Primary quantum thermometry of mm-wave blackbody radiation via induced state transfer in Rydberg states of cold atoms

Fuente: arXiv
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Main Authors: Schlossberger, Noah, Rotunno, Andrew P., Eckel, Stephen P., Norrgard, Eric B., Manchaiah, Dixith, Prajapati, Nikunjkumar, Artusio-Glimpse, Alexandra B., Berweger, Samuel, Simons, Matthew T., Shylla, Dangka, Watterson, William J., Patrick, Charles, Meraki, Adil, Talashila, Rajavardhan, Younes, Amanda, La Mantia, David S., Holloway, Christopher L.
Format: Preprint
Published: 2024
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author Schlossberger, Noah
Rotunno, Andrew P.
Eckel, Stephen P.
Norrgard, Eric B.
Manchaiah, Dixith
Prajapati, Nikunjkumar
Artusio-Glimpse, Alexandra B.
Berweger, Samuel
Simons, Matthew T.
Shylla, Dangka
Watterson, William J.
Patrick, Charles
Meraki, Adil
Talashila, Rajavardhan
Younes, Amanda
La Mantia, David S.
Holloway, Christopher L.
author_facet Schlossberger, Noah
Rotunno, Andrew P.
Eckel, Stephen P.
Norrgard, Eric B.
Manchaiah, Dixith
Prajapati, Nikunjkumar
Artusio-Glimpse, Alexandra B.
Berweger, Samuel
Simons, Matthew T.
Shylla, Dangka
Watterson, William J.
Patrick, Charles
Meraki, Adil
Talashila, Rajavardhan
Younes, Amanda
La Mantia, David S.
Holloway, Christopher L.
contents Rydberg states of alkali atoms are highly sensitive to electromagnetic radiation in the GHz-to-THz regime because their transitions have large electric dipole moments. Consequently, environmental blackbody radiation (BBR) can couple Rydberg states together at $μ$s timescales. Here, we track the BBR-induced transfer of a prepared Rydberg state to its neighbors and use the evolution of these state populations to characterize the BBR field at the relevant wavelengths, primarily at 130 GHz. We use selective field ionization readout of Rydberg states with principal quantum number $n\sim30$ in $^{85}$Rb and substantiate our ionization signal with a theoretical model. With this detection method, we measure the associated blackbody-radiation-induced time dynamics of these states, reproduce the results with a simple semi-classical population transfer model, and demonstrate that this measurement is temperature sensitive with a statistical sensitivity to the fractional temperature uncertainty of 0.09 Hz$^{-1/2}$, corresponding to 26 K$\cdot$Hz$^{-1/2}$ at room temperature. This represents a calibration-free SI-traceable temperature measurement, for which we calculate a systematic fractional temperature uncertainty of 0.006, corresponding to 2 K at room temperature when used as a primary temperature standard.
format Preprint
id arxiv_https___arxiv_org_abs_2410_11694
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Primary quantum thermometry of mm-wave blackbody radiation via induced state transfer in Rydberg states of cold atoms
Schlossberger, Noah
Rotunno, Andrew P.
Eckel, Stephen P.
Norrgard, Eric B.
Manchaiah, Dixith
Prajapati, Nikunjkumar
Artusio-Glimpse, Alexandra B.
Berweger, Samuel
Simons, Matthew T.
Shylla, Dangka
Watterson, William J.
Patrick, Charles
Meraki, Adil
Talashila, Rajavardhan
Younes, Amanda
La Mantia, David S.
Holloway, Christopher L.
Atomic Physics
Rydberg states of alkali atoms are highly sensitive to electromagnetic radiation in the GHz-to-THz regime because their transitions have large electric dipole moments. Consequently, environmental blackbody radiation (BBR) can couple Rydberg states together at $μ$s timescales. Here, we track the BBR-induced transfer of a prepared Rydberg state to its neighbors and use the evolution of these state populations to characterize the BBR field at the relevant wavelengths, primarily at 130 GHz. We use selective field ionization readout of Rydberg states with principal quantum number $n\sim30$ in $^{85}$Rb and substantiate our ionization signal with a theoretical model. With this detection method, we measure the associated blackbody-radiation-induced time dynamics of these states, reproduce the results with a simple semi-classical population transfer model, and demonstrate that this measurement is temperature sensitive with a statistical sensitivity to the fractional temperature uncertainty of 0.09 Hz$^{-1/2}$, corresponding to 26 K$\cdot$Hz$^{-1/2}$ at room temperature. This represents a calibration-free SI-traceable temperature measurement, for which we calculate a systematic fractional temperature uncertainty of 0.006, corresponding to 2 K at room temperature when used as a primary temperature standard.
title Primary quantum thermometry of mm-wave blackbody radiation via induced state transfer in Rydberg states of cold atoms
topic Atomic Physics
url https://arxiv.org/abs/2410.11694