@inbook{274c6c246b14415aac22ddfeb484f26a,
title = "First principles investigations of alternative nuclear fuels",
abstract = "In this work we present a comparison of properties for U3Si2 U3Si2, UNUN and UO2 using first principles calculationFirst principle calculation. The local density approximation (LDA) and generalized gradient approximation (GGA/WC) predict that U3Si2 is non-magnetic while GGA/PBE predicts that ferromagnetic ordering (not observed experimentally) is more stable by just 0.02 eV per uranium atom. On the other hand, the ground states of Urania and UN are independent of the used functional, with a non-zero magnetic moment on uranium. U3Si2 is predicted to have lower binding energy (−14.4 eV) than UN (−20.4 eV) and UO2 (−32.7 eV) and a lower melting point (1796 K vs. 2932 and 2987 K, respectively). The calculated minimal lattice thermal conductivity in W(m−1 K−1), indicates that phonon contribution to the thermal conductivity is smaller in both UN and U3Si2 (0.78 and 0.64 vs. 1.06). However calculations confirm that UN and U3Si2 are safer alternative fuelsNuclear alternative fuels due to their electronic thermal conductivity{\textquoteright}s increasing with temperature as also observed experimentally.",
keywords = "Al, CASTEP, Electron relaxation time, Electronic and lattice thermal conductivity, First principle calculation, Nuclear alternative fuels, Quantum ESPRESSO, UN, USi",
author = "Barbara Szpunar and Linu Malakkal and Ericmoore Jossou and Szpunar, \{Jerzy A.\}",
note = "Publisher Copyright: {\textcopyright} 2017, The Minerals, Metals \& Materials Society.",
year = "2017",
doi = "10.1007/978-3-319-52333-0\_33",
language = "English",
series = "Minerals, Metals and Materials Series",
publisher = "Springer International Publishing",
number = "9783319523330",
pages = "367--376",
booktitle = "Minerals, Metals and Materials Series",
edition = "9783319523330",
}