---
DOAJ_listed: '1'
OA_place: publisher
OA_type: gold
PlanS_conform: '1'
_id: '22100'
abstract:
- lang: eng
  text: Spin mixtures of degenerate fermions are a cornerstone of quantum many-body
    physics, enabling superfluidity, polarons, and rich spin dynamics through s-wave
    scattering resonances. Combining them with strong, long-range dipolar interactions
    provides highly flexible control schemes promising even more exotic quantum phases.
    Recently, microwave shielding gave access to spin-polarized degenerate samples
    of dipolar fermionic molecules, where tunable p-wave interactions were enabled
    by field-linked resonances available only by compromising the shielding (due to
    experimental limitations). Here, we study the scattering properties of a fermionic
    dipolar spin mixture and show that a universal s-wave resonance is readily accessible
    without compromising the shielding. We develop a universal description of the
    tunable s-wave interaction and weakly bound tetratomic states based on the microwave-field
    parameters. The s-wave resonance paves the way to stable, controllable and strongly-interacting
    dipolar spin mixtures of deeply degenerate fermions and supports favorable conditions
    to reach this regime via evaporative cooling.
acknowledgement: J.-L.Li thanks Gaoren Wang for valuable discussions on the absorbing
  boundary condition. G.M.K. thanks P. Giannakeas for fruitful discussions during
  the initial stages of this study. G.M.K. was funded by the Austrian Science Fund
  (FWF) [10.55776/F1004]. R.A. received funding from the Austrian Academy of Science
  ÖAW grant No. PR1029OEAW03. A.S. acknowledges funding from the European Union’s
  Horizon Europe research and innovation programme under grant agreement No. 101219560.
article_number: '201'
article_processing_charge: Yes
article_type: original
arxiv: 1
author:
- first_name: Jinglun
  full_name: Li, Jinglun
  id: ff19510a-0d2c-11ef-b018-c338ad2f4325
  last_name: Li
- first_name: Georgios
  full_name: Koutentakis, Georgios
  id: d7b23d3a-9e21-11ec-b482-f76739596b95
  last_name: Koutentakis
- first_name: Mateja
  full_name: Hrast, Mateja
  id: 48dbb294-2a9c-11ef-905d-f56be71f0e5d
  last_name: Hrast
- first_name: Mikhail
  full_name: Lemeshko, Mikhail
  id: 37CB05FA-F248-11E8-B48F-1D18A9856A87
  last_name: Lemeshko
  orcid: 0000-0002-6990-7802
- first_name: Andreas
  full_name: Schindewolf, Andreas
  last_name: Schindewolf
- first_name: Ragheed
  full_name: Al Hyder, Ragheed
  id: d1c405be-ae15-11ed-8510-ccf53278162e
  last_name: Al Hyder
citation:
  ama: Li J, Koutentakis G, Hrast M, Lemeshko M, Schindewolf A, Al Hyder R. Tunable
    field-linked s-wave interactions in dipolar fermi mixtures. <i>Communications
    Physics</i>. 2026;9. doi:<a href="https://doi.org/10.1038/s42005-026-02578-8">10.1038/s42005-026-02578-8</a>
  apa: Li, J., Koutentakis, G., Hrast, M., Lemeshko, M., Schindewolf, A., &#38; Al
    Hyder, R. (2026). Tunable field-linked s-wave interactions in dipolar fermi mixtures.
    <i>Communications Physics</i>. Springer Nature. <a href="https://doi.org/10.1038/s42005-026-02578-8">https://doi.org/10.1038/s42005-026-02578-8</a>
  chicago: Li, Jinglun, Georgios Koutentakis, Mateja Hrast, Mikhail Lemeshko, Andreas
    Schindewolf, and Ragheed Al Hyder. “Tunable Field-Linked s-Wave Interactions in
    Dipolar Fermi Mixtures.” <i>Communications Physics</i>. Springer Nature, 2026.
