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Colloidal synthesis of the mixed ionic–electronic conducting NaSbS2 nanocrystals

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Solution-based synthesis of mixed ionic and electronic conductors (MIECs) has enabled the development of novel inorganic materials with implications for a wide range of energy storage applications. However, many technologically relevant MIECs contain toxic elements (Pb) or are prepared by using traditional high-temperature solid-state synthesis. Here, we provide a simple, low-temperature and size-tunable (50–90 nm) colloidal hot injection approach for the synthesis of NaSbS2 based MIECs using widely available and non-toxic precursors. Key synthetic parameters (cationic precursor, reaction temperature, and ligand) are examined to regulate the shape and size of the NaSbS2 nanocrystals (NCs). FTIR studies revealed that ligands with carboxylate functionality are coordinated to the surface of the synthesized NaSbS2 NCs. The synthesized NaSbS2 nanocrystals have electronic and ionic conductivities of 3.31 × 10−10 (e−) and 1.9 × 10−5 (Na+) S cm−1 respectively, which are competitive with the ionic and electrical conductivities of perovskite materials generated by solid-state reactions. This research gives a mechanistic understanding and post-synthetic evaluation of parameters influencing the formation of sodium antimony chalcogenides materials.

Funding

Multinary Compound Si, Ge and Sn Derived Nanocrystals: Composition, Shape and Heterostructure Control via Solution Methods (NanoIVCrystals)

Science Foundation Ireland

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AMBER_Phase 2

Science Foundation Ireland

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MAREI_Phase 2

Science Foundation Ireland

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Confirm Centre for Smart Manufacturing

Science Foundation Ireland

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Selective Delayering of Low-geometry Materials by Plasma FIB Dx Chemistry for the Failure Analysis of Magnetic Sensors

Science Foundation Ireland

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Novel porous graphite as cathodes for advanced aluminium-ion batteries

European Commission

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History

Publication

Nanoscale Horizons

Publisher

Royal Society of Chemistry

Other Funding information

IRCLA/2017/285

Also affiliated with

  • Bernal Institute

Department or School

  • Chemical Sciences

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    University of Limerick

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