrational feature consistently appearing near 1225 cm-1. Laser writing parameters are systematically varied to understand dose-dependent oxidation behavior. The resulting chemical contrasts are validated by Raman spectroscopy, AFM topography, and comparison with commercial GO. Our findings demonstrate that nano-FTIR not only maps chemical heterogeneity with unprecedented precision but also reveals nonlinear oxidation dynamics. This work highlights the utility of nano-FTIR as a powerful non-destructive tool for spatially resolved chemical analysis of laser-induced graphene or other 2D-materials.
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Organizations and authors

University of Jyväskylä

Emelianov Aleksei

Johansson Andreas Orcid -palvelun logo

Hulkko Eero

Das Gour

Pettersson Mika Orcid -palvelun logo

Myllyperkiö Pasi Orcid -palvelun logo

Publication type

Publication format

Article

Parent publication type

Journal

Article type

Original article

Audience

Scientific

Peer-reviewed

Peer-Reviewed

MINEDU's publication type classification code

A1 Journal article (refereed), original research

Publication channel information

Journal/Series

Carbon

Publisher

Elsevier

Volume

245

Article number

120851

​Publication forum

53115

​Publication forum level

2

Open access

Open access in the publisher’s service

Yes

Open access of publication channel

Partially open publication channel

Self-archived

Yes

Other information

Fields of science

Physical sciences; Chemical sciences

Keywords

[object Object],[object Object]

Publication country

United Kingdom

Internationality of the publisher

International

Language

English

International co-publication

No

Co-publication with a company

No

DOI

10.1016/j.carbon.2025.120851

The publication is included in the Ministry of Education and Culture’s Publication data collection

Yes