    <a href="https://doi.org/10.1038/s42005-026-02578-8">https://doi.org/10.1038/s42005-026-02578-8</a>.
  ieee: J. Li, G. Koutentakis, M. Hrast, M. Lemeshko, A. Schindewolf, and R. Al Hyder,
    “Tunable field-linked s-wave interactions in dipolar fermi mixtures,” <i>Communications
    Physics</i>, vol. 9. Springer Nature, 2026.
  ista: Li J, Koutentakis G, Hrast M, Lemeshko M, Schindewolf A, Al Hyder R. 2026.
    Tunable field-linked s-wave interactions in dipolar fermi mixtures. Communications
    Physics. 9, 201.
  mla: Li, Jinglun, et al. “Tunable Field-Linked s-Wave Interactions in Dipolar Fermi
    Mixtures.” <i>Communications Physics</i>, vol. 9, 201, Springer Nature, 2026,
    doi:<a href="https://doi.org/10.1038/s42005-026-02578-8">10.1038/s42005-026-02578-8</a>.
  short: J. Li, G. Koutentakis, M. Hrast, M. Lemeshko, A. Schindewolf, R. Al Hyder,
    Communications Physics 9 (2026).
corr_author: '1'
das_tickbox: '1'
dataavailabilitystatement: The data that support the findings of this study are available
  from the corresponding authors upon request. The computational codes that were used
  to generate the figures presented in this study are available from the corresponding
  authors upon request.
date_created: 2026-06-21T22:02:58Z
date_published: 2026-04-14T00:00:00Z
date_updated: 2026-06-24T06:10:44Z
day: '14'
ddc:
- '530'
department:
- _id: MiLe
doi: 10.1038/s42005-026-02578-8
external_id:
  arxiv:
  - '2506.23318'
file:
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intvolume: '         9'
language:
- iso: eng
month: '04'
oa: 1
oa_version: Published Version
project:
- _id: 7c040762-9f16-11ee-852c-dd79eeee4ab3
  grant_number: F100403
  name: Coherent Optical Metrology Beyond Electric-Dipole-Allowed Transitions
- _id: 8fa7db46-16d5-11f0-9cad-917600954daf
  grant_number: '12078'
  name: Polarons in Lead Halide Perovskites
publication: Communications Physics
publication_identifier:
  eissn:
  - 2399-3650
publication_status: published
publisher: Springer Nature
quality_controlled: '1'
researchdata_availability: upon request
scopus_import: '1'
status: public
supplementarymaterial: yes
title: Tunable field-linked s-wave interactions in dipolar fermi mixtures
tmp:
  image: /images/cc_by.png
  legal_code_url: https://creativecommons.org/licenses/by/4.0/legalcode
  name: Creative Commons Attribution 4.0 International Public License (CC-BY 4.0)
  short: CC BY (4.0)
type: journal_article
user_id: 2DF688A6-F248-11E8-B48F-1D18A9856A87
volume: 9
year: '2026'
...
---
OA_place: publisher
OA_type: hybrid
PlanS_conform: '1'
_id: '21149'
abstract:
- lang: eng
  text: We present a general theoretical framework for helical dichroism (HD), establishing
    an explicit link between chiral resolution and orbital angular momentum (OAM)
    exchange in light–matter interaction. Tracing microscopic mechanisms of the OAM
    transfer, we derive rotational selection rules, which establish that HD emerges
    only from the spin–orbit coupling of light, even for beams without the far-field
    OAM. Our findings refine the conditions for observing HD, provide a tool to re-examine
    the outcome of prior experiments, and guide future designs for chiral sensing
    with structured light.
acknowledgement: This research was funded in whole or in part by the Austrian Science
  Fund (FWF) [10.55776/F1004].
