Effective Faraday interaction between light and Helium-3 nuclear spins in a multi-pass cell
Pith reviewed 2026-06-26 17:23 UTC · model grok-4.3
The pith
Metastability-exchange collisions in a multi-pass helium-3 cell mediate an effective Faraday interaction between light and nuclear spins.
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
Core claim
By exploiting metastability-exchange collisions in a low-pressure helium-3 gas cell at room temperature, an effective Faraday interaction is established between the collective nuclear spin and an optical probe. The interaction is enhanced using a multi-pass cell, and extrapolation to increased probe power yields a projected measurement-induced squeezing rate of 0.52 s^{-1}.
What carries the argument
The effective Faraday interaction mediated by metastability-exchange collisions between metastable and ground-state helium-3 atoms in a radio-frequency discharge.
Load-bearing premise
The interaction strength scales linearly with a tenfold increase in probe power without added decoherence, technical noise, or saturation effects.
What would settle it
A measurement at ten times the present probe power that shows either a sub-linear rise in interaction strength or a rise in decoherence that prevents reaching the projected 0.52 s^{-1} squeezing rate.
Figures
read the original abstract
Helium-3 nuclear spins form an exceptionally stable quantum system with extremely long coherence time, offering exciting opportunities for quantum technologies. In particular, nuclear spin-squeezed states promise enhanced precision for sensing tasks and tests of new physics. A central challenge for all these applications is the realization of a controllable light-nuclear spin interface. Here we experimentally demonstrate such an interface by exploiting metastability-exchange collisions in a low-pressure helium-3 gas cell at room temperature. A radio-frequency discharge produces a small population of metastable atoms that both enables efficient optical pumping and mediates an effective Faraday interaction between the collective nuclear spin and an optical probe. We quantitatively characterize the strength of this interaction as a function of the nuclear polarization, applied magnetic field, and probe-beam parameters. Moreover, we show that using a multi-pass cell enhances this interaction by effectively increasing the optical depth. Extrapolating to a tenfold increase of the probe power used in the present experiment, we project a measurement-induced squeezing rate of 0.52 s$^{-1}$. Our results provide a practical pathway for optical access to helium-3 nuclear spins and open prospects for generating long-lived, macroscopic nuclear spin-squeezed states for quantum metrology.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The manuscript experimentally demonstrates an effective Faraday interaction between an optical probe and helium-3 nuclear spins in a low-pressure room-temperature gas cell, mediated by metastability-exchange collisions with a small metastable-atom population produced by RF discharge. The interaction strength is quantitatively characterized versus nuclear polarization, applied magnetic field, and probe-beam parameters; multi-pass geometry is shown to enhance the effective optical depth. The authors extrapolate the measured interaction to tenfold higher probe power and project a measurement-induced squeezing rate of 0.52 s^{-1}.
Significance. If the demonstrated interface and its scaling hold, the work supplies a practical optical route to long-coherence-time helium-3 nuclear spins at room temperature, opening a path to long-lived macroscopic spin-squeezed states for quantum metrology and fundamental-physics tests. The quantitative, multi-parameter characterization and the explicit multi-pass enhancement constitute clear experimental strengths; the projection, while labeled as extrapolation, directly links the measured interface to a concrete metrological figure of merit.
major comments (1)
- [Abstract and extrapolation paragraph] Abstract and the extrapolation paragraph (likely §5 or Discussion): the projected squeezing rate of 0.52 s^{-1} is obtained by linear extrapolation of the measured Faraday interaction strength to a tenfold increase in probe power. No data, model, or bound is supplied for possible deviations from linearity arising from changes in metastable-atom density, optical-pumping efficiency, absorption saturation, or additional technical/spin-relaxation noise at the higher power; this assumption is load-bearing for the headline metrological claim.
minor comments (2)
- [Figure captions] Figure captions (e.g., Fig. 3 or 4): the procedure used to extract the effective Faraday rotation angle or coupling rate from the raw time traces is not stated, making it difficult to assess systematic uncertainties in the reported interaction strengths.
- [§2] §2 (Experimental setup): the precise value of the metastable-atom fraction and its uncertainty are not given, although this parameter directly enters the effective interaction strength.
