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Leveraging Atomic Disorder to Modulate Hydrogen Storage Thermodynamics in Intermetallics

  • Yuanyuan Shang
  • , Ting Chen
  • , Zhifeng Lei*
  • , Archa Santhosh
  • , Paul Jerabek
  • , Benjamin Klusemann
  • , Zhaoping Lu*
  • , Thomas Klassen
  • , Claudio Pistidda*
  • *Korrespondierende/r Autor/-in für diese Arbeit

Publikation: Beiträge in ZeitschriftenZeitschriftenaufsätzeForschungBegutachtung

1 Zitat (Scopus)

Abstract

Hydrogen storage in metal hydrides holds great promise for advancing a low-carbon energy future. Yet, fine-tuning the thermodynamics of hydrogen absorption remains challenging with traditional microalloying approaches. Here, we report a strategy inspired by compositionally complex alloy design to introduce atomic disorder into the prototypical TiFe intermetallic system. By progressively substituting Fe with Co, Ni, Cu, and Mn in equal proportions, we synthesize a series of near-single-phase B2-structured compositionally complex intermetallics, that is, Ti50(FeCo)50, Ti50(FeCoNi)50, Ti50(FeCoNiCu)50, and Ti50(FeCoNiCuMn)50 (at.%). These materials exhibit hydrogen storage capacities (measured by pressure-composition isotherm, PCI) of 1.39, 1.42, 1.31, and 1.14 wt.% under 100 bar of H2 at 50°C, respectively. Notably, Ti50(FeCo)50 demonstrates rapid hydrogen uptake kinetics, achieving 90% of its full capacity within 77 s under 50 bar of hydrogen pressure at 50°C. Hydrogen storage thermodynamic analyses reveal that increasing atomic disorder stabilizes the hydride phase, with thermodynamic stability following the order: Ti50(FeCoNiCuMn)50 > Ti50(FeCoNi)50 > Ti50(FeCoNiCu)50 > Ti50(FeCo)50. Our findings establish atomic disorder as a versatile thermodynamic tuning knob for intermetallic hydrides, offering a rational framework for the design of advanced hydrogen storage materials.

OriginalspracheEnglisch
ZeitschriftInterdisciplinary Materials
Jahrgang5
Ausgabenummer1
Seiten (von - bis)167-179
Seitenumfang13
ISSN2767-4401
DOIs
PublikationsstatusErschienen - 01.2026

Bibliographische Notiz

Publisher Copyright:
© 2026 The Author(s). Interdisciplinary Materials published by Wuhan University of Technology and John Wiley & Sons Australia, Ltd.

Fachgebiete und Schlagwörter

  • Ingenieurwissenschaften

ASJC Scopus Sachgebiete

  • Allgemeine Materialwissenschaften
  • Werkstoffwissenschaften (insg.)

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