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<scp>LAX</scp> phases: A family of novel stable layered materials, informatics‐based discovery

Ehsan AlibagheriDepartment of Physics University of Tehran Tehran IranMohammad KhazaeiDepartment of Physics University of Tehran Tehran IranMehdi EstiliResearch Center for Electronic and Optical Materials National Institute for Materials Science (NIMS) Tsukuba Ibaraki JapanAlireza SeyfiDepartment of Physics University of Tehran Tehran IranHiroshi MizoguchiResearch Center for Materials Nanoarchitectonics (MANA) National Institute for Materials Science (NIMS) Tsukuba Ibaraki JapanKaoru OhnoDepartment of Physics Yokohama National University Yokohama JapanHideo HosonoMDX Research Center for Element Strategy International Research Frontiers Initiative Yokohama JapanS. Mehdi Vaez AllaeiDepartment of Physics University of Tehran Tehran Iran
InfoMatjournal2025en
ABI

Аннотация

Abstract Ternary MAX phases, characterized by the chemical formula M₂AX, represent a group of layered materials with hexagonal lattices. These MAX phases have been the subject of extensive experimental and theoretical studies. Formation energy and thermodynamic calculations indicate that MAX phases containing late transition metals, such as Rh, Ru, Pt, Pd, Co, and Ni, are unlikely to form. Here, we introduce an alternative family of orthorhombic and monoclinic materials, the LAX phases, which exhibit similarities to MAX phases in terms of their layered structure and A and X elements. However, LAX materials incorporate late transition metals in place of the early transition metals. Advanced techniques for predicting the crystal structure of materials, coupled with data‐driven materials research and machine learning algorithms, were employed to investigate the stable structures containing transition metals from the last groups of the d‐block elements. The analyses revealed 207 ternary LAX systems that demonstrate robust stability against decomposition, with 100 of these systems showing dynamic stability. An in‐depth examination of the top 10 structures revealed five LAX systems that are phase stable and exhibit superior mechanical properties, outperforming MAX phase counterparts in Young's modulus, stiffness, and hardness. These findings indicate that many LAX phase structures are viable candidates for future synthesis, highlighting the potential of heuristic‐based structure searches in material discovery. image

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