Simulated Author's Rebuttal
We thank the referee for the constructive review and for recognizing the experimental characterization and multi-pass enhancement. We address the single major comment below.
read point-by-point responses
-
Referee: [Abstract and extrapolation paragraph] Abstract and the extrapolation paragraph (likely §5 or Discussion): the projected squeezing rate of 0.52 s^{-1} is obtained by linear extrapolation of the measured Faraday interaction strength to a tenfold increase in probe power. No data, model, or bound is supplied for possible deviations from linearity arising from changes in metastable-atom density, optical-pumping efficiency, absorption saturation, or additional technical/spin-relaxation noise at the higher power; this assumption is load-bearing for the headline metrological claim.
Authors: We agree that the projection assumes linear scaling of the Faraday interaction with probe power and that the manuscript provides no explicit model or quantitative bounds on deviations at 10 imes power. In the revised version we will expand the extrapolation paragraph (and adjust the abstract wording) to state the operating regime explicitly: the metastable fraction is set by the RF discharge and remains ≪1 % even at the projected power; optical-pumping efficiency and absorption are measured to be linear in the present data set; and saturation of the probe transition would require intensities well above the extrapolated value. We will add a short paragraph noting that additional technical or relaxation noise cannot be ruled out a priori and therefore qualify the 0.52 s^{-1} figure as an estimate under the stated assumptions rather than a guaranteed rate. A full quantitative model or new data at higher power lies outside the scope of the present experiment. revision: yes
Circularity Check
No significant circularity; experimental characterization with explicit linear extrapolation
full rationale
The paper reports quantitative experimental measurements of the effective Faraday interaction strength versus nuclear polarization, magnetic field, and probe parameters, plus multi-pass optical depth enhancement. The 0.52 s^{-1} projection is stated as an extrapolation of the measured interaction to 10x probe power; no equations or derivations in the provided text reduce this projection to a fitted quantity by construction, nor invoke self-citations as load-bearing uniqueness theorems. The work is self-contained against external benchmarks as a characterization study.
Axiom & Free-Parameter Ledger
Reference graph
Works this paper leans on
-
[1]
Gentile, T. R. and Nacher, P. J. and Saam, B. and Walker, T. G. , journal =. Optically polarized ^. 2017 , month =. doi:10.1103/RevModPhys.89.045004 , url =
-
[2]
R B Partridge and G W Series , title =. 1966 , month =. doi:10.1088/0370-1328/88/4/320 , url =
-
[3]
Ultra-sensitive magnetometry based on free precession of nuclear spins , author=. Eur. Phys. J. D , volume=. 2010 , publisher=. doi:10.1140/epjd/e2010-00044-5 , url =
-
[4]
Heil, Werner. Helium Magnetometers. High Sensitivity Magnetometers. 2017. doi:10.1007/978-3-319-34070-8_16
-
[5]
Hyperpolarized and inert gas MRI: the future , author=. Mol. Imaging Biol. , volume=. 2015 , publisher=. doi:doi.org/10.1007/s11307-014-0788-2 , url =
-
[6]
Kitching, John and Knappe, Svenja and Donley, Elizabeth A. , journal=. Atomic Sensors – A Review , year=. doi:10.1109/JSEN.2011.2157679 , url =
-
[7]
Nuclear magnetic resonance imaging with hyperpolarised helium-3 , journal =. 1996 , issn =. doi:https://doi.org/10.1016/S0140-6736(96)90940-X , url =
-
[8]
Collier, G. and Pałasz, T. and Wojna, A. and Głowacz, B. and Suchanek, M. and Olejniczak, Z. and Dohnalik, T. , title =. J. Appl. Phys. , volume =. 2013 , month =. doi:10.1063/1.4807836 , url =
