REVIEW 1 minor 206 references
Ab Initio Nuclear Theory for Heavy Nuclei and Its Application to Dark Matter-Nucleus Scattering
T0 review · 0 major / 1 minor · reviewed 2026-06-26 · grok-4.3
Pith's one-line read Ab initio nuclear theory now delivers uncertainty-quantified predictions for heavy nuclei like 208Pb and their responses to dark matter particles.
desk verdict This is a review that summarizes recent ab initio work on heavy nuclei and DM scattering but adds no new calculations or results itself. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
Ab initio calculations of nuclear structure and response functions derived directly from nuclear forces and electroweak currents, with quantified uncertainties.
What would settle it
A large mismatch between the predicted nuclear response functions for 208Pb and the values extracted from dark matter direct detection data or from independent nuclear experiments on the same nucleus would falsify the central claim.
Extended reading notes
Core claim
Ab initio methods have reached the point where they furnish uncertainty-quantified predictions for the structure of 208Pb and other heavy systems, as well as for the nuclear responses that govern dark matter scattering, all derived from the underlying nuclear force and electroweak currents.
Load-bearing premise
The ab initio calculations for 208Pb and the other nuclei discussed yield reliable uncertainty-quantified predictions that can be directly applied to dark matter scattering.
Editorial extensions
If this is right
- Nuclear-physics uncertainties in dark matter direct detection are substantially reduced.
- Interpretation of current and future precision experiments searching for physics beyond the Standard Model becomes more robust.
- Predictions for nuclear responses become available for heavy, deformed, and dripline nuclei.
- Uncertainty-quantified results are obtained for both nuclear structure observables and scattering cross sections.
Reading between the lines
- The same framework could be applied to other nuclei used in rare-event searches, such as xenon or germanium targets.
- If the uncertainty reduction holds, it would allow tighter constraints on dark matter particle properties from existing experimental limits.
- New measurements of nuclear radii or electromagnetic responses in 208Pb could serve as direct tests of the predictions.
- The methods might be extended to calculate responses for other beyond-Standard-Model probes, such as neutrino-nucleus scattering.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The manuscript is a review summarizing recent breakthroughs in ab initio nuclear theory, including extensions of calculations to the heavy nucleus 208Pb, to medium-mass systems with complex deformation, and to weakly-bound nuclei near the driplines. It also summarizes ab initio calculations of nuclear responses for dark matter direct detection. The central claim is that these advances enable uncertainty-quantified predictions directly from nuclear forces and currents, substantially reducing nuclear-physics uncertainties in beyond-Standard-Model searches and supporting more robust interpretation of precision experiments.
Significance. If the cited advances hold, the review is significant for synthesizing progress on previously intractable systems (heavy nuclei and deformed cases) and for explicitly linking these to DM response calculations. It gives credit to the underlying methodological breakthroughs that enable uncertainty quantification, which is a key strength for applications in BSM physics.
minor comments (1)
- [Abstract] Abstract: the phrasing 'the era of precision ab initio nuclear theory has arrived' is a strong claim; a short quantitative example of achieved precision or uncertainty reduction (drawn from the cited works) would strengthen the opening paragraph.
Simulated Author's Rebuttal
We thank the referee for their positive summary of the manuscript, recognition of its significance in synthesizing recent ab initio advances for heavy and deformed nuclei as well as dark matter responses, and recommendation to accept. No major comments were raised.
Circularity Check
Review of external ab initio results; no internal derivation chain
full rationale
This is a review paper that summarizes cited breakthroughs in ab initio calculations for 208Pb, deformed nuclei, dripline systems, and DM responses. No new equations, predictions, or derivations are presented whose validity depends on internal steps. All load-bearing claims rest on external prior works, which are independent of this manuscript. No self-definitional, fitted-input, or self-citation-load-bearing patterns exist within the text.
Assumptions & free parameters
Cite this review
Pith. "Pith review of Ab Initio Nuclear Theory for Heavy Nuclei and Its Application to Dark Matter-Nucleus Scattering." pith.science (2026). https://pith.science/paper/B4XHKPVO
@misc{pith2026260621032,
author = {Pith},
title = {Pith review of: Ab Initio Nuclear Theory for Heavy Nuclei and Its Application to Dark Matter-Nucleus Scattering},
year = {2026},
howpublished = {\url{https://pith.science/paper/B4XHKPVO}},
note = {Machine review of arXiv:2606.21032}
}
abstract
The era of precision ab initio nuclear theory has arrived, enabling uncertainty-quantified predictions for nuclear structure and for interactions with external probes directly from the underlying nuclear force and electroweak currents. This review highlights recent breakthroughs that extend ab initio calculations to the heavy nucleus $^{208}$Pb, to medium-mass systems with complex deformation, and to weakly-bound nuclei near the driplines. We also summarize ab initio calculations of nuclear responses for dark matter direct detection. Together, these advances demonstrate how ab initio methods can substantially reduce nuclear-physics uncertainties in searches for physics beyond the Standard Model, providing a more robust interpretation of current and forthcoming precision experiments.
Figures
Reference graph
Works this paper leans on
-
[2]
Ekström A, Forssén C, Hagen G, Jansen GR, Jiang W, Papenbrock T. What is ab initio in nuclear theory? Front. Phys.\/ 11 (2023) 1129094. doi:10.3389/fphy.2023.1129094
-
[7]
The particle physics experiments database [webpage can be accessed at the link: https://athompson-git.github.io/experiments.html] (2025)
[Dataset] Thompson A. The particle physics experiments database [webpage can be accessed at the link: https://athompson-git.github.io/experiments.html] (2025)
2025
-
[10]
title Modern theory of nuclear forces
Epelbaum E, Hammer HW, Mei ner UG. Modern theory of nuclear forces. Rev. Mod. Phys.\/ 81 (2009) 1773--1825. doi:10.1103/RevModPhys.81.1773
-
[11]
title Chiral effective field theory and nuclear forces
Machleidt R, Entem DR. Chiral effective field theory and nuclear forces. Phys. Rep.\/ 503 (2011) 1. doi:http://dx.doi.org/10.1016/j.physrep.2011.02.001
-
[12]
Nuclear effective field theory: Status and perspectives
Hammer HW, K\"onig S, van Kolck U. Nuclear effective field theory: Status and perspectives. Rev. Mod. Phys.\/ 92 (2020) 025004. doi:10.1103/RevModPhys.92.025004
-
[13]
Nuclear forces for precision nuclear physics: A collection of perspectives
Tews I, Davoudi Z, Ekstr \"o m A, Holt JD, Becker K, Brice \ n o R, et al. Nuclear forces for precision nuclear physics: A collection of perspectives. Few-Body Syst.\/ 63 (2022) 67. doi:10.1007/s00601-022-01749-x
