Interlayer Stacking-Controlled Magnetism in Van der Waals Antiferromagnets.

Wang, Guopeng; Ma, Yupeng; Duan, Hengli; Hu, Rong; Tao, Yu; Yang, Shaohua; Zhong, Han; Wang, Jianlin et al. · ACS Nano · 2026

basic_science · Level V

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Abstract

Interlayer stacking in van der Waals (vdW) magnets offers a powerful route to tailor magnetic interactions and emergent functionalities. Here, we show that transitions from aperiodic AA/AB stacking to long-range periodic 6R order govern the coexistence and competition of ferromagnetic and antiferromagnetic ground states in room-temperature vdW antiferromagnets. Stacking-controlled interlayer coupling and symmetry breaking redefine the intrinsic origins of ferromagnetism. Atomically thin flakes with distinct stacking sequences exhibit unconventional magnetic behavior that is different from the established odd-even-layer effect in vdW antiferromagnets. Moreover, stacking-dependent magnetic competition reverses the sign of magnetoresistance (negative to positive). Importantly, all thin flakes maintain magnetic order above room temperature, with a <i>T</i><sub>C</sub> of ∼340 K observed in the monolayer flake. These findings establish stacking sequences as a deterministic handle for engineering magnetic and transport properties, enabling the design of high-temperature stacking-programmable spintronic devices.