article_number: '053204'
article_processing_charge: Yes (via OA deal)
article_type: original
arxiv: 1
author:
- first_name: Mateja
  full_name: Hrast, Mateja
  id: 48dbb294-2a9c-11ef-905d-f56be71f0e5d
  last_name: Hrast
- first_name: Georgios
  full_name: Koutentakis, Georgios
  id: d7b23d3a-9e21-11ec-b482-f76739596b95
  last_name: Koutentakis
- first_name: Mikhail
  full_name: Maslov, Mikhail
  id: 2E65BB0E-F248-11E8-B48F-1D18A9856A87
  last_name: Maslov
  orcid: 0000-0003-4074-2570
- first_name: Mikhail
  full_name: Lemeshko, Mikhail
  id: 37CB05FA-F248-11E8-B48F-1D18A9856A87
  last_name: Lemeshko
  orcid: 0000-0002-6990-7802
citation:
  ama: Hrast M, Koutentakis G, Maslov M, Lemeshko M. Bottom-up analysis of rovibrational
    helical dichroism. <i>Physical Review Letters</i>. 2026;136(5). doi:<a href="https://doi.org/10.1103/fkf1-1jml">10.1103/fkf1-1jml</a>
  apa: Hrast, M., Koutentakis, G., Maslov, M., &#38; Lemeshko, M. (2026). Bottom-up
    analysis of rovibrational helical dichroism. <i>Physical Review Letters</i>. American
    Physical Society. <a href="https://doi.org/10.1103/fkf1-1jml">https://doi.org/10.1103/fkf1-1jml</a>
  chicago: Hrast, Mateja, Georgios Koutentakis, Mikhail Maslov, and Mikhail Lemeshko.
    “Bottom-up Analysis of Rovibrational Helical Dichroism.” <i>Physical Review Letters</i>.
    American Physical Society, 2026. <a href="https://doi.org/10.1103/fkf1-1jml">https://doi.org/10.1103/fkf1-1jml</a>.
  ieee: M. Hrast, G. Koutentakis, M. Maslov, and M. Lemeshko, “Bottom-up analysis
    of rovibrational helical dichroism,” <i>Physical Review Letters</i>, vol. 136,
    no. 5. American Physical Society, 2026.
  ista: Hrast M, Koutentakis G, Maslov M, Lemeshko M. 2026. Bottom-up analysis of
    rovibrational helical dichroism. Physical Review Letters. 136(5), 053204.
  mla: Hrast, Mateja, et al. “Bottom-up Analysis of Rovibrational Helical Dichroism.”
    <i>Physical Review Letters</i>, vol. 136, no. 5, 053204, American Physical Society,
    2026, doi:<a href="https://doi.org/10.1103/fkf1-1jml">10.1103/fkf1-1jml</a>.
  short: M. Hrast, G. Koutentakis, M. Maslov, M. Lemeshko, Physical Review Letters
    136 (2026).
corr_author: '1'
date_created: 2026-02-06T10:53:17Z
date_published: 2026-02-05T00:00:00Z
date_updated: 2026-02-10T11:30:37Z
day: '05'
ddc:
- '530'
department:
- _id: MiLe
doi: 10.1103/fkf1-1jml
external_id:
  arxiv:
  - '2505.16393'
file:
- access_level: open_access
  checksum: 805c929fff9fd4d0e733293eaace67b8
  content_type: application/pdf
  creator: dernst
  date_created: 2026-02-10T11:25:46Z
  date_updated: 2026-02-10T11:25:46Z
  file_id: '21210'
  file_name: 2026_PhysicalReviewLetters_Hrast.pdf
  file_size: 511312
  relation: main_file
  success: 1
file_date_updated: 2026-02-10T11:25:46Z
fulldoi: https://doi.org/10.1103/fkf1-1jml
has_accepted_license: '1'
intvolume: '       136'
issue: '5'
language:
- iso: eng
month: '02'
oa: 1
oa_version: Published Version
project:
- _id: 7c040762-9f16-11ee-852c-dd79eeee4ab3
  grant_number: F100403
  name: Coherent Optical Metrology Beyond Electric-Dipole-Allowed Transitions
publication: Physical Review Letters
publication_identifier:
  eissn:
  - 1079-7114
  issn:
  - 0031-9007
publication_status: published
publisher: American Physical Society
quality_controlled: '1'
scopus_import: '1'
status: public
title: Bottom-up analysis of rovibrational helical dichroism
tmp:
  image: /images/cc_by.png
  legal_code_url: https://creativecommons.org/licenses/by/4.0/legalcode
  name: Creative Commons Attribution 4.0 International Public License (CC-BY 4.0)
  short: CC BY (4.0)
type: journal_article
user_id: 2DF688A6-F248-11E8-B48F-1D18A9856A87
volume: 136
year: '2026'
...
