Nuclear applications of inverse scattering, present ... and future?

dc.creatorMackintosh, R. S.
dc.date2005-10-03
dc.date.accessioned2026-07-07T06:20:37Z
dc.date.available2026-07-07T06:20:37Z
dc.descriptionThere now exists a practical method (IP) for the routine inversion of $S$-matrix elements to produce the corresponding potential. It can be applied to spin-1/2 and spin-1 projectiles. We survey the ways that IP inversion can be applied in nuclear physics by inverting $S_{lj}$ derived from theory or from experiment. The IP inversion method can be extended to invert $S_{lj}(E)$ over a range of energies to produce a potential $V(r,E) + \vect{l}\vdot\gvectσ V_{\rm ls}(r,E)$. It also yields parity-dependent potentials between pairs of light nuclei and can be convoluted with a direct search on the $S$-matrix to produce `direct data $\to V$ inversion'. The last is an economical alternative form of optical model search to fit many observables (e.g. for polarized deuterons) for many energies, producing an energy-dependent potential with many parameters (e.g. $T_{\rm R}$ for deuterons).
dc.description8 pages, 3 figures, LaTeX. Invited talk presented at Conference, Perspectives on Nuclear Data for the Next Decade, Bruyeres-le-Chatel, 26-28 September 2005
dc.identifierhttps://arxiv.org/abs/nucl-th/0510009
dc.identifierhttp://arxiv.org/abs/nucl-th/0510009
dc.identifier.urihttp://salesiana.dossiersoluciones.com/handle/123456789/95370
dc.subjectNuclear Theory
dc.titleNuclear applications of inverse scattering, present ... and future?
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