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DFT Studies of Electronic Properties and Effect of He and Xe Incorporation in Selected Ceramics

DOI: 10.4236/jmp.2024.1510061, PP. 1485-1501

Keywords: UN, ThN, ThC, Thermal Conductivity, Defects

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Abstract:

The electronic properties of several prospective nuclear fuels are not yet well known. We used Quantum Espresso and EPW codes to evaluate the electron density of states, the electronic heat capacity coefficient, the electron-phonon coupling strength, the number of mobility electrons, and the electronic heat conductivity. The electronic properties for ThN, ThC and UN using a slightly different approach that were previously evaluated are discussed and the results are compared. We confirmed that while the electronic heat capacity coefficient is linearly dependent on the electron density of states at Fermi energy, such a simple relation could not be used to determine the difference in the electronic heat conductivity of investigated materials. The highest heat conductivity was registered in ThN. These metallic fuels also have high U/Th density, therefore are more economical since enrichment is expensive. Furthermore, it is important to examine swelling in these high-density fuels. We evaluated that UN had 42% more U atoms per unit volume than UO2 and a 55% higher volume increase when accommodating one Xe atom in one interstitial of a (2 × 2 × 2) supercell. However, for He, the volume increase was 27% lower in UN. Interestingly, even though the Th atom’s density in ThN and ThC was lower than that of U atoms in the UN compound, a similar trend of volume changes was found. We concluded, therefore, that when we consider swelling, the local structural symmetry (tetrahedral versus octahedral sites) is more important than the density of atoms. The 37 % greater of absolute value of the total energy increase due to incorporation of Xe in ThC versus ThN cannot be explained by the crystal structure since a ThC-Xe supercell has a higher lattice constant than a ThN-Xe corresponding supercell. Such results can only be explained by investigating electronic structure.

