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Halo/Cluster Effective Field Theory describes halo/cluster nuclei in an expansion in the small ratio of the size of the core(s) to the size of the system.
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D. L. Canham, H.-W. Hammer, Universal properties and structure of halo nuclei, Eur. Phys. J. A37 (2008) 367–380 · 2008
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X. Zhang, K. M. Nollett, D. R. Phillips, Marrying ab initio calculations and Halo-EFT: the case of Li 7 + n → Li 8 + γ {}^{7}{\rm Li}+n\rightarrow{}^{8}{\rm Li}+\gamma , Phys. Rev. C89 (2) (2014) 024613 · 2014
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X. Zhang, K. M. Nollett, D. R. Phillips, Combining ab initio calculations and low-energy effective field theory for halo nuclear systems: The case of B 7 e + p → B 8 + γ {}^{7}Be+p\to{}^{8}B+\gamma , Phys. Rev. C89 (5) (2014) 051602 · 2014
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E. Ryberg, C. Forssén, H.-W. Hammer, L. Platter, Effective field theory for proton halo nuclei, Phys. Rev. C89 (2014) 014325 · 2014
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W. Nörtershäuser, D. Tiedemann, M. Žáková, Z. Andjelkovic, K. Blaum, M. L. Bissell, R. Cazan, G. W. F. Drake, C. Geppert, M. Kowalska, J. Krämer, A. Krieger, R. Neugart, R. Sánchez, F. Schmidt-Kaler, Z.-C. Yan, D. T. Yordanov, C. Zimmermann, Nuclear charge radii of Be 7 , 9 , 10 {}^{7,9,10}\mathrm{Be} and the one-neutron halo nucleus Be 11 {}^{11}\mathrm{Be} , Phys. Rev. Lett. 102 (2009) 062503 · 2009
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D. L. Canham, H.-W. Hammer, Range corrections for two-neutron halo nuclei in effective theory, Nucl. Phys. A836 (2010) 275–292 · 2010
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G. Papadimitriou, A. T. Kruppa, N. Michel, W. Nazarewicz, M. Płoszajczak, J. Rotureau, Charge radii and neutron correlations in helium halo nuclei, Phys. Rev. C84 (2011) 051304 · 2011
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H.-W. Hammer, D. R. Phillips, Electric properties of the Beryllium-11 system in Halo EFT, Nucl. Phys. A 865 (2011) 17–42
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V. Lensky, M. C. Birse, Coupled-channel effective field theory and proton- 7 Li scattering, Eur. Phys. J. A47 (2011) 142 · 2011
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E. Ryberg, C. Forssén, H.-W. Hammer, L. Platter, Constraining Low-Energy Proton Capture on Beryllium-7 through Charge Radius Measurements, Eur. Phys. J. A50 (2014) 170 · 2014
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P. J. Mohr, D. B. Newell, B. N. Taylor, CODATA Recommended Values of the Fundamental Physical Constants: 2014 (Aug. 2015) · 2015
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X. Zhang, K. M. Nollett, D. R. Phillips, Halo effective field theory constrains the solar 7 Be + p → \to 8 B + γ \gamma rate, Phys. Lett. B751 (2015) 535–540 · 2015
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D. R. Phillips, Electromagnetic Structure of Two- and Three-Nucleon Systems: An Effective Field Theory Description, Ann. Rev. Nucl. Part. Sci. 66 (2016) 421–447 · 2016
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K. A. Olive, Review of Particle Physics, Chin. Phys. C40 (10) (2016) 100001 · 2016
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E. Ryberg, C. Forssén, H.-W. Hammer, L. Platter, Range corrections in Proton Halo Nuclei, Annals Phys. 367 (2016) 13–32 · 2016
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H.-W. Hammer, C. Ji, D. R. Phillips, Effective field theory description of halo nuclei, J. Phys. G44 (10) (2017) 103002 · 2017
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E. Ryberg, C. Forssén, L. Platter, Three-Body Halo States in Effective Field Theory: Renormalization and Three-Body Interactions in the Helium-6 System, Few Body Syst. 58 (4) (2017) 143 · 2017
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X. Zhang, K. M. Nollett, D. R. Phillips, Models, measurements, and effective field theory: Proton capture on B 7 e {}^{7}Be at next-to-leading order, Phys. Rev. C98 (3) (2018) 034616 · 2018
Later among the works it cites.
W. Elkamhawy, H.-W. Hammer, in preparation (2019)
2019
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