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arXiv:1411.7239·v1·Nuclear Theory

Entrance channel effects on the evaporation residue yields in reactions leading to the Th compound nucleus

Kyungil Kim (1) · Avazbek Nasirov (2,3) · Giuseppe Mandaglio (4,5,6) · Giorgio Giardina (4,5) · Youngman Kim (1) ((1) Rare Isotope Science Project, Institute for Basic Science, (2) Joint Institute for Nuclear Research, (3) Institute of Nuclear Physics, (4) Dipartimento di Fisica e di Scienze della Terra dell'Università di Messina, (5) Istituto Nazionale di Fisica Nucleare, Sezione di Catania, (6) Centro Siciliano di Fisica Nucleare e Struttura della Materia Catania)

Abstract

The evaporation residue yields from compound nuclei Th formed in the O+Pb, Ar+Hf, Se+Ba, Sn+Zr reactions are analyzed to study the entrance channel effects by comparison of the capture, fusion and evaporation residue cross sections calculated by the combined dinuclear system (DNS) and advanced statistical models. The difference between evaporation residue (ER) cross sections can be related to the stages of compound nucleus formation or/and at its surviving against fission. The sensitivity of the both stages in the evolution of DNS up to the evaporation residue formation to the angular momentum of DNS is studied. The difference between fusion excitation functions are explained by the hindrance to complete fusion due to the larger intrinsic fusion barrier for the transformation of the DNS into a compound nucleus and the increase of the quasifission contribution due to the decreasing of quasifission barrier as a function of the angular momentum. The largest value of the ER residue yields in the very mass asymmetric O+Pb reaction is related to the large fusion probability and to the relatively low threshold of the excitation energy of the compound nucleus. Due to the large threshold of the excitation energy (35 MeV) of the Ar+Hf reaction, it produces less the ER yields than the almost mass symmetric Se+Ba reaction having the lowest threshold value (12 MeV).

Comments: 27 pages and 20 figures

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