With the development of miniaturized devices, there is an increasing demand for 2D multifunctional materials. Six ferroelastic semiconductors, Y 2 Se 2 XX′ (X, X′ = I, Br, Cl, or F; X ≠ X′) monolayers, are theoretically predicted here. Their inplane anisotropic band structure, elastic and piezoelectric properties can be switched by ferroelastic strain. Moderate energy barriers can prevent the undesired ferroelastic switching that minor interferences produce. These monolayers exhibit high carrier mobilities (up to 10 4 cm 2 V −1 s −1 ) with strong in-plane anisotropy. Furthermore, their wide bandgaps and high potential differences make them broad-pH-value and highperformance photocatalysts at pH value of 0−14. Strikingly, Y 2 Se 2 BrF possesses outstanding d 33 (d 33 = −405.97 pm/V), greatly outperforming CuInP 2 S 6 by 4.26 times. Overall, the nano Y 2 Se 2 BrF is a hopeful candidate for multifunctional devices to generate a direct current and achieve solar-free photocatalysis. This work provides a new paradigm for the design of multifunctional energy materials.