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Showing 1 to 5 of 5 for “"Heavy fermion materials"”.

  1. Theoretical studies of heavy fermion materials

    Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 1986

    mit

  2. High-Pressure Studies of Some Heavy Fermion Materials

    … presents the results of measurements on three heavy fermion materials under pressure: CeSb2, YbPtBi and CeAgSb2. In Chapter 1, I give an introduction to the key concepts involved in this work, such as unconventional superconductivity, quantum critical points and quantum oscillations, and I …

    cambridge Repository record for High-Pressure Studies of Some Heavy Fermion Materials (opens in a new tab)

  3. Cerium and rhodium substitution in the antiferromagnetic superconductor cerium rhodium indium(5)

    Among heavy fermion materials, a relationship between unconventional superconductivity and magnetism has been observed. The dependence of the magnetic transitions of CexLa1-xRhyIr1-y In5 with respect to temperature and magnetic field applied along the tetragonal c and a crystal axes is examined …

    unlv Repository record for Cerium and rhodium substitution in the antiferromagnetic superconductor cerium rhodium indium(5) (opens in a new tab)

  4. Development of High-Pressure Calorimetry Techniques and Calorimetry Study of the Heavy-Fermion Superconductor CeSb2

    … techniques. We focus on the situation of materials at high-pressure in a piston cylinder cell, comparing various possible measurement strategies. Detailed calculations of the thermodynamic variables pave the way for further development and optimisation for future projects studying …

    cambridge Repository record for Development of High-Pressure Calorimetry Techniques and Calorimetry Study of the Heavy-Fermion Superconductor CeSb2 (opens in a new tab)

  5. Non-equilibrium dynamics of ultracold atoms in optical lattices

    … for models of unusual transport phenomena in materials with strong interactions, such as heavy fermion materials and transition metal oxides. The cooling method we have developed is applicable to any species, including fermionic atoms. Our results are available in Ref. [3]

    uiuc Repository record for Non-equilibrium dynamics of ultracold atoms in optical lattices (opens in a new tab)