Home » Study reveals profound impact of synthesis method on disordered materials

Study reveals profound impact of synthesis method on disordered materials

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Credit: Journal of the American Chemical Society (2024). DOI: 10.1021/jacs.4c05951

A new study has revealed for the first time how different synthesis methods can profoundly impact the structural and functional properties of high entropy oxides, a class of materials with applications in everyday electronic devices. The study is published this week in the Journal of the American Chemical Society.

“The specific material that we’ve studied here is a high entropy oxide with a spinel , which is a mixture of five different transition metal oxides. A lot of the excitement that we see around this class of materials is in terms of their electrochemical properties,” said Alannah Hallas, a materials scientist with the University of British Columbia’s Blusson Quantum Matter Institute and Department of Physics and Astronomy.

“The reason these high entropy systems are so promising from that point of view is because they have enormous chemical flexibility. While synthesizing these materials, we have many different knobs that we can turn, so there is kind of a limitless possibility in the ways we can construct them.”

The researchers prepared the identical samples using five different synthesis methods: , high pressure, hydrothermal, molten salt, and combustion syntheses. The methods involve different ways of heating the material, different speeds at which the material is cooled back down to room temperature, and different chemical conditions under which the heating can occur.

“Our results confirm that the synthesis method matters a great deal. We found that while the average structure is unaltered, the samples vary significantly in their local structures and their microstructures with the combustion synthesis resulting in the most homogeneous samples.”

The key difference between the synthesis methods is the driving mechanism that forms the material, said the lead author of the study, Mario Ulises González-Rivas, who has mastered the art of preparing the samples using the different methods during his time as a Ph.D. researcher in Hallas’ group.

Study reveals profound impact of synthesis method on disordered materials
Image (left to right). Credit: Mario Ulises González Rivas, Alannah Hallas, Janna Machts, Samikshya Sahu

In the solid-state method, are mixed and then heated, similar to baking a cake. The method adds external pressure during heating, which can influence how the material forms. The hydrothermal method mimics mineral formation in Earth’s core by heating metal salts in water inside a pressurized vessel, creating a flow that helps crystals grow.

The method uses melted metal salts, which form a thick liquid that, as it cools, allows crystals to precipitate. Lastly, the combustion method involves dissolving metal salts in water, forming a gel that ignites, rapidly producing the desired material through a quick combustion reaction.

“Some of these materials have great potential for use in addressing energy challenges. The technological implementation of these materials for energy systems is deeply affected by the kind of structural variations that we observe in this study,” González-Rivas said. “Our results effectively provide a new optimization axis to be considered when implementing these materials in an applied setting.”

The study is the result of a collaboration between Hallas’ team at UBC Blusson QMI, Robert Green, a UBC Blusson QMI Affiliate Investigator from the University of Saskatchewan, and Hidenori Takagi from the Max Planck Institute for Solid State Research.

More information:
Mario U. González-Rivas et al, Impact of Synthesis Method on the Structure and Function of High Entropy Oxides, Journal of the American Chemical Society (2024). DOI: 10.1021/jacs.4c05951

Citation:
Study reveals profound impact of synthesis method on disordered materials (2024, September 12)
retrieved 15 September 2024
from https://phys.org/news/2024-09-reveals-profound-impact-synthesis-method.html

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