-
[17]
Hu BS, Ekström A, Forssén C, Hagen G, Jiang WG, Miyagi T, et al. The neutron dripline in calcium isotopes from a chiral interaction. arXiv:2512.11723 [nucl-th]\/ (2025 a ). doi:10.48550/arXiv.2512.11723
-
[18]
An Advanced Course in Computational Nuclear Physics\/ (Cham: Springer) (2017)
Hjorth-Jensen M, Lombardo MP, van Kolck U. An Advanced Course in Computational Nuclear Physics\/ (Cham: Springer) (2017)
2017
Show all 206 references
-
[22]
Quantum monte carlo methods for nuclear physics
Carlson J, Gandolfi S, Pederiva F, Pieper SC, Schiavilla R, Schmidt KE, et al. Quantum monte carlo methods for nuclear physics. Rev. Mod. Phys.\/ 87 (2015) 1067--1118. doi:10.1103/RevModPhys.87.1067
2015 doi
-
[27]
Ab initio no-core full configuration calculations of light nuclei
Maris P, Vary JP, Shirokov AM. Ab initio no-core full configuration calculations of light nuclei. Phys. Rev. C\/ 79 (2009) 014308. doi:10.1103/PhysRevC.79.014308
2009 doi
-
[28]
Origin of the anomalous long lifetime of ^ 14 C
Maris P, Vary JP, Navr\'atil P, Ormand WE, Nam H, Dean DJ. Origin of the anomalous long lifetime of ^ 14 C . Phys. Rev. Lett.\/ 106 (2011) 202502. doi:10.1103/PhysRevLett.106.202502
2011 doi
-
[32]
Ab initio calculation of the Hoyle state
Epelbaum E, Krebs H, Lee D, Mei ner UG. Ab initio calculation of the Hoyle state. Phys. Rev. Lett.\/ 106 (2011) 192501. doi:10.1103/PhysRevLett.106.192501
2011 doi
-
[36]
Many-body Methods in Chemistry and Physics\/ (Cambridge UK: Cambridge University Press) (2009)
Shavitt I, Bartlett RJ. Many-body Methods in Chemistry and Physics\/ (Cambridge UK: Cambridge University Press) (2009)
2009
-
[37]
Coupled-cluster computations of atomic nuclei
Hagen G, Papenbrock T, Hjorth-Jensen M, Dean DJ. Coupled-cluster computations of atomic nuclei. Rep. Prog. Phys.\/ 77 (2014) 096302. doi:10.1088/0034-4885/77/9/096302
2014 doi
-
[39]
Ab initio coupled-cluster effective interactions for the shell model: Application to neutron-rich oxygen and carbon isotopes
Jansen GR, Engel J, Hagen G, Navratil P, Signoracci A. Ab initio coupled-cluster effective interactions for the shell model: Application to neutron-rich oxygen and carbon isotopes. Phys. Rev. Lett.\/ 113 (2014) 142502. doi:10.1103/PhysRevLett.113.142502
2014 doi
-
[50]
Ab initio Gamow in-medium similarity renormalization group with resonance and continuum
Hu BS, Wu Q, Sun ZH, Xu FR. Ab initio Gamow in-medium similarity renormalization group with resonance and continuum. Phys. Rev. C\/ 99 (2019) 061302. doi:10.1103/PhysRevC.99.061302
2019 doi
-
[52]
Deformed in-medium similarity renormalization group
Yuan Q, Fan SQ, Hu BS, Li JG, Zhang S, Wang SM, et al. Deformed in-medium similarity renormalization group. Phys. Rev. C\/ 105 (2022) L061303. doi:10.1103/PhysRevC.105.L061303
2022 doi
-
[55]
Ab initio nuclear many-body perturbation calculations in the hartree-fock basis
Hu BS, Xu FR, Sun ZH, Vary JP, Li T. Ab initio nuclear many-body perturbation calculations in the hartree-fock basis. Phys. Rev. C\/ 94 (2016) 014303. doi:10.1103/PhysRevC.94.014303
2016 doi
-
[56]
Chiral interactions up to next-to-next-to-next-to-leading order and nuclear saturation
Drischler C, Hebeler K, Schwenk A. Chiral interactions up to next-to-next-to-next-to-leading order and nuclear saturation. Phys. Rev. Lett.\/ 122 (2019) 042501. doi:10.1103/PhysRevLett.122.042501
2019 doi
-
[63]
Ab initio mapping of the boundary of the n=20 island of inversion (2026)
[Dataset] Zhou EF, Ding CR, Luo QY, Yao JM, Hergert H. Ab initio mapping of the boundary of the n=20 island of inversion (2026). doi:10.48550/arXiv.2603.07363
2026 doi
-
[64]
Angular-momentum projection in coupled-cluster theory: Structure of ^ 34 Mg
Hagen G, Novario SJ, Sun ZH, Papenbrock T, Jansen GR, Lietz JG, et al. Angular-momentum projection in coupled-cluster theory: Structure of ^ 34 Mg . Phys. Rev. C\/ 105 (2022) 064311. doi:10.1103/PhysRevC.105.064311
2022 doi
-
[70]
Dynamics of quantum systems embedded in a continuum
Okołowicz J, Płoszajczak M, Rotter I. Dynamics of quantum systems embedded in a continuum. Phys. Rep.\/ 374 (2003) 271--383. doi:https://doi.org/10.1016/S0370-1573(02)00366-6
2003 doi
-
[71]
Shell model in the complex energy plane
Michel N, Nazarewicz W, Płoszajczak M, Vertse T. Shell model in the complex energy plane. J. Phys. G: Nucl. Part. Phys.\/ 36 (2009) 013101. doi:10.1088/0954-3899/36/1/013101
2009 doi
-
[72]
Two-particle resonant states in a many-body mean field
Id Betan R, Liotta RJ, Sandulescu N, Vertse T. Two-particle resonant states in a many-body mean field. Phys. Rev. Lett.\/ 89 (2002) 042501. doi:10.1103/PhysRevLett.89.042501
2002 doi
-
[73]
Gamow shell model description of neutron-rich nuclei
Michel N, Nazarewicz W, P oszajczak M, Bennaceur K. Gamow shell model description of neutron-rich nuclei. Phys. Rev. Lett.\/ 89 (2002) 042502. doi:10.1103/PhysRevLett.89.042502
2002 doi
-
[75]
White paper: from bound states to the continuum
Johnson CW, Launey KD, Auerbach N, Bacca S, Barrett BR, Brune C, et al. White paper: from bound states to the continuum. J. Phys. G: Nucl. Part. Phys.\/ 47 (2020) 123001. doi:10.1088/1361-6471/abb129
2020 doi
-
[79]
Ab initio no-core Gamow shell model calculations with realistic interactions
Papadimitriou G, Rotureau J, Michel N, P oszajczak M, Barrett BR. Ab initio no-core Gamow shell model calculations with realistic interactions. Phys. Rev. C\/ 88 (2013) 044318. doi:10.1103/PhysRevC.88.044318
2013 doi
-
[80]
Ab initio no-core Gamow shell-model calculations of multineutron systems
Li JG, Michel N, Hu BS, Zuo W, Xu FR. Ab initio no-core Gamow shell-model calculations of multineutron systems. Phys. Rev. C\/ 100 (2019) 054313. doi:10.1103/PhysRevC.100.054313
2019 doi
-
[81]
Ab initio computation of the ^ 17 F proton halo state and resonances in A=17 nuclei
Hagen G, Papenbrock T, Hjorth-Jensen M. Ab initio computation of the ^ 17 F proton halo state and resonances in A=17 nuclei. Phys. Rev. Lett.\/ 104 (2010) 182501. doi:10.1103/PhysRevLett.104.182501
2010 doi
-
[82]
Continuum effects and three-nucleon forces in neutron-rich oxygen isotopes
Hagen G, Hjorth-Jensen M, Jansen GR, Machleidt R, Papenbrock T. Continuum effects and three-nucleon forces in neutron-rich oxygen isotopes. Phys. Rev. Lett.\/ 108 (2012 a ) 242501. doi:10.1103/PhysRevLett.108.242501
2012 doi
-
[83]
Evolution of shell structure in neutron-rich calcium isotopes
Hagen G, Hjorth-Jensen M, Jansen GR, Machleidt R, Papenbrock T. Evolution of shell structure in neutron-rich calcium isotopes. Phys. Rev. Lett.\/ 109 (2012 b ) 032502. doi:10.1103/PhysRevLett.109.032502
2012 doi
-
[84]
An ab-initio Gamow shell model approach with a core
Hu BS, Wu Q, Li JG, Ma YZ, Sun ZH, Michel N, et al. An ab-initio Gamow shell model approach with a core. Phys. Lett. B\/ 802 (2020) 135206. doi:https://doi.org/10.1016/j.physletb.2020.135206
2020 doi
-
[85]
The roles of three-nucleon force and continuum coupling in mirror symmetry breaking of oxygen mass region
Zhang S, Ma YZ, Li JG, Hu BS, Yuan Q, Cheng ZH, et al. The roles of three-nucleon force and continuum coupling in mirror symmetry breaking of oxygen mass region. Phys. Lett. B\/ 827 (2022) 136958. doi:https://doi.org/10.1016/j.physletb.2022.136958. ArXiv: https://doi.org/10.48...
