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arXiv · 2608.28957

Symmetry-Preserving Phase Transitions in $AM_2$Al$_9$ Materials under Pressure

Abstract

External parameters such as temperature, pressure, and chemical doping can induce structural phase transitions in materials. Although such transitions usually involve a change in symmetry, an uncommon exception is the isostructural phase transition, which is first order yet preserves the symmetry of the parent structure. Using first-principles calculations, we show that $AM_2$Al$_9$ compounds ($A$ = Ba, Ca, Sr, or Eu; $M$ = Fe, Co, or Ni) undergo pressure-induced isostructural phase transitions. At the transition pressure, these systems exhibit a pronounced volume collapse while retaining the same crystal symmetry and space group ($P6/mmm$). Bonding analysis based on the integrated crystal orbital Hamilton population (ICOHP) shows that the transition is driven by a redistribution of bonding character between intralayer and interlayer atomic bonds. Because isostructural transitions are rare in single crystals, $AM_2$Al$_9$ provides a promising platform for investigating critical phenomena under pressure and for deepening our understanding of symmetry-preserving structural transitions.

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Jian-Feng Zhang, Sheng Xu, Zhong-Yi Lu, Tao Xiang. 2026-08-29. Symmetry-Preserving Phase Transitions in $AM_2$Al$_9$ Materials under Pressure. https://arxiv.org/abs/2608.28957

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