---
OA_place: publisher
OA_type: hybrid
_id: '18710'
abstract:
- lang: eng
  text: We present an ab initio theoretical method to calculate the resonant Auger
    spectrum in the presence of ultrafast dissociation. The method is demonstrated
    by deriving the L-VV resonant Auger spectrum mediated by the 2p3/2−1σ* resonance
    in HCl, where the electronic Auger decay and nuclear dissociation occur on the
    same time scale. The Auger decay rates are calculated within the one-center approximation
    and are shown to vary significantly with the inter-nuclear distance. A quantum-mechanical
    description of dissociation is effectuated by propagating the corresponding Franck–Condon
    factors. The calculated profiles of Auger spectral lines resemble those of atomic
    Auger decay but here the characteristic tails extend towards lower electron kinetic
    energies, which reflect specific features of the potential energy curves. The
    presented method can describe the resonant Auger spectrum for an arbitrary speed
    of dissociation and simplifies to known approximations in the limiting cases.
acknowledgement: This publication is based upon work from COST Action CA18212 – Molecular
  Dynamics in the GAS phase (MD-GAS), supported by COST (European Cooperation in Science
  and Technology). This work was financially supported by the Slovenian Research Agency
  in the framework of research program P1-0112 Studies of Atoms, Molecules and Structures
  by Photons and Particles. Part of this work was financed by the European Research
  Council (ERC) through the Starting Grant No. 801770 (ANGULON). The authors acknowledge
  P. Lablanquie, H. Iwayama, F. Penent, K. Soejima and E. Shigemasa for sharing their
  unpublished experimental spectra on HCl.
article_processing_charge: Yes (via OA deal)
article_type: original
author:
- first_name: Mateja
  full_name: Hrast, Mateja
  id: 48dbb294-2a9c-11ef-905d-f56be71f0e5d
  last_name: Hrast
- first_name: Marko
  full_name: Ljubotina, Marko
  id: F75EE9BE-5C90-11EA-905D-16643DDC885E
  last_name: Ljubotina
  orcid: 0000-0003-0038-7068
- first_name: Matjaz
  full_name: Zitnik, Matjaz
  last_name: Zitnik
citation:
  ama: Hrast M, Ljubotina M, Zitnik M. Ab initio Auger spectrum of the ultrafast dissociating
    2p3/2−1σ* resonance in HCl. <i>Physical Chemistry Chemical Physics</i>. 2025;27(3):1473-1482.
    doi:<a href="https://doi.org/10.1039/d4cp03727h">10.1039/d4cp03727h</a>
  apa: Hrast, M., Ljubotina, M., &#38; Zitnik, M. (2025). Ab initio Auger spectrum
    of the ultrafast dissociating 2p3/2−1σ* resonance in HCl. <i>Physical Chemistry
    Chemical Physics</i>. Royal Society of Chemistry. <a href="https://doi.org/10.1039/d4cp03727h">https://doi.org/10.1039/d4cp03727h</a>
  chicago: Hrast, Mateja, Marko Ljubotina, and Matjaz Zitnik. “Ab Initio Auger Spectrum
    of the Ultrafast Dissociating 2p3/2−1σ* Resonance in HCl.” <i>Physical Chemistry
    Chemical Physics</i>. Royal Society of Chemistry, 2025. <a href="https://doi.org/10.1039/d4cp03727h">https://doi.org/10.1039/d4cp03727h</a>.
