Template-Directed Stepwise Growth of WS2 on Sr2SnO4: Interfacial Electronic Engineering for High-Performance Sensing and Energy Storage

The development of multifunctional materials capable of supporting both electrochemical sensing and energy-storage applications is important for integrated wearable and self-powered electronic technologies. In this work, WS2/Sr2SnO4 heterostructures with tunable WS2 loading were synthesized through a stepwise growth strategy using layered Sr2SnO4 as a structural template. The resulting heterostructures exhibit intimate interfacial coupling and loading-dependent structural organization. Their electrochemical properties were evaluated for serotonin sensing and lithium-ion storage. The high-WS2-loading heterostructure showed enhanced serotonin sensing performance and improved reversible lithium-storage behavior compared with the pristine components. Density functional theory calculations revealed interfacial electronic coupling and charge redistribution in the WS2/Sr2SnO4 heterostructure, while Li adsorption introduced additional states near the Fermi level that facilitate charge transport. These results demonstrate the potential of oxide-templated WS2 heterostructures as multifunctional platforms for electrochemical sensing and energy storage.

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-17
DOI
https://doi.org/10.5281/zenodo.22813836
Primary Topic
2D Materials and Applications
Type
preprint
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preprint

Template-Directed Stepwise Growth of WS2 on Sr2SnO4: Interfacial Electronic Engineering for High-Performance Sensing and Energy Storage

Bahareh Khezri, Antonia Kagkoura, Anastasios Papavasileiou, Rubén Vázquez-Cárdenas et al.
Zenodo (CERN European Organization for Nuclear Research)
2D Materials and Applications
preprint

Template-Directed Stepwise Growth of WS2 on Sr2SnO4: Interfacial Electronic Engineering for High-Performance Sensing and Energy Storage

Bahareh Khezri, Antonia Kagkoura, Anastasios Papavasileiou, Rubén Vázquez-Cárdenas, Amutha Subramani, Bing Wu, Zdeněk Sofer, Jan Luxa
preprint en

Abstract

The development of multifunctional materials capable of supporting both electrochemical sensing and energy-storage applications is important for integrated wearable and self-powered electronic technologies. In this work, WS2/Sr2SnO4 heterostructures with tunable WS2 loading were synthesized through a stepwise growth strategy using layered Sr2SnO4 as a structural template. The resulting heterostructures exhibit intimate interfacial coupling and loading-dependent structural organization. Their electrochemical properties were evaluated for serotonin sensing and lithium-ion storage. The high-WS2-loading heterostructure showed enhanced serotonin sensing performance and improved reversible lithium-storage behavior compared with the pristine components. Density functional theory calculations revealed interfacial electronic coupling and charge redistribution in the WS2/Sr2SnO4 heterostructure, while Li adsorption introduced additional states near the Fermi level that facilitate charge transport. These results demonstrate the potential of oxide-templated WS2 heterostructures as multifunctional platforms for electrochemical sensing and energy storage.

Zenodo (CERN European Organization for Nuclear Research)
Institut Català d'Investigació Química (ES), University of Chemistry and Technology, Prague (CZ)
Affordable and clean energy
2D Materials and Applications
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Template-Directed Stepwise Growth of WS2 on Sr2SnO4: Interfacial Electronic Engineering for High-Performance Sensing and Energy Storage — Bahareh Khezri, Antonia Kagkoura, et al. · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS