Cation Exchange Mediated Synthesis of Bright Au@ZnTe Core-Shell Nanocrystals
Cation Exchange Mediated Synthesis of Bright Au@ZnTe Core-Shell Nanocrystals
Abstract
The synthesis of heterostructured core-shell nanocrystals has attracted significant attention due to their wide range of applications in energy, medicine and environment. To further extend the possible nanostructures, non-epitaxial growth is introduced to form heterostructures with large lattice mismatches, which cannot be achieved by classical epitaxial growth techniques. Here, we report the synthetic procedure of Au@ZnTe core-shell nanostructures by cation exchange reaction for the first time. For that, bimetallic Au@Ag heterostructures were synthesized by using PDDA as stabilizer and shape-controller. Then, by addition of Te and Zn precursors in a step-wise reaction, the zinc and silver cation exchange was performed and Au@ZnTe nanocrystals were obtained. Structural and optical characterization confirmed the formation of the Au@ZnTe nanocrystals. The optimization of the synthesis led to the bright nanocrystals with a photoluminescence quantum yield up to 27%. The non-toxic, versatile synthetic route, and bright emission of the synthesized Au@ZnTe nanocrystals offer significant potential for future bio-imaging and optoelectronic applications.
Description
Sahin, Mehmet/0000-0002-9419-1711; Sadeghi, Sadra/0000-0002-8569-1626; Melikov, Rustamzhon/0000-0003-2214-7604
Keywords
Non-Epitaxial, Photoluminescence Quantum Yield, Au@Znte, Core-Shell, Nanocrystals, Core–shell, Core-shell, Nanoscience and nanotechnology, Physics, Non-epitaxial; Photoluminescence quantum yield; Au@ZnTe; Core-shell; Nanocrystals, non-epitaxial, Photoluminescence quantum yield, Materials science, Non-epitaxial, Nanocrystals, core-shell, nanocrystals, photoluminescence quantum yield, Au@ZnTe, Nanoscience and nanotechnology; Materials science, multidisciplinary; Physics, applied, multidisciplinary, applied
Fields of Science
02 engineering and technology, 01 natural sciences, 0104 chemical sciences, 0210 nano-technology
Citation
WoS Q
Scopus Q

OpenCitations Citation Count
2
Source
Volume
32
Issue
2
Start Page
025603