  ieee: M. Hrast, M. Ljubotina, and M. Zitnik, “Ab initio Auger spectrum of the ultrafast
    dissociating 2p3/2−1σ* resonance in HCl,” <i>Physical Chemistry Chemical Physics</i>,
    vol. 27, no. 3. Royal Society of Chemistry, pp. 1473–1482, 2025.
  ista: Hrast M, Ljubotina M, Zitnik M. 2025. Ab initio Auger spectrum of the ultrafast
    dissociating 2p3/2−1σ* resonance in HCl. Physical Chemistry Chemical Physics.
    27(3), 1473–1482.
  mla: Hrast, Mateja, et al. “Ab Initio Auger Spectrum of the Ultrafast Dissociating
    2p3/2−1σ* Resonance in HCl.” <i>Physical Chemistry Chemical Physics</i>, vol.
    27, no. 3, Royal Society of Chemistry, 2025, pp. 1473–82, doi:<a href="https://doi.org/10.1039/d4cp03727h">10.1039/d4cp03727h</a>.
  short: M. Hrast, M. Ljubotina, M. Zitnik, Physical Chemistry Chemical Physics 27
    (2025) 1473–1482.
corr_author: '1'
date_created: 2024-12-29T23:01:58Z
date_published: 2025-01-21T00:00:00Z
date_updated: 2026-09-09T09:20:40Z
day: '21'
ddc:
- '530'
department:
- _id: MiLe
- _id: MaSe
doi: 10.1039/d4cp03727h
ec_funded: 1
external_id:
  isi:
  - '001379819100001'
  pmid:
  - '39698879'
file:
- access_level: open_access
  checksum: d035683179547b41b811107a8649aab0
  content_type: application/pdf
  creator: dernst
  date_created: 2025-04-16T09:46:45Z
  date_updated: 2025-04-16T09:46:45Z
  file_id: '19581'
  file_name: 2025_PCCP_Hrast.pdf
  file_size: 1270582
  relation: main_file
  success: 1
file_date_updated: 2025-04-16T09:46:45Z
fulldoi: https://doi.org/10.1039/d4cp03727h
has_accepted_license: '1'
intvolume: '        27'
isi: 1
issue: '3'
language:
- iso: eng
license: https://creativecommons.org/licenses/by-nc/3.0/
month: '01'
oa: 1
oa_version: Published Version
page: 1473-1482
pmid: 1
project:
- _id: 2688CF98-B435-11E9-9278-68D0E5697425
  call_identifier: H2020
  grant_number: '801770'
  name: 'Angulon: physics and applications of a new quasiparticle'
publication: Physical Chemistry Chemical Physics
publication_identifier:
  issn:
  - 1463-9076
publication_status: published
publisher: Royal Society of Chemistry
quality_controlled: '1'
related_material:
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  - id: '18716'
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    status: public
  - id: '22866'
    relation: research_data
    status: public
scopus_import: '1'
status: public
title: Ab initio Auger spectrum of the ultrafast dissociating 2p3/2−1σ* resonance
  in HCl
tmp:
  image: /images/cc_by_nc.png
  legal_code_url: https://creativecommons.org/licenses/by-nc/3.0/legalcode
  name: Creative Commons Attribution-NonCommercial 3.0 Unported (CC BY-NC 3.0)
  short: CC BY-NC (3.0)
type: journal_article
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volume: 27
year: '2025'
...
