Thermal expansion anisotropy of Fe 23 Mo 16 and Fe 7 Mo 6 μ-phases predicted using first-principles calculations
The intermetallic μ-phase, which precipitates in steels and superalloys, can noticeably soften the mechanical properties of their matrix. Despite the importance of developing superalloys and steels, the thermodynamic properties and directions of thermal expansion of the μ-phase are still poorly stud...
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Veröffentlicht in: | Physical chemistry chemical physics : PCCP 2024-01, Vol.26 (4), p.3482-3499 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | The intermetallic μ-phase, which precipitates in steels and superalloys, can noticeably soften the mechanical properties of their matrix. Despite the importance of developing superalloys and steels, the thermodynamic properties and directions of thermal expansion of the μ-phase are still poorly studied. In this work, the thermal expansion paths, elastic, thermal and thermodynamic properties of the Fe
Mo
and Fe
Mo
μ-phases are studied using the first-principles-based quasi-harmonic Debye-Grüneisen approach. A method that avoids differentiation in many variables is used. The free energies consisting of the electronic, vibrational and magnetic energy contributions, calculated along different paths of thermal expansions, were compared among themselves. A path with the least free energy was chosen as the trajectory of thermal expansion. Negative thermal expansion of the Fe
Mo
compound was predicted, while Fe
Mo
exhibits conventional thermal expansion. The thermal expansions of both these compounds are not isotropic. The elastic constants, moduli, heat capacities, Curie and Debye temperatures were predicted. The obtained results satisfactorily agree with the available experimental data. Physical factors affecting the stability of Fe
Mo
and Fe
Mo
have been studied. This study presents an essential feature of thermal expansion of the μ-phase of the Fe-Mo system, which can provide an insight into future developments. |
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ISSN: | 1463-9076 1463-9084 |
DOI: | 10.1039/D3CP04266A |