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Shedding light on nuclear aspects of neutrinoless double beta decay by heavy-ion double charge exchange reactions

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DOI: 10.1016/j.ppnp.2022.103999

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Nuclear double charge exchange reactions; Heavy-ion reactions; Double beta decay; Theory of charge exchange excitations; Multi-channel approach for direct reactions

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This article reviews the status and prospects of heavy-ion double charge exchange (HI-DCE) reactions, highlighting their important role in nuclear reaction, nuclear structure, and double beta-decay investigations. The main challenges lie in the tiny cross sections of these processes and the high background generated by competing reactions. However, recent advancements in magnetic spectrometers have aided the development of HI-DCE spectroscopy. Theoretical descriptions of HI-DCE cross sections are also complex due to the involvement of composite nuclei and multiple reaction mechanisms.
We review the status and prospects of heavy-ion double charge exchange (HI-DCE) reactions. Their important role for nuclear reaction, nuclear structure and double beta-decay investigations is outlined. From the experimental side the characteristi-cally tiny cross sections for these processes and the high background generated by other more probable competing reactions is the main challenge, which has hindered HI-DCE spectroscopy until recent years. Modern magnetic spectrometers have proven to possess the right requisites to overcome past limitations, fostering the present and future development of the field. From the theory side, the description of the measured HI-DCE cross sections poses manifold challenges. Dealing with processes which involve composite nuclei, HI-DCE reactions can, in principle, proceed through several alternative paths. These, in turn, correspond to different reaction mechanisms probing competing aspects of nuclear structure, from mean field to various classes of nucleon-nucleon interactions and correlations. A powerful way to scrutinize the nuclear response to HI-DCE is to consistently link it to the information extracted from the competing direct reactions. Indeed, these complementary studies are mandatory in order to minimize the systematic errors in the data analyses and build a many-facets and parameter-free representation of the systems under study.(c) 2022 Elsevier B.V. All rights reserved.

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