Issue 45, 2025

Flux growth of high entropy layered perovskite-type oxysulfide Gd2/3Y1/3Sm1/3Tb1/3Ho1/3Ti2O5S2 single crystals

Abstract

High-entropy materials represent a new class of materials that exhibit high configurational entropies and ensure the stabilisation of multiple component elements, while also exhibiting unique physical properties that permit their broad applications in fields such as energy storage, energy conversion, and catalysis. In this study, the flux growth of high-entropy layered perovskite-type oxysulfide (RE2Ti2O5S2, RE = rare-earth element) single crystals from a LiCl–CaCl2 flux was performed for the preparation of novel hydrogen evolution photocatalysts. Initially, different combinations of rare-earth elements were investigated for substitution into the catalyst system. Subsequently, the effect of the configurational entropy was examined, and platy Gd2−4xYxSmxTbxHoxTi2O5S2 (x = 0.10–0.33) single crystals (∼1 μm size) were prepared. Transmission electron microscopy combined with energy-dispersive X-ray spectroscopy indicated that the elements were uniformly distributed within the crystals. Moreover, ultraviolet–visible spectroscopy showed that the incorporation of a high-entropy component appeared to have little effect on the electronic structure of Gd2−4xYxSmxTbxHoxTi2O5S2 (x = 0.10–0.33). This is the first report of a high-entropy layered perovskite-type oxysulfide single crystal where Sconfig = 1.5–1.6R. Overall, this study presents a new approach for the design of photocatalysts that are applicable to the energy and environmental fields.

Graphical abstract: Flux growth of high entropy layered perovskite-type oxysulfide Gd2/3Y1/3Sm1/3Tb1/3Ho1/3Ti2O5S2 single crystals

Supplementary files

Article information

Article type
Paper
Submitted
20 Jun 2025
Accepted
16 Oct 2025
First published
17 Oct 2025

CrystEngComm, 2025,27, 7312-7319

Flux growth of high entropy layered perovskite-type oxysulfide Gd2/3Y1/3Sm1/3Tb1/3Ho1/3Ti2O5S2 single crystals

F. Hayashi, H. Sugiyama, Y. Yokotsuka, M. Nagasako, H. Morito, T. Yamada and K. Teshima, CrystEngComm, 2025, 27, 7312 DOI: 10.1039/D5CE00631G

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