Progress and prospects in MAB phases: A comprehensive review of structure, synthesis, and multifunctional properties

Abstract MAB phases comprise a diverse family of layered ternary and quaternary transition-metal borides and related 211-type MAX borides. Conventional MAB phases contain transition-metal–boron structural units separated by A-containing layers; in many Al-containing members, strong M–B and, where present, B–B interactions coexist with relatively weak A-related interactions, producing anisotropic mechanical and transport behavior. Selected MAB phases combine high hardness, damage tolerance, electrical and thermal conductivity, oxidation resistance, crack-healing capability, or radiation tolerance, although these properties depend on composition, structure, phase purity, and processing history. Selected MAB phases can also serve as precursors for topochemical synthesis of two-dimensional MBenes, which have been investigated for energy storage, electrocatalysis, sensing, and optoelectronic applications. This review traces the historical development of the MAB phase field, establishes an operational scope and classification framework for conventional MAB phases and related subfamilies, and describes the structural diversity arising from stoichiometry, crystal symmetry, boron-network topology, and chemical ordering. It surveys computational approaches for evaluating thermodynamic, dynamical, and mechanical stability and for predicting intrinsic properties, and critically examines experimental synthesis routes for powders, dense bulks, single crystals, thin films, coatings, and selected MBene derivatives. The review further evaluates mechanical, thermophysical, high-temperature, tribological, radiation-related, and functional properties with attention to sample state and measurement conditions. By connecting composition, structure, bonding, processing, and performance, this review identifies both the opportunities and the limitations that must be addressed before MAB phases and MBenes can be translated into practical applications.

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Publication Details

Journal
Journal of Advanced Ceramics
Published
2026-09-30
DOI
https://doi.org/10.26599/jac.2026.9221386
Primary Topic
MXene and MAX Phase Materials
Type
article
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Progress and prospects in MAB phases: A comprehensive review of structure, synthesis, and multifunctional properties

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Journal of Advanced Ceramics
MXene and MAX Phase Materials
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Progress and prospects in MAB phases: A comprehensive review of structure, synthesis, and multifunctional properties

Siqi Xiang, Yihan Liang, Qingqing Cao, Chengwen Bin, 胡洲全, Wen Bo, Feng Qingguo, Chunfeng Hu, Hao Zhang, Yanchun Zhou, Xinyu Li, Man Jiang
article en

Abstract

Abstract MAB phases comprise a diverse family of layered ternary and quaternary transition-metal borides and related 211-type MAX borides. Conventional MAB phases contain transition-metal–boron structural units separated by A-containing layers; in many Al-containing members, strong M–B and, where present, B–B interactions coexist with relatively weak A-related interactions, producing anisotropic mechanical and transport behavior. Selected MAB phases combine high hardness, damage tolerance, electrical and thermal conductivity, oxidation resistance, crack-healing capability, or radiation tolerance, although these properties depend on composition, structure, phase purity, and processing history. Selected MAB phases can also serve as precursors for topochemical synthesis of two-dimensional MBenes, which have been investigated for energy storage, electrocatalysis, sensing, and optoelectronic applications. This review traces the historical development of the MAB phase field, establishes an operational scope and classification framework for conventional MAB phases and related subfamilies, and describes the structural diversity arising from stoichiometry, crystal symmetry, boron-network topology, and chemical ordering. It surveys computational approaches for evaluating thermodynamic, dynamical, and mechanical stability and for predicting intrinsic properties, and critically examines experimental synthesis routes for powders, dense bulks, single crystals, thin films, coatings, and selected MBene derivatives. The review further evaluates mechanical, thermophysical, high-temperature, tribological, radiation-related, and functional properties with attention to sample state and measurement conditions. By connecting composition, structure, bonding, processing, and performance, this review identifies both the opportunities and the limitations that must be addressed before MAB phases and MBenes can be translated into practical applications.

Journal of Advanced Ceramics
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Openalex Percentile: Top 26%
MXene and MAX Phase Materials
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