Robust quantification of the diamond nitrogen-vacancy center charge state via photoluminescence spectroscopy

Fuente: arXiv
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Main Authors: Thalassinos, Giannis, McCloskey, Daniel J., Mameli, Alessandro, Healey, Alexander J., Pattinson, Charlie, Simpson, David, Gibson, Brant C., Stacey, Alastair, Dontschuk, Nikolai, Reineck, Philipp
Format: Preprint
Published: 2025
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author Thalassinos, Giannis
McCloskey, Daniel J.
Mameli, Alessandro
Healey, Alexander J.
Pattinson, Charlie
Simpson, David
Gibson, Brant C.
Stacey, Alastair
Dontschuk, Nikolai
Reineck, Philipp
author_facet Thalassinos, Giannis
McCloskey, Daniel J.
Mameli, Alessandro
Healey, Alexander J.
Pattinson, Charlie
Simpson, David
Gibson, Brant C.
Stacey, Alastair
Dontschuk, Nikolai
Reineck, Philipp
contents Nitrogen vacancy (NV) centers in diamond are at the heart of many emerging quantum technologies, all of which require control over the NV charge state. Hence, methods for quantification of the relative photoluminescence (PL) intensities of the NV$^0$ and NV$^-$ charge state, i.e., a charge state ratio, are vital. Several approaches to quantify NV charge state ratios have been reported but are either limited to bulk-like NV diamond samples or yield qualitative results. We propose an NV charge state quantification protocol based on the determination of sample- and experimental setup-specific NV$^0$ and NV$^-$ reference spectra. The approach employs blue (400-470 nm) and green (480-570 nm) excitation to infer pure NV$^0$ and NV$^-$ spectra, which are then used to quantify NV charge state ratios in subsequent experiments via least squares fitting. We test our dual excitation protocol (DEP) for a bulk diamond NV sample, 20 and 100 nm nanodiamond particles and compare results with those obtained via other commonly used techniques such as zero-phonon line fitting and non-negative matrix factorization. We find that DEP can be employed across different samples and experimental setups and yields consistent and quantitative results for NV charge state ratios that are in agreement with our understanding of NV photophysics. By providing robust NV charge state quantification across sample types and measurement platforms, DEP will support the development of NV-based quantum technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2506_05786
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Robust quantification of the diamond nitrogen-vacancy center charge state via photoluminescence spectroscopy
Thalassinos, Giannis
McCloskey, Daniel J.
Mameli, Alessandro
Healey, Alexander J.
Pattinson, Charlie
Simpson, David
Gibson, Brant C.
Stacey, Alastair
Dontschuk, Nikolai
Reineck, Philipp
Mesoscale and Nanoscale Physics
Nitrogen vacancy (NV) centers in diamond are at the heart of many emerging quantum technologies, all of which require control over the NV charge state. Hence, methods for quantification of the relative photoluminescence (PL) intensities of the NV$^0$ and NV$^-$ charge state, i.e., a charge state ratio, are vital. Several approaches to quantify NV charge state ratios have been reported but are either limited to bulk-like NV diamond samples or yield qualitative results. We propose an NV charge state quantification protocol based on the determination of sample- and experimental setup-specific NV$^0$ and NV$^-$ reference spectra. The approach employs blue (400-470 nm) and green (480-570 nm) excitation to infer pure NV$^0$ and NV$^-$ spectra, which are then used to quantify NV charge state ratios in subsequent experiments via least squares fitting. We test our dual excitation protocol (DEP) for a bulk diamond NV sample, 20 and 100 nm nanodiamond particles and compare results with those obtained via other commonly used techniques such as zero-phonon line fitting and non-negative matrix factorization. We find that DEP can be employed across different samples and experimental setups and yields consistent and quantitative results for NV charge state ratios that are in agreement with our understanding of NV photophysics. By providing robust NV charge state quantification across sample types and measurement platforms, DEP will support the development of NV-based quantum technologies.
title Robust quantification of the diamond nitrogen-vacancy center charge state via photoluminescence spectroscopy
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2506.05786