---
_id: '18716'
abstract:
- lang: eng
  text: Data for publication 10.1039/d4cp03727h
article_processing_charge: No
author:
- first_name: Mateja
  full_name: Hrast, Mateja
  id: 48dbb294-2a9c-11ef-905d-f56be71f0e5d
  last_name: Hrast
citation:
  ama: 'Hrast M. Data for: Ab initio Auger spectrum of the ultrafast dissociating
    2p3/2−1σ* resonance in HCl. 2024. doi:<a href="https://doi.org/10.5281/ZENODO.13833474">10.5281/ZENODO.13833474</a>'
  apa: 'Hrast, M. (2024). Data for: Ab initio Auger spectrum of the ultrafast dissociating
    2p3/2−1σ* resonance in HCl. Zenodo. <a href="https://doi.org/10.5281/ZENODO.13833474">https://doi.org/10.5281/ZENODO.13833474</a>'
  chicago: 'Hrast, Mateja. “Data for: Ab Initio Auger Spectrum of the Ultrafast Dissociating
    2p3/2−1σ* Resonance in HCl.” Zenodo, 2024. <a href="https://doi.org/10.5281/ZENODO.13833474">https://doi.org/10.5281/ZENODO.13833474</a>.'
  ieee: 'M. Hrast, “Data for: Ab initio Auger spectrum of the ultrafast dissociating
    2p3/2−1σ* resonance in HCl.” Zenodo, 2024.'
  ista: 'Hrast M. 2024. Data for: Ab initio Auger spectrum of the ultrafast dissociating
    2p3/2−1σ* resonance in HCl, Zenodo, <a href="https://doi.org/10.5281/ZENODO.13833474">10.5281/ZENODO.13833474</a>.'
  mla: 'Hrast, Mateja. <i>Data for: Ab Initio Auger Spectrum of the Ultrafast Dissociating
    2p3/2−1σ* Resonance in HCl</i>. Zenodo, 2024, doi:<a href="https://doi.org/10.5281/ZENODO.13833474">10.5281/ZENODO.13833474</a>.'
  short: M. Hrast, (2024).
corr_author: '1'
date_created: 2025-01-02T08:21:55Z
date_published: 2024-09-24T00:00:00Z
date_updated: 2025-05-19T14:03:18Z
day: '24'
ddc:
- '530'
department:
- _id: MiLe
doi: 10.5281/ZENODO.13833474
fulldoi: https://doi.org/10.5281/ZENODO.13833474
main_file_link:
- open_access: '1'
  url: https://doi.org/10.5281/zenodo.13833474
month: '09'
oa: 1
oa_version: None
publisher: Zenodo
related_material:
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  - id: '18710'
    relation: used_in_publication
    status: public
status: public
title: 'Data for: Ab initio Auger spectrum of the ultrafast dissociating 2p3/2−1σ*
  resonance in HCl'
type: research_data_reference
user_id: 2DF688A6-F248-11E8-B48F-1D18A9856A87
year: '2024'
...
---
APC_amount: 3028,31 EUR
DOAJ_listed: '1'
OA_place: publisher
OA_type: gold
_id: '18087'
abstract:
- lang: eng
  text: We present a theory describing the interaction of structured light, such as
    light carrying orbital angular momentum, with molecules. The light-matter interaction
    Hamiltonian we derive is expressed through couplings between spherical gradients
    of the electric field and the (transition) electric multipole moments of a particle
    of any nontrivial rotation point group. Our model can therefore accommodate an
    arbitrary complexity of the molecular and electric field structure, and it can
    be straightforwardly extended to atoms or nanostructures. Applying this framework
    to rovibrational spectroscopy of molecules, we uncover the general mechanism of
    angular momentum exchange between the spin and orbital angular momenta of light,
    molecular rotation, and its center-of-mass motion. We show that the nonzero vorticity
    of Laguerre-Gaussian beams can strongly enhance certain rovibrational transitions
    that are considered forbidden in the case of nonhelical light. We discuss the
    experimental requirements for the observation of these forbidden transitions in
    state-of-the-art spatially resolved spectroscopy measurements.
acknowledgement: We are grateful to Emilio Pisanty and Philipp Lunt for valuable discussions.
  This research was funded wholly or in part by the Austrian Science Fund (FWF) [10.55776/F1004].