References

[1]  Pioro, I.L., Khan, M., Hopps, V., Jacobs, C., Patkunam, R., Gopaul, S., et al. (2008) SCW Pressure-Channel Nuclear Reactor Some Design Features. Journal of Power and Energy Systems, 2, 874-888.
https://doi.org/10.1299/jpes.2.874
[2]  Gorton, J.P., Collins, B.S., Nelson, A.T. and Brown, N.R. (2019) Reactor Performance and Safety Characteristics of ThN-UN Fuel Concepts in a PWR. Nuclear Engineering and Design, 355, 110317.
https://doi.org/10.1016/j.nucengdes.2019.110317
[3]  NEA (2018) State-of-the-Art Report on Light Water Reactor Accident-Tolerant Fuels. Nuclear Science, OECD Publishing.
[4]  Szpunar, B. and Szpunar, J.A. (2014) Thermal Conductivity of Uranium Nitride and Carbide. International Journal of Nuclear Energy, 2014, Article 178360.
https://doi.org/10.1155/2014/178360
[5]  Szpunar, B., Ranasinghe, J.I., Malakkal, L. and Szpunar, J.A. (2020) First Principles Investigation of Thermal Transport of Uranium Mononitride. Journal of Physics and Chemistry of Solids, 146, Article 109636.
https://doi.org/10.1016/j.jpcs.2020.109636
[6]  Szpunar, B., Ranasinghe, J.I. and Szpunar, J.A. (2021) Electronic Transport of Uranium Mononitride. Journal of Modern Physics, 12, 1349-1357.
https://doi.org/10.4236/jmp.2021.1210084
[7]  Szpunar, B., Ranasinghe, J.I., Malakkal, L. and Szpunar, J.A. (2021) First Principles Investigation of Thermal Properties of Thorium Mononitride. Journal of Alloys and Compounds, 879, Article 160467.
https://doi.org/10.1016/j.jallcom.2021.160467
[8]  Szpunar, B., Ranasinghe, J.I., Szpunar, J.A. and Malakkal, L. (2022) Comparison of the Electronic Transport of ThN against ThC. Journal of Physics and Chemistry of Solids, 165, Article 110647.
https://doi.org/10.1016/j.jpcs.2022.110647
[9]  Szpunar, B. (2022) First Principles Investigation of the Electronic-Thermal Transport of ThN, UN, and ThC. Nuclear Materials and Energy, 32, Article 101212.
https://doi.org/10.1016/j.nme.2022.101212
[10]  Parker, S.S., White, J.T., Hosemann, P. and Nelson, A.T. (2019) Thermophysical Properties of Thorium Mononitride from 298 to 1700 K. Journal of Nuclear Materials, 526, Article 151760.
https://doi.org/10.1016/j.jnucmat.2019.151760
[11]  Modak, P. and Verma, A.K. (2011) First-Principles Investigation of Electronic, Vibrational, Elastic, and Structural Properties of ThN and UN up to 100 GPa. Physical Review B, 84, Article 024108.
https://doi.org/10.1103/physrevb.84.024108
[12]  Giannozzi, P., Baroni, S., Bonini, N., Calandra, M., Car, R., Cavazzoni, C., et al. (2009) QUANTUM ESPRESSO: A Modular and Open-Source Software Project for Quantum Simulations of Materials. Journal of Physics: Condensed Matter, 21, Article 395502.
https://doi.org/10.1088/0953-8984/21/39/395502
[13]  Perdew, J.P., Ruzsinszky, A., Csonka, G.I., Vydrov, O.A., Scuseria, G.E., Constantin, L.A., et al. (2009) Erratum: Restoring the Density-Gradient Expansion for Exchange in Solids and Surfaces [phys. Rev. Lett.100, 136406 (2008)]. Physical Review Letters, 102, Article 039902.
https://doi.org/10.1103/physrevlett.102.039902
[14]  Ceperley, D.M. and Alder, B.J. (1980) Ground State of the Electron Gas by a Stochastic Method. Physical Review Letters, 45, 566-569.
https://doi.org/10.1103/physrevlett.45.566
[15]  Perdew, J.P., Burke, K. and Ernzerhof, M. (1996) Generalized Gradient Approximation Made Simple. Physical Review Letters, 77, 3865-3868.
https://doi.org/10.1103/physrevlett.77.3865
[16]  Poncé, S., Margine, E.R., Verdi, C. and Giustino, F. (2016) EPW: Electron-Phonon Coupling, Transport and Superconducting Properties Using Maximally Localized Wannier Functions. Computer Physics Communications, 209, 116-133.
https://doi.org/10.1016/j.cpc.2016.07.028
[17]  Ziman, J. (1960) Electrons and Phonons. Oxford University Press.
[18]  Franz, R. and Wiedemann, G. (1853) Ueber die Wärme‐Leitungsfähigkeit der Metalle. Annalen der Physik, 165, 497-531.
https://doi.org/10.1002/andp.18531650802
[19]  Pérez Daroca, D., Llois, A.M. and Mosca, H.O. (2016) Point Defects in Thorium Nitride: A First-Principles Study. Journal of Nuclear Materials, 480, 1-6.
https://doi.org/10.1016/j.jnucmat.2016.07.057
[20]  Knott, H.W., Lander, G.H., Mueller, M.H. and Vogt, O. (1980) Search for Lattice Distortions in UN, UAs, and USb at Low Temperatures. Physical Review B, 21, 4159-4165.
https://doi.org/10.1103/physrevb.21.4159
[21]  Gerward, L., Olsen, J.S., Benedict, U., et al. (1988) Bulk Moduli and High-Pressure Phases of ThX Compounds. I. The Thorium Monopnictides. High Temperatures-High Pressures, 20, 545-552.
[22]  Street, R.S. and Waters, T.N. (1962) The Thermal Expansion of ThC and ThN. Energy Research Establishment, Harwell.
[23]  Leinders, G., Cardinaels, T., Binnemans, K. and Verwerft, M. (2015) Accurate Lattice Parameter Measurements of Stoichiometric Uranium Dioxide. Journal of Nuclear Materials, 459, 135-142.
https://doi.org/10.1016/j.jnucmat.2015.01.029
[24]  Ma, L. and Ray, A.K. (2012) Formation Energies and Swelling of Uranium Dioxide by Point Defects. Physics Letters A, 376, 1499-1505.
https://doi.org/10.1016/j.physleta.2012.03.017
[25]  Claisse, A., Klipfel, M., Lindbom, N., Freyss, M. and Olsson, P. (2016) GGA+U Study of Uranium Mononitride: A Comparison of the U-Ramping and Occupation Matrix Schemes and Incorporation Energies of Fission Products. Journal of Nuclear Materials, 478, 119-124.
https://doi.org/10.1016/j.jnucmat.2016.06.007
[26]  Dubois, E.T., Tranchida, J., Bouchet, J. and Maillet, J. (2024) Atomistic Simulations of Nuclear Fuel UO2 with Machine Learning Interatomic Potentials. Physical Review Materials, 8, Article 025402.
https://doi.org/10.1103/physrevmaterials.8.025402
[27]  Yang, L. and Kaltsoyannis, N. (2021) Incorporation of Kr and Xe in Uranium Mononitride: A Density Functional Theory Study. The Journal of Physical Chemistry C, 125, 26999-27008.
https://doi.org/10.1021/acs.jpcc.1c08523
[28]  Freyss, M. (2010) First-Principles Study of Uranium Carbide: Accommodation of Point Defects and of Helium, Xenon, and Oxygen Impurities. Physical Review B, 81, Article 014101.
https://doi.org/10.1103/physrevb.81.014101
[29]  Kocevski, V., Cooper, M.W.D., Claisse, A.J. and Andersson, D.A. (2022) Development and Application of a Uranium Mononitride (UN) Potential: Thermomechanical Properties and Xe Diffusion. Journal of Nuclear Materials, 562, Article 153553.
https://doi.org/10.1016/j.jnucmat.2022.153553
[30]  Hayes, S.L., Thomas, J.K. and Peddicord, K.L. (1990) Material Property Correlations for Uranium Mononitride. Journal of Nuclear Materials, 171, 289-299.
https://doi.org/10.1016/0022-3115(90)90376-x
[31]  Auskern, A.B. and Aronson, S. (1967) Electrical Properties of Thorium Nitrides. Journal of Physics and Chemistry of Solids, 28, 1069-1071.
https://doi.org/10.1016/0022-3697(67)90224-7
[32]  Chiotti, P., Korbitz, F.W. and Dooley, G.J. (1967) Electrical Resistivity and Phase Relations for the Thorium-Carbon System. Journal of Nuclear Materials, 23, 55-67.
https://doi.org/10.1016/0022-3115(67)90131-6
[33]  Moser, J.B. and Kruger, O.L. (1967) Thermal Conductivity and Heat Capacity of the Monocarbide, Monophosphide, and Monosulfide of Uranium. Journal of Applied Physics, 38, 3215-3222.
https://doi.org/10.1063/1.1710092
[34]  Weaver, S.C. (1972) An Investigation of the Thermal Conductivity, Electrical Resistivity, and Thermoelectric Power of Thorium Nitride-Uranium Nitride Alloys. Ph.D. Thesis, University of Tennessee.
[35]  Gerardin, M., Gilabert, E., Horlait, D., Barthe, M. and Carlot, G. (2021) Experimental Study of the Diffusion of Xe and Kr Implanted at Low Concentrations in UO2 and Determination of Their Trapping Mechanisms. Journal of Nuclear Materials, 556, Article 153174.
https://doi.org/10.1016/j.jnucmat.2021.153174

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