-
[9]
Development and application of a. Nucl. Instrum. Meth. Phys. Res. Sect. A , volume =. 2020 , issn =. doi:https://doi.org/10.1016/j.nima.2020.164301 , url =
-
[10]
Chen, W C and Gentile, T R and Erwin, R and Watson, S and Ye, Q and Krycka, K L and Maranville, B B , title =. 2014 , month =. doi:10.1088/1742-6596/528/1/012014 , url =
-
[11]
Jiang, C. Y. and Tong, X. and Brown, D. R. and Chi, S. and Christianson, A. D. and Kadron, B. J. and Robertson, J. L. and Winn, B. L. , title =. Rev. Sci. Instrum. , volume =. 2014 , month =. doi:10.1063/1.4890391 , url =
-
[12]
A wide angle neutron spin filter system using polarized. Physica B , volume =. 2011 , issn =. doi:https://doi.org/10.1016/j.physb.2010.10.002 , url =
-
[14]
Long-Lived Quantum Memory with Nuclear Atomic Spins , author =. Phys. Rev. Lett. , volume =. 2005 , month =. doi:10.1103/PhysRevLett.95.123002 , url =
-
[15]
Squeezing and entangling nuclear spins in helium 3 , author=. J. Mod. Opt. , volume=. 2007 , publisher=. doi:10.1080/09500340600677005 , url =
-
[16]
Nuclear Spin Squeezing in Helium-3 by Continuous Quantum Nondemolition Measurement , author =. Phys. Rev. Lett. , volume =. 2021 , month =. doi:10.1103/PhysRevLett.127.013601 , url =
-
[17]
Walker, Thad G , title =. 2011 , month =. doi:10.1088/1742-6596/294/1/012001 , url =
-
[18]
Colegrove, F. D. and Schearer, L. D. and Walters, G. K. , journal =. Polarization of. 1963 , month =. doi:10.1103/PhysRev.132.2561 , url =
-
[19]
Batz, M and Nacher, P -J and Tastevin, G , title =. 2011 , month =. doi:10.1088/1742-6596/294/1/012002 , url =
-
[20]
Absolute Magnetometry with
Farooq, Midhat , school =. Absolute Magnetometry with
-
[21]
Wang, Yuting and Wu, Liangyong and Zhang, Kaiyuan and Peng, Mei and Chen, Siyu and Yan, Haiyang , journal=. A polarized. 2024 , publisher=. doi:10.1007/s11433-023-2355-7 , url =
-
[22]
Long-Lived Entanglement Generation of Nuclear Spins Using Coherent Light , author =. Phys. Rev. Lett. , volume =. 2020 , month =. doi:10.1103/PhysRevLett.124.043602 , url =
-
[23]
Alan Serafin and Yvan Castin and Matteo Fadel and Philipp Treutlein and Alice Sinatra , title =. C. R. Phys. , pages =. 2021 , doi =
2021
-
[24]
Fadel, Matteo and Treutlein, Philipp and Sinatra, Alice , title =. 2024 , month =. doi:10.1088/1367-2630/ad8953 , url =
-
[25]
Quantum Kalman Filtering and the Heisenberg Limit in Atomic Magnetometry , author =. Phys. Rev. Lett. , volume =. 2003 , month =. doi:10.1103/PhysRevLett.91.250801 , url =
-
[26]
A. Kuzmich and N. P. Bigelow and L. Mandel , title =. 1998 , month =. doi:10.1209/epl/i1998-00277-9 , url =
-
[28]
Generation of a squeezed state of an oscillator by stroboscopic back-action-evading measurement , author=. Nat. Phys. , volume=. 2015 , publisher=. doi:10.1038/nphys3280 , url =
-
[29]
Bao, Han and Duan, Junlei and Jin, Shenchao and Lu, Xingda and Li, Pengxiong and Qu, Weizhi and Wang, Mingfeng and Novikova, Irina and Mikhailov, Eugeniy E. and Zhao, KaiFeng and M. Spin squeezing of. Nature , volume=. 2020 , publisher=. doi:10.1038/s41586-020-2243-7 , url =
-
[30]
Quantum Interface for Noble-Gas Spins Based on Spin-Exchange Collisions , author =. PRX Quantum , volume =. 2022 , month =. doi:10.1103/PRXQuantum.3.010305 , url =
-
[31]
Strong coupling of alkali-metal spins to noble-gas spins with an hour-long coherence time , author=. Nat. Phys. , volume=. 2022 , publisher=. doi:10.1038/s41567-022-01535-w , url =
-
[32]
Or Katz and Roy Shaham and Ofer Firstenberg , title =. Sci. Adv. , volume =. 2021 , doi =
2021
-
[33]
Conditional squeezing of an atomic alignment , author =. Phys. Rev. A , volume =. 2007 , month =. doi:10.1103/PhysRevA.76.033830 , url =
-
[34]
Reviews of Modern Physics , author =
