Yixuan Che, Yuhang Guo, Haifeng Lv, Xiaojun Wu, Jinlong Yang
Altermagnetism, characterized by momentum-dependent spin polarization in collinear antiparallel spins with vanishing net magnetization, represents a distinct magnetic phase beyond conventional ferromagnetic and antiferromagnetic classifications. This phenomenon arises from unique spin group symmetries that decouple spin and spatial degrees of freedom, enabling nonrelativistic spin-split electronic bands. Integrating this phenomenon with multiferroicity in two-dimensional (2D) materials offers unprecedented opportunities for quantum state manipulation. However, a unified theoretical framework for such multifunctional materials remains underdeveloped. Here, we establish a symmetry-driven framework identifying four point group species ( 1 4̅ 2 2 2 m F 2 m 2 m 1 2, 2 4̅ 1 2 2 m F 2 m 2 m 1 2, 2 4̅F 2 2, and 2 2 2 2 1 2F 2 2) that can simultaneously host altermagnetism, ferroelasticity, and out-of-plane ferroelectricity, termed altriferroicity. First-principles calculations further validate this framework in Fe 2 WS 2 Se 2 and half-fluorinated Cr-based metal–organic frameworks, revealing robust spin–lattice–charge coupling. Our work establishes symmetry-guided design as a powerful approach for unlocking emergent quantum phenomena in 2D materials for spintronic and valleytronic applications.