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◆ Nature communications2026-08-07· Carbon nanotube

Electrical control of exchange bias in sub-10 nm regime enabled by single-nanotube patterning.

Hexin Li, Ke Zhang, Zhongxiang Zhang, Daming Zhou, Shiqi Wang, Yuxuan Yao, Ao Du, Daoqian Zhu, Zongxia Guo, Siyuan Cheng, Shiyang Lu, Kaili Jiang, Weisheng Zhao

原始摘要(英文原文)· Original abstract
Achieving stable magnetization in sub-10 nm ferromagnetic layers represents a fundamental bottleneck in spin-orbit torque magnetic random-access memory development. While exchange bias potentially offers stabilization at such scales through antiferromagnetic coupling, conventional lithography fundamentally limits nanoscale verification. Here, we introduce a lithography-free nanopatterning strategy exploiting individual carbon nanotubes as etching templates, enabling precise fabrication of exchange-biased heterostructures from tens of nanometers down to single-digit dimensions. In perpendicularly magnetized Pt/Co/IrMn stacks, we demonstrate robust exchange bias persistence even at sub-10 nm regimes and confirm effective spin-orbit torque switching through anomalous Hall effect measurements. Crucially, scaling reveals divergent switching mechanisms: Cobalt layers transition from multi-domain to abrupt single-domain reversal, while exchange bias switching maintains gradual characteristics consistent across sizes - indicating collective antiferromagnetic moment reorientation via exchange-spring dynamics. This work enables the physical patterning of sub-10 nm features for exchange bias stabilization, provides mechanistic insights into nanoscale magnetic switching, and establishes a viable pathway toward high-density spintronic memories.
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Electrical control of exchange bias in sub-10 nm regime enabled by single-nanotube patterning. — 科研速览 Science Skim