2022 doi
-
[86]
Ab initio descriptions of A =16 mirror nuclei with resonance and continuum coupling
Zhang S, Xu FR, Li JG, Hu BS, Cheng ZH, Michel N, et al. Ab initio descriptions of A =16 mirror nuclei with resonance and continuum coupling. Phys. Rev. C\/ 108 (2023) 064316. doi:10.1103/PhysRevC.108.064316
2023 doi
-
[89]
Ab initio calculations of neutrinoless decay refine neutrino mass limits (2023)
Belley A, Miyagi T, Stroberg SR, Holt JD. Ab initio calculations of neutrinoless decay refine neutrino mass limits (2023)
2023
- [91]
-
[99]
History of dark matter
Bertone G, Hooper D. History of dark matter. Rev. Mod. Phys.\/ 90 (2018) 045002. doi:10.1103/RevModPhys.90.045002
2018 doi
-
[100]
Dark matter candidates from particle physics and methods of detection
Feng JL. Dark matter candidates from particle physics and methods of detection. Annu. Rev. Astron. Astrophys.\/ 48 (2010) 495--545. doi:10.1146/annurev-astro-082708-101659
2010 doi
-
[101]
Dark matter direct-detection experiments
Undagoitia TM, Rauch L. Dark matter direct-detection experiments. J. Phys. G: Nucl. Part. Phys.\/ 43 (2015) 013001. doi:10.1088/0954-3899/43/1/013001
2015 doi
-
[103]
Current status of direct dark matter detection experiments
Liu JL, Chen X, Ji XD. Current status of direct dark matter detection experiments. Nat. Phys.\/ 13 (2017) 212--216
2017
-
[104]
The Theory of Direct Dark Matter Detection: A Guide to Computations\/ (Gewerbestrasse 11, 6330 Cham, Switzerland: Springer Cham) (2022)
Del Nobile E. The Theory of Direct Dark Matter Detection: A Guide to Computations\/ (Gewerbestrasse 11, 6330 Cham, Switzerland: Springer Cham) (2022). doi:https://doi.org/10.1007/978-3-030-95228-0
2022 doi
-
[105]
Nuclear physics of dark matter detection
Engel J, Pittel S, Vogel P. Nuclear physics of dark matter detection. Int. J. Mod. Phys. E\/ 01 (1992) 1--37. doi:10.1142/S0218301392000023
1992 doi
-
[106]
Supersymmetric dark matter
Jungman G, Kamionkowski M, Griest K. Supersymmetric dark matter. Phys. Rep.\/ 267 (1996) 195--373. doi:https://doi.org/10.1016/0370-1573(95)00058-5
1996 doi
-
[107]
WIMP dark matter candidates and searches current status and future prospects
Roszkowski L, Sessolo EM, Trojanowski S. WIMP dark matter candidates and searches current status and future prospects. Rep. Prog. Phys.\/ 81 (2018) 066201. doi:10.1088/1361-6633/aab913
2018 doi
-
[108]
Direct detection of WIMP dark matter: concepts and status
Schumann M. Direct detection of WIMP dark matter: concepts and status. J. Phys. G: Nucl. Part. Phys.\/ 46 (2019) 103003. doi:10.1088/1361-6471/ab2ea5
2019 doi
-
[120]
Chiral power counting of one- and two-body currents in direct detection of dark matter
Hoferichter M, Klos P, Schwenk A. Chiral power counting of one- and two-body currents in direct detection of dark matter. Phys. Lett. B\/ 746 (2015) 410--416. doi:https://doi.org/10.1016/j.physletb.2015.05.041
2015 doi
-
[121]
Nuclear currents in chiral effective field theory
Krebs H. Nuclear currents in chiral effective field theory. Eur. Phys. J. A\/ 56 (2020) 234. doi:10.1140/epja/s10050-020-00230-9
2020 doi
-
[124]
Analysis strategies for general spin-independent WIMP-nucleus scattering
Hoferichter M, Klos P, Men\'endez J, Schwenk A. Analysis strategies for general spin-independent WIMP-nucleus scattering . Phys. Rev. D\/ 94 (2016) 063505. doi:10.1103/PhysRevD.94.063505
2016 doi
-
[125]
Coherent elastic neutrino-nucleus scattering: EFT analysis and nuclear responses
Hoferichter M, Men\'endez J, Schwenk A. Coherent elastic neutrino-nucleus scattering: EFT analysis and nuclear responses. Phys. Rev. D\/ 102 (2020) 074018. doi:10.1103/PhysRevD.102.074018
2020 doi
-
[132]
Three-nucleon low-energy constants from the consistency of interactions and currents in chiral effective field theory
Gazit D, Quaglioni S, Navr\'atil P. Three-nucleon low-energy constants from the consistency of interactions and currents in chiral effective field theory. Phys. Rev. Lett.\/ 103 (2009) 102502. doi:10.1103/PhysRevLett.103.102502
2009 doi
-
[133]
Erratum: Three-nucleon low-energy constants from the consistency of interactions and currents in chiral effective field theory [ Phys
Gazit D, Quaglioni S, Navr\'atil P. Erratum: Three-nucleon low-energy constants from the consistency of interactions and currents in chiral effective field theory [ Phys. Rev. Lett. 103, 102502 (2009) ]. Phys. Rev. Lett.\/ 122 (2019) 029901. doi:10.1103/PhysRevLett.122.029901
2009 doi
-
[134]
Chiral two-body currents in nuclei: Gamow-teller transitions and neutrinoless double-beta decay
Men\'endez J, Gazit D, Schwenk A. Chiral two-body currents in nuclei: Gamow-teller transitions and neutrinoless double-beta decay. Phys. Rev. Lett.\/ 107 (2011) 062501. doi:10.1103/PhysRevLett.107.062501
2011 doi
-
[135]
Quantum M onte C arlo calculations of electromagnetic moments and transitions in A 9 nuclei with meson-exchange currents derived from chiral effective field theory
Pastore S, Pieper SC, Schiavilla R, Wiringa RB. Quantum M onte C arlo calculations of electromagnetic moments and transitions in A 9 nuclei with meson-exchange currents derived from chiral effective field theory. Phys. Rev. C\/ 87 (2013) 035503. doi:10.1103/PhysRevC.87.035503
2013 doi
-
[136]
Electromagnetic reactions on light nuclei
Bacca S, Pastore S. Electromagnetic reactions on light nuclei. J. Phys. G: Nucl. Part. Phys.\/ 41 (2014) 123002. doi:10.1088/0954-3899/41/12/123002
2014 doi
-
[137]
Effects of three-nucleon forces and two-body currents on gamow-teller strengths
Ekstr\"om A, Jansen GR, Wendt KA, Hagen G, Papenbrock T, Bacca S, et al. Effects of three-nucleon forces and two-body currents on gamow-teller strengths. Phys. Rev. Lett.\/ 113 (2014) 262504. doi:10.1103/PhysRevLett.113.262504
2014 doi
-
[138]
Electromagnetic response of ^ 12 C : A first-principles calculation
Lovato A, Gandolfi S, Carlson J, Pieper SC, Schiavilla R. Electromagnetic response of ^ 12 C : A first-principles calculation. Phys. Rev. Lett.\/ 117 (2016) 082501. doi:10.1103/PhysRevLett.117.082501
2016 doi
-
[139]
Discrepancy between experimental and theoretical -decay rates resolved from first principles
Gysbers P, Hagen G, Holt JD, Jansen GR, Morris TD, Navr \'a til P, et al. Discrepancy between experimental and theoretical -decay rates resolved from first principles. Nat. Phys.\/ 15 (2019) 428--431. doi:10.1038/s41567-019-0450-7
2019 doi
-
[140]
Spin-dependent WIMP scattering off nuclei
Men\'endez J, Gazit D, Schwenk A. Spin-dependent WIMP scattering off nuclei. Phys. Rev. D\/ 86 (2012) 103511. doi:10.1103/PhysRevD.86.103511
2012 doi
-
[141]
Large-scale nuclear structure calculations for spin-dependent WIMP scattering with chiral effective field theory currents
