ArXiv TLDR

Chiral spin-textures in van der Waals heterostructures

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2604.21539

Nihad Abuawwad, Samir Lounis

cond-mat.mes-hallcond-mat.mtrl-sci

TLDR

This review explores chiral spin textures in van der Waals heterostructures, detailing their formation, manipulation, and spintronic potential.

Key contributions

  • Explores how van der Waals heterostructures enable the study and manipulation of chiral spin textures.
  • Summarizes fundamental mechanisms like Dzyaloshinskii-Moriya interaction and magnetic anisotropy.
  • Highlights experimental advances in observing, manipulating, and characterizing these textures.
  • Outlines challenges and future directions for robust, room-temperature spintronic applications.

Why it matters

Chiral spin textures like skyrmions are crucial for next-gen spintronic devices. Van der Waals heterostructures offer a unique platform to engineer and control these textures due to their tunable properties. This review provides a comprehensive overview, guiding future research toward practical room-temperature applications.

Original Abstract

Chiral spin textures such as skyrmions have attracted considerable attention due to their nontrivial topology, chirality, stability at the nanoscale, and potential for low-power spintronic devices. The recent discovery of intrinsic magnetism in van der Waals (vdW) materials and the ability to engineer their heterostructures has opened a new platform to study and manipulate such textures. In these layered systems, atomically sharp interfaces, strong spin-orbit coupling, and tunable symmetry breaking provide unique opportunities to stabilize and control chiral magnetic states. This review summarizes the fundamental mechanisms underlying the formation of chiral spin textures in vdW heterostructures, including the roles of exchange interactions, magnetic anisotropy, Dzyaloshinskii-Moriya interaction, and dipolar effects. We highlight key experimental advances in the observation and manipulation of chiral textures, discuss their dynamical properties and transport signatures, while overviewing selected theoretical investigations. Finally, we outline current challenges and future directions toward realizing robust, room-temperature chiral spin textures for practical spintronic technologies.

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