  G.M.K. gratefully acknowledges funding from the European Union’s Horizon 2020 research
  and innovation programme under the Marie Skłodowska-Curie Grant Agreement No. 101034413.
  M.L. acknowledges support by the European Research Council (ERC) Starting Grant
  No. 801770 (ANGULON). O.H.H. acknowledges support by the Austrian Science Fund (FWF)
  [10.55776/P36040]. Furthermore, the financial support by the Austrian Federal Ministry
  for Digital and Economic Affairs, the National Foundation for Research, Technology
  and Development, and the Christian Doppler Research Association is gratefully acknowledged.
article_number: '033277'
article_processing_charge: Yes
article_type: original
arxiv: 1
author:
- first_name: Mikhail
  full_name: Maslov, Mikhail
  id: 2E65BB0E-F248-11E8-B48F-1D18A9856A87
  last_name: Maslov
  orcid: 0000-0003-4074-2570
- first_name: Georgios
  full_name: Koutentakis, Georgios
  id: d7b23d3a-9e21-11ec-b482-f76739596b95
  last_name: Koutentakis
- first_name: Mateja
  full_name: Hrast, Mateja
  id: 48dbb294-2a9c-11ef-905d-f56be71f0e5d
  last_name: Hrast
- first_name: Oliver H.
  full_name: Heckl, Oliver H.
  last_name: Heckl
- first_name: Mikhail
  full_name: Lemeshko, Mikhail
  id: 37CB05FA-F248-11E8-B48F-1D18A9856A87
  last_name: Lemeshko
  orcid: 0000-0002-6990-7802
citation:
  ama: Maslov M, Koutentakis G, Hrast M, Heckl OH, Lemeshko M. Theory of angular momentum
    transfer from light to molecules. <i>Physical Review Research</i>. 2024;6(3).
    doi:<a href="https://doi.org/10.1103/physrevresearch.6.033277">10.1103/physrevresearch.6.033277</a>
  apa: Maslov, M., Koutentakis, G., Hrast, M., Heckl, O. H., &#38; Lemeshko, M. (2024).
    Theory of angular momentum transfer from light to molecules. <i>Physical Review
    Research</i>. American Physical Society. <a href="https://doi.org/10.1103/physrevresearch.6.033277">https://doi.org/10.1103/physrevresearch.6.033277</a>
  chicago: Maslov, Mikhail, Georgios Koutentakis, Mateja Hrast, Oliver H. Heckl, and
    Mikhail Lemeshko. “Theory of Angular Momentum Transfer from Light to Molecules.”
    <i>Physical Review Research</i>. American Physical Society, 2024. <a href="https://doi.org/10.1103/physrevresearch.6.033277">https://doi.org/10.1103/physrevresearch.6.033277</a>.
  ieee: M. Maslov, G. Koutentakis, M. Hrast, O. H. Heckl, and M. Lemeshko, “Theory
    of angular momentum transfer from light to molecules,” <i>Physical Review Research</i>,
    vol. 6, no. 3. American Physical Society, 2024.
  ista: Maslov M, Koutentakis G, Hrast M, Heckl OH, Lemeshko M. 2024. Theory of angular
    momentum transfer from light to molecules. Physical Review Research. 6(3), 033277.
  mla: Maslov, Mikhail, et al. “Theory of Angular Momentum Transfer from Light to
    Molecules.” <i>Physical Review Research</i>, vol. 6, no. 3, 033277, American Physical
    Society, 2024, doi:<a href="https://doi.org/10.1103/physrevresearch.6.033277">10.1103/physrevresearch.6.033277</a>.
  short: M. Maslov, G. Koutentakis, M. Hrast, O.H. Heckl, M. Lemeshko, Physical Review
    Research 6 (2024).
corr_author: '1'
date_created: 2024-09-18T11:43:16Z
date_published: 2024-09-10T00:00:00Z
date_updated: 2026-04-07T11:52:53Z
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doi: 10.1103/physrevresearch.6.033277
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title: Theory of angular momentum transfer from light to molecules
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