Klos P, Men\'endez J, Gazit D, Schwenk A. Large-scale nuclear structure calculations for spin-dependent WIMP scattering with chiral effective field theory currents. Phys. Rev. D\/ 88 (2013) 083516. doi:10.1103/PhysRevD.88.083516
2013 doi
-
[142]
Erratum: Large-scale nuclear structure calculations for spin-dependent WIMP scattering with chiral effective field theory currents [ P hys
Klos P, Men\'endez J, Gazit D, Schwenk A. Erratum: Large-scale nuclear structure calculations for spin-dependent WIMP scattering with chiral effective field theory currents [ P hys. R ev. D 88, 083516 (2013)]. Phys. Rev. D\/ 89 (2014) 029901. doi:10.1103/PhysRevD.89.029901
2013 doi
-
[143]
Nuclear structure factors for general spin-independent WIMP -nucleus scattering
Hoferichter M, Klos P, Men\'endez J, Schwenk A. Nuclear structure factors for general spin-independent WIMP -nucleus scattering. Phys. Rev. D\/ 99 (2019) 055031. doi:10.1103/PhysRevD.99.055031
2019 doi
-
[144]
Quantum monte carlo calculations of dark matter scattering off light nuclei
Andreoli L, Cirigliano V, Gandolfi S, Pederiva F. Quantum monte carlo calculations of dark matter scattering off light nuclei. Phys. Rev. C\/ 99 (2019) 025501. doi:10.1103/PhysRevC.99.025501
2019 doi
-
[145]
First results on the scalar WIMP -pion coupling, using the XENON1T experiment
Aprile E, et al. First results on the scalar WIMP -pion coupling, using the XENON1T experiment. Phys. Rev. Lett.\/ 122 (2019) 071301. doi:10.1103/PhysRevLett.122.071301
2019 doi
-
[147]
Theoretical tools for neutrino scattering: interplay between lattice qcd, efts, nuclear physics, phenomenology, and neutrino event generators
Alvarez Ruso L, et al. Theoretical tools for neutrino scattering: interplay between lattice qcd, efts, nuclear physics, phenomenology, and neutrino event generators. J. Phys. G: Nucl. Part. Phys.\/ (2025)
2025
-
[149]
Trends of neutron skins and radii of mirror nuclei from first principles
Novario SJ, Lonardoni D, Gandolfi S, Hagen G. Trends of neutron skins and radii of mirror nuclei from first principles. Phys. Rev. Lett.\/ 130 (2023) 032501. doi:10.1103/PhysRevLett.130.032501
2023 doi
-
[157]
Dark matter-induced nuclear de-excitation at SBND with ab initio nuclear theory
Dutta B, Goswami D, Hu BS, Huang WC, Pandey V. Dark matter-induced nuclear de-excitation at SBND with ab initio nuclear theory. arXiv:2602.02817 [nucl-th]\/ (2026). doi:10.48550/arXiv.2602.02817
2026 doi
-
[158]
2026 , journal=
Ab initio mapping of the boundary of the N=20 island of inversion , author=. 2026 , journal=. 2603.07363 , archivePrefix=
2026
-
[159]
Nuclear Lattice Effective Field Theory : An introduction
L. Nuclear Lattice Effective Field Theory : An introduction. 2019. doi:10.1007/978-3-030-14189-9
2019 doi
-
[160]
Perturbative Quantum Monte Carlo Method for Nuclear Physics , author =. Phys. Rev. Lett. , volume =. 2022 , month =. doi:10.1103/PhysRevLett.128.242501 , url =
2022 doi
-
[161]
Structure Factors for Hot Neutron Matter from Ab Initio Lattice Simulations with High-Fidelity Chiral Interactions , author =. Phys. Rev. Lett. , volume =. 2024 , month =. doi:10.1103/PhysRevLett.132.232502 , url =
2024 doi
-
[162]
Auxiliary field diffusion Monte Carlo calculations of light and medium-mass nuclei with local chiral interactions , author =. Phys. Rev. C , volume =. 2018 , month =. doi:10.1103/PhysRevC.97.044318 , url =
2018 doi
-
[163]
and Blunt, Nick S
Spencer, James S. and Blunt, Nick S. and Choi, Seonghoon and Etrych, Ji. The HANDE-QMC Project: Open-Source Stochastic Quantum Chemistry from the Ground State Up , volume =. J. Chem. Theory Comput. , publisher =. 2019 , month =. doi:10.1021/acs.jctc.8b01217 , number =
2019 doi
-
[164]
Configuration-interaction Monte Carlo method and its application to the trapped unitary Fermi gas , author =. Phys. Rev. A , volume =. 2013 , month =. doi:10.1103/PhysRevA.88.053622 , url =
2013 doi
-
[165]
Quantum Monte Carlo Calculations of Neutron Matter with Nonlocal Chiral Interactions , author =. Phys. Rev. Lett. , volume =. 2014 , month =. doi:10.1103/PhysRevLett.112.221103 , url =
2014 doi
-
[166]
Quantum Monte Carlo calculations in configuration space with three-nucleon forces , author =. Phys. Rev. C , volume =. 2023 , month =. doi:10.1103/PhysRevC.107.044303 , url =
2023 doi
-
[167]
and Navr\'atil, Petr and Vary, James P
Barrett, Bruce R. and Navr\'atil, Petr and Vary, James P. , year =. doi:10.1016/j.ppnp.2012.10.003 , journal =
2012 doi
-
[168]
Liebig, S. and Mei. Jacobi no-core shell model for p -shell nuclei , volume =. Eur. Phys. J. A , publisher =. 2016 , month =. doi:10.1140/epja/i2016-16103-5 , number =
2016 doi
-
[169]
Coupled-cluster theory in quantum chemistry , author =. Rev. Mod. Phys. , volume =. 2007 , month =. doi:10.1103/RevModPhys.79.291 , url =
2007 doi
-
[170]
Hu, B. S. and Sun, Z. H. and Hagen, G. and Papenbrock, T. , journal =. Ab initio computations of strongly deformed nuclei near ^. 2024 , month =. doi:10.1103/PhysRevC.110.L011302 , url =
2024 doi
-
[171]
Multiscale Physics of Atomic Nuclei from First Principles , author =. Phys. Rev. X , volume =. 2025 , month =. doi:10.1103/PhysRevX.15.011028 , url =
2025 doi
-
[172]
From closed shells to open shells: Coupled-cluster calculations of atomic nuclei , author =. Phys. Rev. C , volume =. 2026 , month =. doi:10.1103/p297-y8vq , url =
2026 doi
-
[173]
Dickhoff, W. H. and Barbieri, C. , year =. Self-consistent Green's function method for nuclei and nuclear matter , volume =. Prog. Part. Nucl. Phys. , publisher =. doi:10.1016/j.ppnp.2004.02.038 , number =
2004 doi
-
[175]
Novel chiral Hamiltonian and observables in light and medium-mass nuclei , author =. Phys. Rev. C , volume =. 2020 , month =. doi:10.1103/PhysRevC.101.014318 , url =
2020 doi
-
[176]
In-Medium Similarity Renormalization Group For Nuclei , author =. Phys. Rev. Lett. , volume =. 2011 , month =. doi:10.1103/PhysRevLett.106.222502 , url =
2011 doi
-
[177]
In-medium similarity renormalization group for open-shell nuclei , author =. Phys. Rev. C , volume =. 2012 , month =. doi:10.1103/PhysRevC.85.061304 , url =
2012 doi
-
[178]
and Bogner, S
Hergert, H. and Bogner, S. K. and Morris, T. D. and Schwenk, A. and Tsukiyama, K. , year =. The In-Medium Similarity Renormalization Group: A novel. doi:10.1016/j.physrep.2015.12.007 , journal =
2015 doi
-
[179]
Nucleus-Dependent Valence-Space Approach to Nuclear Structure , author =. Phys. Rev. Lett. , volume =. 2017 , month =. doi:10.1103/PhysRevLett.118.032502 , url =
2017 doi
-
[180]
Magnus expansion and in-medium similarity renormalization group , author =. Phys. Rev. C , volume =. 2015 , month =. doi:10.1103/PhysRevC.92.034331 , url =
2015 doi
-
[181]
