Martensitic Transformation Precursors: Phonon Theory and Critical Experiments
Yu U. Wang, Yongmei M. Jin

TL;DR
This paper introduces a phonon domain hypothesis and a new theoretical framework to explain martensitic precursor phenomena, supported by experimental evidence from synchrotron X-ray diffraction showing unique domain behaviors.
Contribution
It develops a Gruneisen-type phonon theory based on incomplete phonon softening, explaining pre-martensitic transitions as phonon pseudo-Jahn-Teller instabilities without static defects.
Findings
Predicted pre-martensitic transition via phonon spinodal decomposition
Observed exotic phonon and elastic domains in pre-martensitic austenite
Unified explanation of precursor anomalies through phonon domain behavior
Abstract
This paper addresses martensitic precursor phenomena from new theoretical and experimental perspectives. Driven by a phonon domain hypothesis, based on the premise of incomplete phonon softening, and employing Born's dynamical approach to statistical mechanics of anharmonic crystal lattices, we develop a Gruneisen-type phonon theory that predicts a pre-martensitic transition via "spinodal decomposition" of phonon populations and, without resort to static defects, explains the precursor "anomalies" on the same physical footing of thermal expansion, both being intrinsic properties of anharmonic crystal lattices. The theory reveals the nature of this pre-martensitic transition as phonon pseudo-Jahn-Teller instability transition, and predicts formation of elastic and phonon domains whose behaviors are primarily characterized by the broken dynamic symmetry of lattice vibrations rather than…
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Taxonomy
TopicsShape Memory Alloy Transformations · High-pressure geophysics and materials · Intermetallics and Advanced Alloy Properties
