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Subsuming the metal seed to transform binary metal chalcogenide nanocrystals into multinary compositions

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Direct colloidal synthesis of multinary metal chalcogenide nanocrystals typically develops dynamically from the binary metal chalcogenide nanocrystals with the subsequent incorporation of additional metal cations from solution during the growth process. Metal seeding of binary and multinary chalcogenides is also established, although the seed is solely a catalyst for nanocrystal nucleation and the metal from the seed has never been exploited as active alloying nuclei. Here we form colloidal Cu–Bi–Zn–S nanorods (NRs) from Bi-seeded Cu2–xS heterostructures. The evolution of these homogeneously alloyed NRs is driven by the dissolution of the Bi-rich seed and recrystallization of the Cu-rich stem into a transitional segment, followed by the incorporation of Zn2+ to form the quaternary Cu–Bi–Zn–S composition. The present study also reveals that the variation of Zn concentration in the NRs modulates the aspect ratio and affects the nature of the majority charge carriers. The NRs exhibit promising thermoelectric properties with very low thermal conductivity values of 0.45 and 0.65 W/mK at 775 and 605 K, respectively, for Zn-poor and Zn-rich NRs. This study highlights the potential of metal seed alloying as a direct growth route to achieving homogeneously alloyed NRs compositions that are not possible by conventional direct methods or by postsynthetic transformations.

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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NEILLSBAT - Nanostructured Electrodes and Ionic Liquid Electrolytes for Ultra High Energy Density Lithium Sulfur Batteries

Science Foundation Ireland

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Silicon Alloying Anodes for High Energy Density Batteries comprising Lithium Rich Cathodes and Safe Ionic Liquid based Electrolytes for Enhanced High VoltagE Performance.

European Commission

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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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Dynamic Atomic Interface Characterisation for Improved Performance of Electrical and Magnetic Devices

Science Foundation Ireland

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Nanoscale Advanced Materials Engineering

Engineering and Physical Sciences Research Council

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AMBER Phase 2

Science Foundation Ireland

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History

Publication

ACS Nano 2022 16 (6), 8917-8927

Publisher

Ameircan Chemical Society

Other Funding information

N.K. acknowledges funding from Irish Research Council (IRC) under Grant No. IRCLA/2017/285. K.M.R. acknowledges Science Foundation Ireland (SFI) under the Principal Investigator Program under Contract No. 16/IA/4629 and under Grant No. SFI 16/M-ERA/3419 and European Union’s Horizon 2020 Research and Innovation Program under Grant Agreement No. 814464 (Si-DRIVE project). K.M.R. further acknowledges Grant No. IRCLA/2017/285 and SFI Research Centers MaREI, AMBER, and CONFIRM Grant Nos. 12/RC/2278_P2, 12/RC/2302_P2, and 16/RC/3918. M.C. acknowledges funding from the SFI Industry Fellowship (Grant No. 18/IF/6282), EPSRC NAME Programme Grant EP/V001914/1, and Royal Society Tata University Research Fellowship (URF\R1\201318). We thank Karrina McNamara and Fathima Laffire for XPS and Bridget Hogan for ICP-OES measurements.

Department or School

  • Chemical Sciences
  • Physics

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