In-medium similarity renormalization group with three-body operators , author =. Phys. Rev. C , volume =. 2021 , month =. doi:10.1103/PhysRevC.103.044318 , url =
2021 doi
-
[182]
Zhen, Xin and Hu, Rongzhe and Shang, Haoyu and Chen, Jiawei and Pei, J. C. and Xu, F. R. , year =. Non-perturbative calculations of nuclear matter using in-medium similarity renormalization group , volume =. doi:10.1016/j.physletb.2025.139350 , journal =
2025 doi
-
[183]
Cao, X. C. and Jiao, C. F. , year =. Ab initio study in the island of inversion within the two-major-shell valence space , volume =. doi:https://doi.org/10.1016/j.physletb.2025.140034 , journal =
2025 doi
-
[184]
Lian and C
X. Lian and C. R. Ding and C. L. Bai and J. M. Yao , year=. Ab initio correlations between neutrinoless and two-neutrino double-beta decays in ^. arXiv:2605.19479 [nucl-th] , eprint=
-
[185]
Robert Roth and Joachim Langhammer , keywords =. Pad. Phys. Lett. B , volume =. 2010 , issn =. doi:https://doi.org/10.1016/j.physletb.2009.12.046 , url =
2010 doi
-
[186]
Spectra of Open-Shell Nuclei with Pad
Langhammer, Joachim and Roth, Robert and Stumpf, Christina , journal =. Spectra of Open-Shell Nuclei with Pad. 2012 , month =. doi:10.1103/PhysRevC.86.054315 , url =
2012 doi
-
[187]
Many-Body Perturbation Theories for Finite Nuclei , volume =
Tichai, Alexander and Roth, Robert and Duguet, Thomas , year =. Many-Body Perturbation Theories for Finite Nuclei , volume =. doi:10.3389/fphy.2020.00164 , journal =
2020 doi
-
[188]
2025 , journal =
The neutron dripline in calcium isotopes from a chiral interaction , author=. 2025 , journal =. 2512.11723 , archivePrefix=
2025
-
[189]
Dutta and D
B. Dutta and D. Goswami and B. S. Hu and W. C. Huang and V. Pandey , year=. Dark Matter-Induced Nuclear De-Excitation at. arXiv:2602.02817 [nucl-th] , eprint=
-
[190]
Few-nucleon systems in a translationally invariant harmonic oscillator basis , author =. Phys. Rev. C , volume =. 2000 , month =. doi:10.1103/PhysRevC.61.044001 , url =
2000 doi
-
[191]
2009 , author =
Many-body Methods in Chemistry and Physics , publisher =. 2009 , author =
2009
-
[192]
Colloquium: Annual modulation of dark matter , author =. Rev. Mod. Phys. , volume =. 2013 , month =. doi:10.1103/RevModPhys.85.1561 , url =
2013 doi
-
[193]
Lee, Dean , year =. Lattice. doi:https://doi.org/10.1146/annurev-nucl-101918-023343 , journal =
-
[194]
High Energ
J. High Energ. Phys. , author =. 2012 , pages =. doi:10.1007/JHEP10(2012)025 , number =
2012 doi
-
[195]
Connecting dark matter. J. High Energ. Phys. , author =. 2015 , pages =. doi:10.1007/JHEP04(2015)054 , number =
2015 doi
-
[196]
Beane, S. R. and Cohen, S. D. and Detmold, W. and Lin, H.-W. and Savage, M. J. , journal =. Nuclear. 2014 , month =. doi:10.1103/PhysRevD.89.074505 , url =
2014 doi
-
[197]
and Orginos, Kostas and Savage, Martin J
Chang, Emmanuel and Davoudi, Zohreh and Detmold, William and Gambhir, Arjun S. and Orginos, Kostas and Savage, Martin J. and Shanahan, Phiala E. and Wagman, Michael L. and Winter, Frank , collaboration =. Scalar, Axial, and Tensor Interactions of Light Nuclei from Lattice. Phy...
2018 doi
-
[198]
and Wagman, Michael L
Davoudi, Zohreh and Detmold, William and Shanahan, Phiala and Orginos, Kostas and Parreño, Assumpta and Savage, Martin J. and Wagman, Michael L. , year =. Nuclear matrix elements from lattice. doi:https://doi.org/10.1016/j.physrep.2020.10.004 , journal =
2020 doi
-
[199]
Non-relativistic effective theory of dark matter direct detection , volume =. J. Cosmol. Astropart. Phys. , author =. 2010 , pages =. doi:10.1088/1475-7516/2010/11/042 , number =
2010 doi
-
[200]
The effective field theory of dark matter direct detection , volume =. J. Cosmol. Astropart. Phys. , author =. 2013 , pages =. doi:10.1088/1475-7516/2013/02/004 , number =
2013 doi
-
[201]
Weakly interacting massive particle-nucleus elastic scattering response , author =. Phys. Rev. C , volume =. 2014 , month =. doi:10.1103/PhysRevC.89.065501 , url =
2014 doi
-
[202]
Ab initio nuclear form factors for elastic neutrino and dark-matter scattering , Journal =
Hu, Bai-Shan and Takayuki, Miyagi and Ragnar, Stroberg and Jason, Holt , year =. Ab initio nuclear form factors for elastic neutrino and dark-matter scattering , Journal =
-
[203]
Somà, Vittorio , pages =. Self-. doi:10.3389/fphy.2020.00340 , journal =
2020 doi
-
[204]
Sun, Z. H. and Wu, Q. and Zhao, Z. H. and Hu, B. S. and Dai, S. J. and Xu, F. R. , year =. Resonance and continuum. doi:https://doi.org/10.1016/j.physletb.2017.03.054 , journal =
2017 doi
-
[205]
Li, J. G. and Hu, B. S. and Wu, Q. and Gao, Y. and Dai, S. J. and Xu, F. R. , journal =. Neutron-rich calcium isotopes within realistic. 2020 , month =. doi:10.1103/PhysRevC.102.034302 , url =
2020 doi
-
[206]
Continuum and three-nucleon force in
Ma, Y Z and Xu, F R and Michel, N and Zhang, S and Li, J G and Hu, B S and Coraggio, L and Itaco, N and Gargano, A , month = aug, year =. Continuum and three-nucleon force in. doi:10.1016/j.physletb.2020.135673 , journal =
2020 doi
-
[207]
Ma, Y. Z. and Xu, F. R. and Coraggio, L and Hu, B. S. and Li, J. G. and Fukui, T and De Angelis, L. and Itaco, N and Gargano, A , month = jan, year =. Chiral three-nucleon force and continuum for dripline nuclei and beyond , volume =. doi:10.1016/j.physletb.2020.135257 , journal =
2020 doi
-
[208]
Emulating ab initio computations of infinite nucleonic matter , author =. Phys. Rev. C , volume =. 2024 , month =. doi:10.1103/PhysRevC.109.064314 , url =
2024 doi
-
[209]
Diagrammatic ab initio methods for infinite nuclear matter with modern chiral interactions , author =. Phys. Rev. C , volume =. 2024 , month =. doi:10.1103/PhysRevC.110.054322 , url =
2024 doi
-
[210]
arXiv:2508.09252 [nucl-th] , eprint=
Rongzhe Hu and Shaoliang Jin and Xin Zhen and Haoyu Shang and Junchen Pei and Furong Xu , year=. arXiv:2508.09252 [nucl-th] , eprint=
-
[211]
Few-Body Syst
What is ab initio? , volume =. Few-Body Syst. , author =. 2023 , pages =. doi:10.1007/s00601-023-01857-2 , number =
2023 doi
-
[212]
and Forssén, C
Ekström, A. and Forssén, C. and Hagen, G. and Jansen, G. R. and Jiang, W. and Papenbrock, T. , doi =. Front. Phys. , title =
-
[213]
Nuclear forces from chiral lagrangians , volume =. Phys. Lett. B , author =. 1990 , pages =. doi:https://doi.org/10.1016/0370-2693(90)90938-3 , number =
1990 doi
-
[214]
Effective chiral lagrangians for nucleon-pion interactions and nuclear forces , volume =. Nucl. Phys. B , author =. 1991 , pages =. doi:https://doi.org/10.1016/0550-3213(91)90231-L , abstract =
1991 doi
-
[215]
How do mirror charge radii constrain density dependence of the symmetry energy? , volume =
Hu, Bai-Shan , year =. How do mirror charge radii constrain density dependence of the symmetry energy? , volume =. doi:https://doi.org/10.1016/j.physletb.2024.138969 , journal =
