Evaluation of the thermal scattering law and cross sections for α-U3O8 using ab initio lattice dynamics

IF 1.9 3区 工程技术 Q1 NUCLEAR SCIENCE & TECHNOLOGY
Junhyoung Gil, Ayman I. Hawari
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引用次数: 0

Abstract

Triuranium octoxide (U3O8) is a starting material in the nuclear fuel cycle and a preferred form for the safe storage of nuclear fuel and for the disposal and containment of radioactive waste, due to its thermodynamically stable characteristics compared to other uranium oxides. Despite extensive experimental and computational investigations on its properties, discrepancies exist regarding its correct magnetic state. Recent inelastic neutron scattering experiments and density functional theory calculations have elucidated that U3O8 exhibits an antiferromagnetic (AFM) [0.5 1 1] ordering. In this study, we model the α-U3O8 crystal with AFM [0.5 1 1] ordering at the atomic level to evaluate its thermal scattering law (TSL). Ab initio lattice dynamics simulations based on density functional theory are coupled with phonon vibration analysis to derive the phonon density of states of α-U3O8, based on which the scattering cross section is generated. The optimized lattice structure of our α-U3O8 model closely aligns with experimental data, and the electronic band gap reasonably matches the experimental range. Phonon vibration analysis under the harmonic approximation indicates that the heat capacity, entropy, and enthalpy deviate by less than 10% from experimental observations. The calculated phonon density of states (DOS) demonstrates overall reasonable agreement with the data obtained from inelastic neutron scattering measurements. Using the DOS, the TSL and thermal neutron scattering cross sections are produced, and the anticipated systematic behavior is exhibited across various temperatures.
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来源期刊
Annals of Nuclear Energy
Annals of Nuclear Energy 工程技术-核科学技术
CiteScore
4.30
自引率
21.10%
发文量
632
审稿时长
7.3 months
期刊介绍: Annals of Nuclear Energy provides an international medium for the communication of original research, ideas and developments in all areas of the field of nuclear energy science and technology. Its scope embraces nuclear fuel reserves, fuel cycles and cost, materials, processing, system and component technology (fission only), design and optimization, direct conversion of nuclear energy sources, environmental control, reactor physics, heat transfer and fluid dynamics, structural analysis, fuel management, future developments, nuclear fuel and safety, nuclear aerosol, neutron physics, computer technology (both software and hardware), risk assessment, radioactive waste disposal and reactor thermal hydraulics. Papers submitted to Annals need to demonstrate a clear link to nuclear power generation/nuclear engineering. Papers which deal with pure nuclear physics, pure health physics, imaging, or attenuation and shielding properties of concretes and various geological materials are not within the scope of the journal. Also, papers that deal with policy or economics are not within the scope of the journal.
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