Optimal boron-doped graphene substrate for glucose Raman signal enhancement

Fuente: arXiv
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Main Authors: Komeda, Jan, Cammarata, Antonio, Polcar, Tomas
Format: Preprint
Published: 2025
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author Komeda, Jan
Cammarata, Antonio
Polcar, Tomas
author_facet Komeda, Jan
Cammarata, Antonio
Polcar, Tomas
contents Surface Enhanced Raman Spectroscopy (SERS) is a highly sensitive and selective technique that greatly enhances the signal of an analyte, compared with its signal from classical Raman Spectroscopy, due to its interaction with a substrates surface. It has been shown that low concentration boron-doped graphene (B-graphene) enhances the Raman signal of simple organic molecules like pyridine. Recent studies also suggest that B-graphene can remain thermodynamically stable when doped with significantly higher concentrations of boron than previously observed. In this framework, we use quantum mechanical simulations to investigate the influence of dopant concentration and geometric distribution on the effectiveness of B-doped graphene as a SERS substrate, with glucose as analyte. By combining analysis of interatomic force constants and of phonon eigenvectors composition, we conclude that higher doping concentrations provide a larger enhancement to glucose's Raman signal, while the molecule orientation relative to the surface plays a fundamental role in the Raman response. We suggest that high concentration B-graphene presents itself as a potential substrate for SERS based detection of glucose, while the used phonon-based analysis can be promptly applied for the search of promising candidates as substrate materials for enhanced Raman response.
format Preprint
id arxiv_https___arxiv_org_abs_2507_02642
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Optimal boron-doped graphene substrate for glucose Raman signal enhancement
Komeda, Jan
Cammarata, Antonio
Polcar, Tomas
Materials Science
Applied Physics
Computational Physics
Surface Enhanced Raman Spectroscopy (SERS) is a highly sensitive and selective technique that greatly enhances the signal of an analyte, compared with its signal from classical Raman Spectroscopy, due to its interaction with a substrates surface. It has been shown that low concentration boron-doped graphene (B-graphene) enhances the Raman signal of simple organic molecules like pyridine. Recent studies also suggest that B-graphene can remain thermodynamically stable when doped with significantly higher concentrations of boron than previously observed. In this framework, we use quantum mechanical simulations to investigate the influence of dopant concentration and geometric distribution on the effectiveness of B-doped graphene as a SERS substrate, with glucose as analyte. By combining analysis of interatomic force constants and of phonon eigenvectors composition, we conclude that higher doping concentrations provide a larger enhancement to glucose's Raman signal, while the molecule orientation relative to the surface plays a fundamental role in the Raman response. We suggest that high concentration B-graphene presents itself as a potential substrate for SERS based detection of glucose, while the used phonon-based analysis can be promptly applied for the search of promising candidates as substrate materials for enhanced Raman response.
title Optimal boron-doped graphene substrate for glucose Raman signal enhancement
topic Materials Science
Applied Physics
Computational Physics
url https://arxiv.org/abs/2507.02642