2024 doi
-
[216]
Ab initio computations from ^
Hu, B S and Sun, Z H and Hagen, G and Jansen, G R and Papenbrock, T , year =. Ab initio computations from ^. doi:https://doi.org/10.1016/j.physletb.2024.139010 , journal =
2024 doi
-
[217]
Nature , author =
Wavefunction matching for solving quantum many-body problems , volume =. Nature , author =. 2024 , pages =. doi:10.1038/s41586-024-07422-z , number =
2024 doi
-
[218]
Morris, T. D. and Simonis, J. and Stroberg, S. R. and Stumpf, C. and Hagen, G. and Holt, J. D. and Jansen, G. R. and Papenbrock, T. and Roth, R. and Schwenk, A. , title =. Phys. Rev. Lett. , year =. doi:10.1103/PhysRevLett.120.152503 , issue =
-
[219]
and Barbieri, C
Arthuis, P. and Barbieri, C. and Vorabbi, M. and Finelli, P. , journal =. Ab Initio Computation of Charge Densities for. 2020 , month =. doi:10.1103/PhysRevLett.125.182501 , url =
2020 doi
-
[220]
Multi-reference many-body perturbation theory for nuclei:. Eur. Phys. J. A , author =. 2022 , pages =. doi:10.1140/epja/s10050-022-00692-z , number =
2022 doi
-
[221]
Multi-reference many-body perturbation theory for nuclei:. Eur. Phys. J. A , author =. 2022 , pages =. doi:10.1140/epja/s10050-022-00693-y , number =
2022 doi
-
[222]
Multi-reference many-body perturbation theory for nuclei:. Eur. Phys. J. A , author =. 2022 , pages =. doi:10.1140/epja/s10050-022-00694-x , number =
2022 doi
-
[223]
Zhou, E. F. and Ding, C. R. and Yao, J. M. and Bally, B. and Hergert, H. and Jiao, C. F. and Rodríguez, T. R. , year =. Ab initio nuclear shape coexistence and emergence of island of inversion around. doi:https://doi.org/10.1016/j.physletb.2025.139464 , journal =
2025 doi
-
[224]
The Particle Physics Experiments Database [Webpage can be accessed at the link: https://athompson-git.github.io/experiments.html]
Adrian Thompson. The Particle Physics Experiments Database [Webpage can be accessed at the link: https://athompson-git.github.io/experiments.html]. 2025
2025
-
[225]
1996 , issn =
Review of mathematics, numerical factors, and corrections for dark matter experiments based on elastic nuclear recoil , journal =. 1996 , issn =. doi:https://doi.org/10.1016/S0927-6505(96)00047-3 , url =
1996 doi
-
[226]
Exclusive vector meson production in relativistic heavy ion collisions , author =. Phys. Rev. C , volume =. 1999 , month =. doi:10.1103/PhysRevC.60.014903 , url =
1999 doi
-
[227]
Theoretical tools for neutrino scattering: interplay between lattice QCD, EFTs, nuclear physics, phenomenology, and neutrino event generators , year =
Alvarez Ruso, Luis and others , journal =. Theoretical tools for neutrino scattering: interplay between lattice QCD, EFTs, nuclear physics, phenomenology, and neutrino event generators , year =
-
[228]
and others , collaboration =
Adhikari, D. and others , collaboration =. Accurate Determination of the Neutron Skin Thickness of ^. Phys. Rev. Lett. , volume =. 2021 , month =. doi:10.1103/PhysRevLett.126.172502 , url =
2021 doi
-
[229]
Nature , author =
A new era in the search for dark matter , volume =. Nature , author =. 2018 , pages =. doi:10.1038/s41586-018-0542-z , number =
2018 doi
-
[230]
Del Nobile, Eugenio , title =
-
[231]
New approaches to dark matter detection , volume =. Nat. Rev. Phys. , author =. 2022 , pages =. doi:10.1038/s42254-022-00509-4 , abstract =
2022 doi
-
[232]
Effective field theory of dark matter direct detection with collective excitations , author =. Phys. Rev. D , volume =. 2022 , month =. doi:10.1103/PhysRevD.105.015001 , url =
2022 doi
-
[233]
Cosmic-ray boosted dark matter confronted by constraints on new light mediators , author =. Phys. Rev. D , volume =. 2024 , month =. doi:10.1103/PhysRevD.109.063034 , url =
2024 doi
-
[234]
JCAP , author =
Inelastic dark matter nucleus scattering , volume =. JCAP , author =. 2019 , pages =. doi:10.1088/1475-7516/2019/12/053 , number =
2019 doi
-
[235]
and Kessler, G
Baudis, L. and Kessler, G. and Klos, P. and Lang, R. F. and Men\'endez, J. and Reichard, S. and Schwenk, A. Signatures of Dark Matter Scattering Inelastically Off Nuclei. Phys. Rev. D. 2013. doi:10.1103/PhysRevD.88.115014
2013 doi
-
[236]
and others
Suzuki, T. and others. Search for WIMP - ^ 129 Xe inelastic scattering with particle identification in XMASS-I. Astropart. Phys. 2019. doi:10.1016/j.astropartphys.2019.02.007
2019 doi
-
[237]
Inelastic nuclear scattering from neutrinos and dark matter , author =. Phys. Rev. D , volume =. 2022 , month =. doi:10.1103/PhysRevD.106.113006 , url =
2022 doi
-
[238]
Probing the Dark Sector with Nuclear Transition Photons , author =. Phys. Rev. Lett. , volume =. 2023 , month =. doi:10.1103/PhysRevLett.131.111801 , url =
2023 doi
-
[239]
Prospects for Light Dark Matter Searches at Large-Volume Neutrino Detectors , author =. Phys. Rev. Lett. , volume =. 2024 , month =. doi:10.1103/PhysRevLett.133.161801 , url =
2024 doi
-
[240]
Novel Approach to Investigate ATOMKI Anomaly Using Coherent CAPTAIN-Mills Detectors , author =. Phys. Rev. Lett. , volume =. 2025 , month =. doi:10.1103/34pk-53tf , url =
2025 doi
-
[241]
and others , collaboration =
Aprile, E. and others , collaboration =. Search for inelastic scattering of. Phys. Rev. D , volume =. 2021 , month =. doi:10.1103/PhysRevD.103.063028 , url =
2021 doi
-
[242]
and others , collaboration =
Aalbers, J. and others , collaboration =. Dark Matter Search Results from 4.2. Phys. Rev. Lett. , volume =. 2025 , month =. doi:10.1103/4dyc-z8zf , url =
2025 doi
-
[243]
and Payne, C
Belley, A. and Payne, C. G. and Stroberg, S. R. and Miyagi, T. and Holt, J. D. , journal =. 2021 , month =. doi:10.1103/PhysRevLett.126.042502 , url =
2021 doi
-
[244]
and Miyagi, T
Belley, A. and Miyagi, T. and Stroberg, S. R. and Holt, J. D. Ab initio calculations of neutrinoless decay refine neutrino mass limits. 2023. arXiv:2307.15156
2023
-
[245]
and Gysbers, P
Novario, S. and Gysbers, P. and Engel, J. and Hagen, G. and Jansen, G. R. and Morris, T. D. and Navr\'atil, P. and Papenbrock, T. and Quaglioni, S. , journal =. Coupled-Cluster Calculations of Neutrinoless Double-. 2021 , month =. doi:10.1103/PhysRevLett.126.182502 , url =
2021 doi
-
[246]
Yao, J. M. and Bally, B. and Engel, J. and Wirth, R. and Rodr\'. Ab Initio Treatment of Collective Correlations and the Neutrinoless Double Beta Decay of ^. Phys. Rev. Lett. , volume =. 2020 , month =. doi:10.1103/PhysRevLett.124.232501 , url =
2020 doi
-
[247]
and Yao, J
Belley, A. and Yao, J. M. and Bally, B. and Pitcher, J. and Engel, J. and Hergert, H. and Holt, J. D. and Miyagi, T. and Rodr\'. Ab Initio Uncertainty Quantification of Neutrinoless Double-Beta Decay in ^. Phys. Rev. Lett. , volume =. 2024 , month =. doi:10.1103/PhysRevLett.13...