Quantum interface between light and atomic ensembles , volume =. Reviews of Modern Physics , author =. 2010 , pages =. doi:10.1103/RevModPhys.82.1041 , language =
-
[35]
Nature Communications , author =
Scalable photonic network architecture based on motional averaging in room temperature gas , volume =. Nature Communications , author =. 2016 , pages =. doi:10.1038/ncomms11356 , abstract =
-
[36]
Villard , TITLE =
B. Villard , TITLE =
-
[37]
Tastevin , TITLE =
G. Tastevin , TITLE =
-
[38]
Rutkowski , TITLE =
J. Rutkowski , TITLE =
-
[39]
Metastability exchange optical pumping in
Batz, Marion , URL =. Metastability exchange optical pumping in. 2011 , PDF =
2011
-
[40]
Accurate optical measurement of nuclear polarization in optically pumped. doi:10.1051/jp2:1992258
-
[41]
Fitzsimmons, W. A. and Lane, N. F. and Walters, G. K. , journal =. Diffusion of. 1968 , month =. doi:10.1103/PhysRev.174.193 , url =
-
[42]
M. E. Hayden and G. Archibald and K. M. Gilbert and C. Lei , title =. J. Magn. Reson. , volume =. 2004 , doi =
2004
-
[43]
Tastevin, Geneviève and. J. Chem. Phys. , volume =. 2005 , doi =
2005
-
[44]
C. B. Collins , title =. The Journal of Chemical Physics , volume =. 1964 , doi =
1964
-
[45]
and Leduc, M
Barb\'e, R. and Leduc, M. and Lalo\"e, F. , title =. J. Phys. France , year =
-
[46]
2020 , PDF =
Optical spin-mechanics quantum interface: entanglement and back-action evasion , AUTHOR =. 2020 , PDF =
2020
-
[47]
Colegrove, F. D. and Franken, P. A. , journal =. Optical Pumping of Helium in the ^. 1960 , month =. doi:10.1103/PhysRev.119.680 , url =
-
[48]
Lu, Yuefeng and Abdukerim, Ekrem and Li, Baichuan and Lei, Liwei and Wu, Teng and Guo, Hong , journal =. ^. 2025 , month =. doi:10.1103/dx7x-wdgv , url =
-
[49]
and Fu, C
Wu, L. and Fu, C. and Yan, H. , title =. Meas. Sci. Technol. , volume =. 2025 , doi =
2025
-
[50]
Quantum nondemolition measurements of collective atomic spin , author =. Phys. Rev. A , volume =. 1999 , month =. doi:10.1103/PhysRevA.60.2346 , url =
-
[51]
P. J. Nacher and M. Leduc , title =. J. Phys. France , year =. doi:10.1051/jphys:0198500460120205700 , url =
-
[52]
Jacobs, Kurt and Steck, Daniel A. , year=. A straightforward introduction to continuous quantum measurement , volume=. Contemporary Physics , publisher=. doi:10.1080/00107510601101934 , number=
-
[53]
Howard J. Carmichael , title =. 1999 , address =. doi:10.1007/978-3-662-03875-8 , url =
-
[54]
Howard J. Carmichael , title =. 2008 , address =. doi:10.1007/978-3-540-71320-3 , url =
-
[55]
Quantum nondemolition measurement of spin via the paramagnetic Faraday rotation , author =. Phys. Rev. A , volume =. 1999 , month =. doi:10.1103/PhysRevA.60.4974 , url =
-
[56]
Spin Squeezing of a Cold Atomic Ensemble with the Nuclear Spin of One-Half , author =. Phys. Rev. Lett. , volume =. 2009 , month =. doi:10.1103/PhysRevLett.102.033601 , url =
-
[57]
Magnetic Sensitivity Beyond the Projection Noise Limit by Spin Squeezing , author =. Phys. Rev. Lett. , volume =. 2012 , month =. doi:10.1103/PhysRevLett.109.253605 , url =
-
[58]
Measurement-induced nonlocal entanglement in a hot, strongly interacting atomic system , journal =
Kong, Jia and Jim. Measurement-induced nonlocal entanglement in a hot, strongly interacting atomic system , journal =. 2020 , doi =
2020
-
[59]
Li, S. and Vachaspati, P. and Sheng, D. and Dural, N. and Romalis, M. V. , journal =. Optical rotation in excess of 100 rad generated by. 2011 , month =. doi:10.1103/PhysRevA.84.061403 , url =
-
[60]
Quantum metrology with nonclassical states of atomic ensembles , author =. Rev. Mod. Phys. , volume =. 2018 , publisher =. doi:10.1103/RevModPhys.90.035005 , url =
work page internal anchor Pith review doi:10.1103/revmodphys.90.035005 2018
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