Twist degree of freedom activated by pressure-driven interlayer engineering in spiral WS2

Abstract Precise twist-angle control in van der Waals (vdW) moiré superlattices enables twistronic tuning of interfacial responses and emergent quantum states, but it remains unclear how atomic registry in three-dimensional stacks is linked to interlayer coupling and whether it can produce an internal twist degree of freedom without external torque. Here, we show that, via interlayer engineering, screw-dislocation-driven multilayer spiral WS 2 exhibits a reversible pressure-induced rotation of second-harmonic-generation polar pattern that saturates near 1 GPa, corresponding to an effective average interlayer twist of 0.2° per layer. This compression-twist coupling arises from moiré defined hierarchy of stacking energies and the associated atomic reconstruction, which together generate a spontaneous rotational torque at a slipped, metastable interface and couple the twist angle to the interlayer spacing. Our findings establish twist-degree-of-freedom manipulation in vdW crystals, opening pathways to reshape correlation-driven behaviors in moiré-of-moiré architectures and to explore chiral elasticity beyond Cauchy continuum mechanics.

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Publication Details

Journal
Nature Communications
Published
2026-09-16
DOI
https://doi.org/10.1038/s41467-026-77227-3
Primary Topic
2D Materials and Applications
Type
article
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Twist degree of freedom activated by pressure-driven interlayer engineering in spiral WS2

Zifeng Mai, Ping‐Heng Tan, Yoonsoo Rho, Muhua Sun et al.
Nature Communications
2D Materials and Applications
article

Twist degree of freedom activated by pressure-driven interlayer engineering in spiral WS2

Zifeng Mai, Ping‐Heng Tan, Yoonsoo Rho, Muhua Sun, Jiangbin Wu, Costas P. Grigoropoulos, Penghong Ci, Hao Hong, Yue‐Yang Liu, Junqiao Wu, Yabin Chen, Yuzhou Zhao, Kaiyao Xin, Zhongming Wei, Zhongjie Wang, Shanyu Liang
article en

Abstract

Abstract Precise twist-angle control in van der Waals (vdW) moiré superlattices enables twistronic tuning of interfacial responses and emergent quantum states, but it remains unclear how atomic registry in three-dimensional stacks is linked to interlayer coupling and whether it can produce an internal twist degree of freedom without external torque. Here, we show that, via interlayer engineering, screw-dislocation-driven multilayer spiral WS 2 exhibits a reversible pressure-induced rotation of second-harmonic-generation polar pattern that saturates near 1 GPa, corresponding to an effective average interlayer twist of 0.2° per layer. This compression-twist coupling arises from moiré defined hierarchy of stacking energies and the associated atomic reconstruction, which together generate a spontaneous rotational torque at a slipped, metastable interface and couple the twist angle to the interlayer spacing. Our findings establish twist-degree-of-freedom manipulation in vdW crystals, opening pathways to reshape correlation-driven behaviors in moiré-of-moiré architectures and to explore chiral elasticity beyond Cauchy continuum mechanics.

Nature Communications
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2D Materials and Applications
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