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Electric Field-Induced Chemical Surface-Enhanced Raman Spectroscopy from Aligned Peptide Nanotube–Graphene Oxide Templates for Universal Trace Detection of Biomolecules
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File | Description | Size | Format | |
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Almohammed_JPhysChemLett2019.pdf | 5.99 MB |
Date Issued
29 March 2019
Date Available
25T07:23:11Z April 2019
Abstract
Semiconductor-graphene oxide-based surface-enhanced Raman spectroscopy substrates represent a new frontier in the field of surface-enhanced Raman spectroscopy (SERS). However, the application of graphene oxide has had limited success because of the poor Raman enhancement factors that are achievable in comparison to noble metals. In this work, we report chemical SERS enhancement enabled by the application of an electric field (10-25 V/mm) to aligned semiconducting peptide nanotube-graphene oxide composite structures during Raman measurements. The technique enables nanomolar detection sensitivity of glucose and nucleobases with up to 10-fold signal enhancement compared to metal-based substrates, which, to our knowledge, is higher than that previously reported for semiconductor-based SERS substrates. The increased Raman scattering is assigned to enhanced charge-transfer resonance enabled by work function lowering of the peptide nanotubes. These results provide insight into how semiconductor organic peptide nanotubes interact with graphene oxide, which may facilitate chemical biosensing, electronic devices, and energy-harvesting applications.
Sponsorship
European Commission Horizon 2020
Science Foundation Ireland
Other Sponsorship
The Ministry of Higher Education of Saudi Arabia
The China Scholarship Council
Type of Material
Journal Article
Publisher
ACS
Journal
The Journal of Physical Chemistry Letters
Volume
10
Issue
8
Start Page
1878
End Page
1887
Copyright (Published Version)
2019 American Chemical Society
Language
English
Status of Item
Peer reviewed
ISSN
1948-7185
This item is made available under a Creative Commons License
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