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February 2, 2026Small0 citations

Flexible Spin Orientation Optimized Lower‐Density Zero Thermal Expansion in the Sc‐Based Kagome Magnets

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HZHaowei ZhouYSYu SunYCYili Cao

Key Points

  • The aim is to develop lightweight metallic components with zero thermal expansion using scandium-based kagome magnets.
  • Controlled design of interplanar magnetic order
  • Optimization of Sc-Ti-Fe ternary composition
  • Use of scanning transmission electron microscopy and neutron powder diffraction
  • Application of Mössbauer spectroscopy and theoretical calculations
  • Achieved zero thermal expansion behavior up to room temperature (αl = +0.18 × 10 −6 K −1)
  • Demonstrated low density of 6.56 g/cm³
  • Identified strong in-plane ferromagnetic order suppressing spin reorientation
  • Observed decreased local magnetic moments at specific Fe sites over a wide temperature range

Abstract

ABSTRACT A variety of lightweight, high‐precision engineering approaches are urgently required to decrease the density of metallic components exhibiting zero thermal expansion (ZTE). Scandium, the lightest rare‐earth element, plays a unique role in the emergent quantum orders of Kagome metals. Here, we report the controlled design of interplanar magnetic order and thermal expansion in a family of Kagome (Sc,Ti)Fe 2 compounds. Optimizing the Sc‐Ti‐Fe ternary composition enables ZTE behavior up to room temperature ( α l = +0.18 × 10 −6 K −1 , 112–300 K) in Sc 0.4 Ti 0.6 Fe 2.4 , together with a relatively low density of 6.56 g/cm 3 , which is much smaller than that of the documented ZTE alloys. Scanning transmission electron microscopy, Mössbauer spectroscopy, neutron powder diffraction, and theoretical calculations reveal that the extra positive magnetic exchange interactions of antisite Fe stabilize strong in‐plane ferromagnetic order and suppresses spin reorientation from in‐plane to out‐of‐plane upon heating. Local magnetic moments of Fe(2 a) and Fe(6 h) sites decrease successively over a wider temperature range, thus yielding such ZTE performance. The nearly isotropic ZTE of the ingot indicates its practical potential for advanced functional applications.

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Cite This Study

Zhou et al. (2026) studied this question.

synapsesocial.com/papers/6980fd81c1c9540dea80f3dbhttps://doi.org/10.1002/smll.202512209
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