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Main Authors: Grant, Erin S., Olorunyomi, Joseph F., Scholten, Sam C., Robertson, Islay O., Abraham, Amanda N., Srikantamurthy, Nandish H., Murdoch, Billy J., Maye, Edwin L. H., Rabes, Blanca del Rosal, Healey, Alexander J., Doherty, Cara M., Reineck, Philipp, Mulet, Xavier, Tetienne, Jean-Philippe, Broadway, David A.
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2510.24062
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author Grant, Erin S.
Olorunyomi, Joseph F.
Scholten, Sam C.
Robertson, Islay O.
Abraham, Amanda N.
Srikantamurthy, Nandish H.
Murdoch, Billy J.
Maye, Edwin L. H.
Rabes, Blanca del Rosal
Healey, Alexander J.
Doherty, Cara M.
Reineck, Philipp
Mulet, Xavier
Tetienne, Jean-Philippe
Broadway, David A.
author_facet Grant, Erin S.
Olorunyomi, Joseph F.
Scholten, Sam C.
Robertson, Islay O.
Abraham, Amanda N.
Srikantamurthy, Nandish H.
Murdoch, Billy J.
Maye, Edwin L. H.
Rabes, Blanca del Rosal
Healey, Alexander J.
Doherty, Cara M.
Reineck, Philipp
Mulet, Xavier
Tetienne, Jean-Philippe
Broadway, David A.
contents The ability to modulate the photoluminescence (PL) of nanomaterials via spin-related effects is vital for many emerging quantum technologies, with nanoscale quantum sensing and imaging being particular areas of focus. Carbon-based quantum dots (CQDs) are among the most common forms of luminescent nanomaterials, appealing due to their ease of synthesis, tunability through organic chemistry, high brightness, and natural biocompatibility. However, the observation of room temperature, spin-dependent PL has remained elusive. Here we report on the observation of PL modulation of CQDs by magnetic fields ($\sim 10$ mT) under ambient conditions. We synthesize a series of CQDs using 19 different amino acids, which have a range of PL emission spectra and exhibit a clear magneto-PL effect (up to $\sim 1$% change). Furthermore, an electron spin resonance is detected in the PL with a g-factor of g $\approx$ 2, suggesting a process similar to the radical pair mechanism is responsible. Finally, we show that the magneto-PL contrast decreases in the presence of paramagnetic species, which we attribute to an increase in magnetic noise-induced spin relaxation in the CQDs. Our work brings new functionalities to these commonly used and biocompatible luminescent nanoparticles, opening new opportunities for in situ quantum sensing and imaging of biological samples.
format Preprint
id arxiv_https___arxiv_org_abs_2510_24062
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Spin-dependent photoluminescence in carbon-based quantum dots
Grant, Erin S.
Olorunyomi, Joseph F.
Scholten, Sam C.
Robertson, Islay O.
Abraham, Amanda N.
Srikantamurthy, Nandish H.
Murdoch, Billy J.
Maye, Edwin L. H.
Rabes, Blanca del Rosal
Healey, Alexander J.
Doherty, Cara M.
Reineck, Philipp
Mulet, Xavier
Tetienne, Jean-Philippe
Broadway, David A.
Mesoscale and Nanoscale Physics
The ability to modulate the photoluminescence (PL) of nanomaterials via spin-related effects is vital for many emerging quantum technologies, with nanoscale quantum sensing and imaging being particular areas of focus. Carbon-based quantum dots (CQDs) are among the most common forms of luminescent nanomaterials, appealing due to their ease of synthesis, tunability through organic chemistry, high brightness, and natural biocompatibility. However, the observation of room temperature, spin-dependent PL has remained elusive. Here we report on the observation of PL modulation of CQDs by magnetic fields ($\sim 10$ mT) under ambient conditions. We synthesize a series of CQDs using 19 different amino acids, which have a range of PL emission spectra and exhibit a clear magneto-PL effect (up to $\sim 1$% change). Furthermore, an electron spin resonance is detected in the PL with a g-factor of g $\approx$ 2, suggesting a process similar to the radical pair mechanism is responsible. Finally, we show that the magneto-PL contrast decreases in the presence of paramagnetic species, which we attribute to an increase in magnetic noise-induced spin relaxation in the CQDs. Our work brings new functionalities to these commonly used and biocompatible luminescent nanoparticles, opening new opportunities for in situ quantum sensing and imaging of biological samples.
title Spin-dependent photoluminescence in carbon-based quantum dots
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2510.24062