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María Isabel Gallardo

Researcher at University of Seville

Publications -  55
Citations -  624

María Isabel Gallardo is an academic researcher from University of Seville. The author has contributed to research in topics: Pairing & Detector. The author has an hindex of 12, co-authored 54 publications receiving 588 citations. Previous affiliations of María Isabel Gallardo include University of Copenhagen.

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Damping of the giant dipole resonance in hot, strongly rotating nuclei

TL;DR: In this paper, the isovector dipole density-density response of hot rotating nuclei is calculated applying a cranked deformed Nilsson potential together with a separable dipole-dipole residual interaction.
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Pairing fluctuations in rapidly rotating nuclei

TL;DR: In this paper, the existence of pair fluctuations in rapidly rotating nuclei in connection with the pair gap is reviewed, where the quantities considered are single-particle energies (routhians) and alignments.
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Population and Decay of the Superdeformed Rotational Band of Dy-152

TL;DR: The observed pattern of the population and decay of the superdeformed band of /sup 152/Dy is related to the large splitting of the giant dipole resonance based on the super deformed minimum as well as to the low level density associated with it, and to the sudden onset of static pairing correlations taking place at the rotational frequency h-dash-bar..omega..approx. = 0.3 MeV as mentioned in this paper.
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The FIRST experiment at GSI

TL;DR: The FIRST (Fragmentation of Ions Relevant for Space and Therapy) experiment at the SIS accelerator of GSl laboratory in Darmstadt has been designed for the measurement of ion fragmentation crosssections at different angles and energies between 100 and 1000 MeV/nucleon as mentioned in this paper.
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Role of thermal fluctuations in the damping of the giant dipole resonance of spherical and deformed nuclei: 90Zr and 164Er

TL;DR: In this article, the damping width of the giant dipole resonance (GDR) built on the ground state and on excited states of 90 Zr, which is spherical at zero spin and temperature, and 164 Er which is deformed.