Issue 10, 2024

Thermodynamic characterisation and application of the ZrNi–H metal hydride system in the low-pressure regime

Abstract

The metal hydride system ZrNi–H is examined in this work, focusing on its thermodynamic properties at very low pressures and its viability for vacuum applications, such as hydrogen sorption pump for thermal switch components. A substantial literature study on existing equilibrium data below ambient pressure reveals a highly scattered picture of the equilibrium data. Particularly under vacuum conditions, conventional volumetric characterisation methods reach their limits in determining pressure–composition–temperature curves. To overcome these limitations, a generic temperature-driven & isochoric pcT characterisation method has been developed and is successfully employed. Thus, high-precision equilibrium data of ZrNi–H below 150 °C respectively 10 mbar are obtained. Thermodynamic properties for desorption and absorption derived from the experimental results as well as the corresponding Van't Hoff diagram within the investigated pressure range are provided. The scattering width of the absorption/desorption equilibrium lines as well as the hysteresis can be considerably reduced, and the existing database supplemented with reliable and accurate thermodynamic data of the ZrNi–H system. However, challenges emerge when evaluating the material's technical applicability in a thermally operated reactor. Observations from the measurements indicate slowing reaction kinetics at low capacity and degradation due to cyclic thermal loads.

Graphical abstract: Thermodynamic characterisation and application of the ZrNi–H metal hydride system in the low-pressure regime

Supplementary files

Article information

Article type
Paper
Submitted
31 Oct 2023
Accepted
05 Feb 2024
First published
13 Feb 2024

J. Mater. Chem. A, 2024,12, 6075-6086

Thermodynamic characterisation and application of the ZrNi–H metal hydride system in the low-pressure regime

J. Felbinger, J. Haverich, I. Bürger and M. Linder, J. Mater. Chem. A, 2024, 12, 6075 DOI: 10.1039/D3TA06667C

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