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Crystallization Instead of Amorphization in Collision Cascades in Gallium Oxide

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arxiv 2401.07675 v3 pith:LMKPOHME submitted 2024-01-15 cond-mat.mtrl-sci physics.comp-ph

Crystallization Instead of Amorphization in Collision Cascades in Gallium Oxide

classification cond-mat.mtrl-sci physics.comp-ph
keywords polymorphamorphizationcascadescollisiongammaatomiccrystallizationdisorder
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Disordering of solids typically leads to amorphization, but polymorph transitions, facilitated by favorable atomic rearrangements, may temporarily help to maintain long-range periodicity in the solid state. In far-from-equilibrium situations, such as atomic collision cascades, these rearrangements may not necessarily follow a thermodynamically gainful path, but may be kinetically limited. In this Letter, we focused on such crystallization instead of amorphization in collision cascades in gallium oxide (\ce{Ga2O3}). We determined the disorder threshold for irreversible $\beta$-to-$\gamma$ polymorph transition and explained why it results in elevating energy to that of the $\gamma$-polymorph, which exhibits the highest polymorph energy in the system below the amorphous state. Specifically, we demonstrate that upon reaching the disorder transition threshold, the \ce{Ga}-sublattice kinetically favors transitioning to the $\gamma$-like configuration, requiring significantly less migration for \ce{Ga} atoms to reach the lattice sites during post-cascade processes. As such, our data provide a consistent explanation of this remarkable phenomenon and can serve as a toolbox for predictive multi-polymorph fabrication.

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Cited by 1 Pith paper

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    cond-mat.mtrl-sci 2025-01 unverdicted novelty 6.0

    Ion implantation creates strain-driven microtubes in β-Ga₂O₃ that unroll into bulk-like nanomembranes upon annealing, with damage recovery at ~500°C and doping capability.