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Overcoming the Damping–Elasticity Paradox via 3D-Printed NiTiSn Nanocomposite

  • Bo Feng
  • , Helong Liu
  • , Hui Shen
  • , Ying Yang
  • , Fangmin Guo
  • , Lishan Cui
  • , Yang Ren
  • , Jie Chen
  • , Shuke Huang
  • , Yao Xiao
  • , Zhihui Zhang
  • , Hongxiang Zong
  • , Yinong Liu
  • , Shijie Hao
  • China University of Petroleum - Beijing
  • Hohai University Changzhou
  • City University of Hong Kong
  • China Academy of Engineering Physics
  • Tongji University
  • Jilin University
  • University of Western Australia

Research output: Contribution to journalArticlepeer-review

6 Scopus citations

Abstract

Developing high damping alloys (HDAs) with large elastic strain has attracted growing attention due to the increasing demand for energy absorption with overload reliability and reusability. However, damping capacity inherently conflicts with elasticity, because the former requires a liable movement of crystal defects while the latter opposite. To deal with the damping-elasticity paradox, the advantage of pseudobinary eutectic reaction and rapid cooling of laser powder bed fusion is taken to fabricate a bulk NiTiSn nanocomposite with a two-level hierarchical structure. The first-level architecture is composed of martensitic NiTi nanolamellae and reinforced Ti3Sn nanolamellae. In addition to lattice strain matching and lamellar boundary strengthening, a novel mechanism of martensite reorientation mediated by reversible stress-induced detwinning-twinning is activated to generate large elastic strain. A high density of nanotwins and nanodomains within NiTi nanolamellae constitute the second-level architecture, which provides pronounced internal friction for high damping capacity. As a result, our NiTiSn nanocomposite exhibits a record-high integration of damping capacity (tanδ > 0.10) and elastic strain (exceeding 4.5%), as well as superb stability under cyclic overload. This research not only represents a major breakthrough in achieving HDAs with outstanding damping and elastic strain but also offers a novel paradigm for high-performance functional and structural materials.

Original languageEnglish
Article numbere06410
JournalAdvanced Science
Volume12
Issue number33
DOIs
StatePublished - 4 Sep 2025

Keywords

  • 3D printing
  • damping-elasticity paradox
  • nanocomposites
  • reversible detwinning-twinning
  • shape memory alloys

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