Ligand-assisted colloidal synthesis of alkali metal-based ternary chalcogenide: nanostructuring and phase control in Na−Cu−S system
The development of sustainable and tunable materials is crucial for advancing modern technologies. We present a controlled synthesis of colloidal Na–Cu–S nanostructures. To overcome the reactivity difference between Na and Cu precursors toward chalcogens in a colloidal synthesis and to achieve metastable phase formation, we designed a single-source precursor for Cu and S. The decomposition of this precursor creates a Cu–S template into which Na ions diffuse to form metastable Na–Cu–S. By leveraging the reactivity of sulfur precursors, we synthesized Na3Cu4S4 (orthorhombic) and Na2Cu4S3 (monoclinic) nanocrystals with distinct properties. A mechanistic investigation reveals a predictive pathway previously unobserved in alkali-metal-based ternary chalcogenide systems. Further, computational DFT calculations demonstrate that Na3Cu4S4 exhibits metallic characteristics while Na2Cu4S3 is semiconducting, with an optimal band gap for photovoltaic applications. This research advances our understanding of ternary chalcogenide systems and establishes a framework for the rational design of complex nanomaterials.
Funding
EPSRC and SFI Centre for Doctoral Training in the Advanced Characterisation of Materials (CDT-ACM)
Engineering and Physical Sciences Research Council
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Publication
Nano Letters, 2025, 25 (12), pp. 4652-4658Publisher
American Chemical SocietyOther Funding information
This publication has emanated from research conducted with the financial support of Taighde Éireann − Research Ireland under Grant number 22/FFP-P/11591. H.M. acknowledges funding from the Research Ireland research centre MaREI. A.N. acknowledges the EPSRC and SFI Centre for Doctoral Training in Advanced Characterisation of Materials (EP/S023259/1) for funding a Ph.D. studentship. S.S. acknowledges IRC for funding (IRC Project ID GOIPD/2023/1094). The authors acknowledge the use of the UCL Kathleen and UCL Myriad High-Performance Computing Facility and the Baskerville Tier 2 HPC service.Also affiliated with
- Bernal Institute
External identifier
Department or School
- Chemical Sciences