2024 doi
-
[248]
Nuclear ab initio calculations of
Glick-Magid, Ayala and Forssén, Christian and Gazda, Daniel and Gazit, Doron and Gysbers, Peter and Navrátil, Petr , year =. Nuclear ab initio calculations of. doi:https://doi.org/10.1016/j.physletb.2022.137259 , journal =
2022 doi
-
[249]
and others , journal =
Longfellow, B. and others , journal =. Improved Tensor Current Limit from ^. 2024 , month =. doi:10.1103/PhysRevLett.132.142502 , url =
2024 doi
-
[250]
Ab Initio Strategy for Taming the Nuclear-Structure Dependence of
Gennari, Michael and Drissi, Mehdi and Gorchtein, Mikhail and Navr\'atil, Petr and Seng, Chien-Yeah , journal =. Ab Initio Strategy for Taming the Nuclear-Structure Dependence of. 2025 , month =. doi:10.1103/PhysRevLett.134.012501 , url =
2025 doi
-
[251]
Haxton, W. C. and Rule, Evan and McElvain, Ken and Ramsey-Musolf, Michael J. , journal =. Nuclear-level effective theory of. 2023 , month =. doi:10.1103/PhysRevC.107.035504 , url =
2023 doi
-
[252]
2024 , journal =
Ab initio calculations of overlap integrals for e conversion in nuclei , author=. 2024 , journal =. 2412.04545 , archivePrefix=
2024
-
[253]
and Kolck, U
Engel, Jonathan and Ramsey-Musolf, Michael J. and Kolck, U. van , year =. Electric dipole moments of nucleons, nuclei, and atoms:. doi:https://doi.org/10.1016/j.ppnp.2013.03.003 , journal =
2013 doi
-
[254]
Nuclear Schiff moment of fluorine isotope ^
Kia Boon Ng and Stephan Foster and Lan Cheng and Petr Navratil and Stephan Malbrunot-Ettenauer , year=. Nuclear Schiff moment of fluorine isotope ^. arXiv:2507.19811 [nucl-th] , eprint=
-
[255]
Ab initio predictions link the neutron skin of ^
Hu, Bai Shan and Jiang, Wei Guang and Miyagi, Takayuki and Sun, Zhong Hao and Ekstr. Ab initio predictions link the neutron skin of ^. Nat. Phys. , year=. doi:10.1038/s41567-022-01715-8 , url=
-
[256]
Ye, Yan Lin and Yang, Xiao Fei and Sakurai, Hiroyoshi and Hu, Bai Shan , date =. Nat. Rev. Phys. , title =. 2025 , volume =. doi:10.1038/s42254-024-00782-5 , isbn =
2025 doi
-
[257]
Ab Initio Structure Factors for Spin-Dependent Dark Matter Direct Detection , author =. Phys. Rev. Lett. , volume =. 2022 , month =. doi:10.1103/PhysRevLett.128.072502 , url =
2022 doi
-
[258]
2001 , issn =
The nuclear shell model towards the drip lines , journal =. 2001 , issn =. doi:https://doi.org/10.1016/S0146-6410(01)00159-4 , url =
2001 doi
-
[259]
Ragnar and Hergert, Heiko and Bogner, Scott K
Stroberg, S. Ragnar and Hergert, Heiko and Bogner, Scott K. and Holt, Jason D. , doi =. Nonempirical Interactions for the Nuclear Shell Model: An Update , url =. Annual Review of Nuclear and Particle Science , number =
-
[260]
Evolution of shell structure in exotic nuclei , author =. Rev. Mod. Phys. , volume =. 2020 , month =. doi:10.1103/RevModPhys.92.015002 , url =
2020 doi
-
[261]
The shell model as a unified view of nuclear structure , author =. Rev. Mod. Phys. , volume =. 2005 , month =. doi:10.1103/RevModPhys.77.427 , url =
2005 doi
-
[262]
Natural orbitals for
Tichai, Alexander and M\"uller, Julius and Vobig, Klaus and Roth, Robert , journal =. Natural orbitals for. 2019 , month =. doi:10.1103/PhysRevC.99.034321 , url =
2019 doi
-
[263]
Charge radii of exotic neon and magnesium isotopes , author =. Phys. Rev. C , volume =. 2020 , month =. doi:10.1103/PhysRevC.102.051303 , url =
2020 doi
-
[264]
Natural orbitals for many-body expansion methods , author =. Phys. Rev. C , volume =. 2021 , month =. doi:10.1103/PhysRevC.103.014321 , url =
2021 doi
-
[265]
Thick-restart block L anczos method for large-scale shell-model calculations
Noritaka Shimizu and Takahiro Mizusaki and Yutaka Utsuno and Yusuke Tsunoda. Thick-restart block L anczos method for large-scale shell-model calculations. Comput. Phys. Commun. 2019. doi:https://doi.org/10.1016/j.cpc.2019.06.011
2019 doi
-
[267]
Hergert, Heiko , title=. Front. Phys. , volume=. 2020 , pages =. doi:10.3389/fphy.2020.00379
2020 doi
-
[268]
Jiang, W. G. and Ekstr\"om, A. and Forss\'en, C. and Hagen, G. and Jansen, G. R. and Papenbrock, T. , journal =. Accurate bulk properties of nuclei from. 2020 , month =. doi:10.1103/PhysRevC.102.054301 , url =
2020 doi
-
[269]
and Hackman, G and Ruotsalainenand, P and others
Henderson, J. and Hackman, G and Ruotsalainenand, P and others. Testing microscopically derived descriptions of nuclear collectivity: Coulomb excitation of ^ 22 Mg. Phys. Lett. B. 2018. doi:10.1016/j.physletb.2018.05.064
2018 doi
-
[270]
Henderson, J. and G. Hackman and P. Ruotsalainen and others. Coulomb excitation of the |T_z |= 1 2 , A=23 mirror pair and systematics of ab-initio E2 strength. 2020. arXiv:2005.03796
2020
-
[271]
and Koszor
Bai, S.W. and Koszor. Phys. Lett. B , keywords =. doi:10.1016/j.physletb.2022.137064 , issn =
2022 doi
-
[272]
Casten, Richard F. , doi =. Nuclear
-
[273]
Ab Initio Limits of Atomic Nuclei , author =. Phys. Rev. Lett. , volume =. 2021 , month =. doi:10.1103/PhysRevLett.126.022501 , url =
2021 doi
-
[274]
Converged ab initio calculations of heavy nuclei , author =. Phys. Rev. C , volume =. 2022 , month =. doi:10.1103/PhysRevC.105.014302 , url =
2022 doi
-
[275]
Transition from the seniority regime to collective motion , author =. Phys. Rev. C , volume =. 2004 , month =. doi:10.1103/PhysRevC.69.034317 , url =
2004 doi
-
[276]
and Papenbrock, T
Hagen, G. and Papenbrock, T. and Dean, D. J. and Schwenk, A. and Nogga, A. and W. Coupled-cluster theory for three-body Hamiltonians. 2007 , journal =. doi:10.1103/PhysRevC.76.034302 , url =
2007 doi
-
[277]
Normal ordering of three-nucleon interactions for ab initio calculations of heavy nuclei , author =. Phys. Rev. C , volume =. 2023 , month =. doi:10.1103/PhysRevC.107.024310 , url =
2023 doi
-
[278]
and Jansen, G
Hagen, G. and Jansen, G. R. and Papenbrock, T. , journal =. Structure of ^. 2016 , month =. doi:10.1103/PhysRevLett.117.172501 , url =
2016 doi
-
[279]
Saturation with chiral interactions and consequences for finite nuclei , author =. Phys. Rev. C , volume =. 2017 , month =. doi:10.1103/PhysRevC.96.014303 , url =
2017 doi
-
[280]
and Adrich, P
Gade, A. and Adrich, P. and Bazin, D. and Bowen, M. D. and Brown, B. A. and Campbell, C. M. and Cook, J. M. and Ettenauer, S. and Glasmacher, T. and Kemper, K. W. and McDaniel, S. and Obertelli, A. and Otsuka, T. and Ratkiewicz, A. and Siwek, K. and Terry, J. R. and Tostevin, ...
2007 doi
-
[281]
Campbell, C. M. and Aoi, N. and Bazin, D. and Bowen, M. D. and Brown, B. A. and Cook, J. M. and Dinca, D.-C. and Gade, A. and Glasmacher, T. and Horoi, M. and Kanno, S. and Motobayashi, T. and Mueller, W. F. and Sakurai, H. and Starosta, K. and Suzuki, H. and Takeuchi, S. and ...
2006 doi
-
[282]
Ibbotson, R. W. and Glasmacher, T. and Brown, B. A. and Chen, L. and Chromik, M. J. and Cottle, P. D. and Fauerbach, M. and Kemper, K. W. and Morrissey, D. J. and Scheit, H. and Thoennessen, M. , journal =. Quadrupole Collectivity in. 1998 , month =. doi:10.1103/PhysRevLett.80...
1998 doi
-
[283]
Nuclear structure of 37, 38Si investigated by decay spectroscopy of 37, 38Al , author =. Eur. Phys. J. A , volume =. 2015 , month =. doi:10.1140/epja/i2015-15117-9 , url =
2015 doi
-
[284]
and G\'orska, M
Blazhev, A. and G\'orska, M. and Grawe, H. and Nyberg, J. and Palacz, M. and Caurier, E. and Dorvaux, O. and Gadea, A. and Nowacki, F. and Andreoiu, C. and de Angelis, G. and Balabanski, D. and Beck, Ch. and Cederwall, B. and Curien, D. and D\"oring, J. and Ekman, J. and Fahla...
2004 doi
-
[285]
Jungclaus and D
A. Jungclaus and D. Kast and K. P. Lieb and C. Teich and M. Weiszflog and T. Härtlein and C. Ender and F. Köck and D. Schwalm and J. Reif and R. Peusquens and A. Dewald and J. Eberth and H. -G. Thomas and M. G\'orska and H. Grawe , keywords =. Picosecond lifetime measurement o...
1998 doi
-
[286]
Physica Scripta , abstract =
Takaharu Otsuka , title =. Physica Scripta , abstract =. 2013 , month =. doi:10.1088/0031-8949/2013/T152/014007 , url =
2013 doi
-
[288]
Nature , author =
Evidence for a new nuclear ‘magic number’ from the level structure of. Nature , author =. 2013 , note =. doi:10.1038/nature12522 , abstract =
2013 doi
-
[289]
Nature , author =
The impact of nuclear shape on the emergence of the neutron dripline , volume =. Nature , author =. 2020 , pages =. doi:10.1038/s41586-020-2848-x , abstract =
2020 doi
-
[290]
2005 , Journal =
‘Magic’ nucleus 42Si , Author =. 2005 , Journal =. doi:10.1038/nature03619 , Number =
2005 doi
-
[291]
Quadrupole collectivity in N
Rodr\'. Quadrupole collectivity in N. Phys. Rev. C , volume =. 2002 , month =. doi:10.1103/PhysRevC.65.024304 , url =
2002 doi
-
[292]
Configuration mixing description of the nucleus
Rodr\'. Configuration mixing description of the nucleus. Phys. Rev. C , volume =. 2011 , month =. doi:10.1103/PhysRevC.84.051307 , url =
2011 doi
-
[293]
and Gr\'evy, S
Force, C. and Gr\'evy, S. and Gaudefroy, L. and Sorlin, O. and C\'aceres, L. and Rotaru, F. and Mrazek, J. and Achouri, N. L. and Ang\'elique, J. C. and Azaiez, F. and Bastin, B. and Borcea, R. and Buta, A. and Daugas, J. M. and Dlouhy, Z. and Dombr\'adi, Zs. and De Oliveira, ...
2010 doi
-
[294]
and Weisshaar, D
Longfellow, B. and Weisshaar, D. and Gade, A. and Brown, B. A. and Bazin, D. and Brown, K. W. and Elman, B. and Pereira, J. and Rhodes, D. and Spieker, M. , journal =. Quadrupole collectivity in the neutron-rich sulfur isotopes ^. 2021 , month =. doi:10.1103/PhysRevC.103.05430...
2021 doi
-
[295]
Parker, J. J. and Wiedenh\"over, I. and Cottle, P. D. and Baker, J. and McPherson, D. and Riley, M. A. and Santiago-Gonzalez, D. and Volya, A. and Bader, V. M. and Baugher, T. and Bazin, D. and Gade, A. and Ginter, T. and Iwasaki, H. and Loelius, C. and Morse, C. and Recchia, ...
2017 doi
-
[296]
and Bazin, D
Gade, A. and Bazin, D. and Campbell, C. M. and Church, J. A. and Dinca, D. C. and Enders, J. and Glasmacher, T. and Hu, Z. and Kemper, K. W. and Mueller, W. F. and Olliver, H. and Perry, B. C. and Riley, L. A. and Roeder, B. T. and Sherrill, B. M. and Terry, J. R. , journal =....
2003 doi
-
[297]
and Valiente-Dob\'on, J
Mengoni, D. and Valiente-Dob\'on, J. J. and Gadea, A. and Lunardi, S. and Lenzi, S. M. and Broda, R. and Dewald, A. and Pissulla, T. and Angus, L. J. and Aydin, S. and Bazzacco, D. and Benzoni, G. and Bizzeti, P. G. and Bizzeti-Sona, A. M. and Boutachkov, P. and Corradi, L. an...
2010 doi
-
[298]
and C\'aceres, L
Calinescu, S. and C\'aceres, L. and Gr\'evy, S. and Sorlin, O. and Dombr\'adi, Z. and Stanoiu, M. and Astabatyan, R. and Borcea, C. and Borcea, R. and Bowry, M. and Catford, W. and Cl\'ement, E. and Franchoo, S. and Garcia, R. and Gillibert, R. and Guerin, I. H. and Kuti, I. a...
2016 doi
-
[299]
New Region of Deformation: The Neutron-Rich Sulfur Isotopes , author =. Phys. Rev. Lett. , volume =. 1996 , month =. doi:10.1103/PhysRevLett.77.3967 , url =
1996 doi
-
[300]
Werner and J.A
T.R. Werner and J.A. Sheikh and W. Nazarewicz and M.R. Strayer and A.S. Umar and M. Misu , abstract =. Shape coexistence around 1644S28: the deformed N = 28 region 1565 , journal =. 1994 , issn =. doi:https://doi.org/10.1016/0370-2693(94)90347-6 , url =
1994 doi
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