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Layer-by-Layer Interdigitated CuS/Au2S Heteronanoplates by Selectively Blocking the Pathway of Cation Exchange Reaction

Authors
Jo, SuinKim, TaekyungLee, Chi HoLee, EunsooJin, HaneulLee, Sang UckLee, KwangyeolBaik, HionsuckPark, Jongsik
Issue Date
Apr-2025
Publisher
American Chemical Society
Keywords
Copper; Cesium Alloys; Cesium Iodide; Copper; Crystal Atomic Structure; Ionization Of Gases; Layered Semiconductors; Negative Ions; Temperature; Blockings; Cation Exchange Reactions; Diffusion Pathways; Hetero-interfaces; Individual Components; Layer By Layer; Physicochemical Property; Postsynthetic Modification; Precise Control; Structural Feature; Diffusion; Copper; Copper Sulfide; Gold Derivative; Gold Monosulfide; Nanoplate; Unclassified Drug; Cation; Cupric Ion; Neuropeptide S; Article; Cation Exchange; Crystal Structure; Energy Dispersive X Ray Spectroscopy; Scanning Transmission Electron Microscopy; X Ray Diffraction; Article; Catalysis; Controlled Study; Diffusion; Physical Chemistry
Citation
Journal of the American Chemical Society, v.147, no.16, pp 13993 - 14003
Pages
11
Indexed
SCIE
SCOPUS
Journal Title
Journal of the American Chemical Society
Volume
147
Number
16
Start Page
13993
End Page
14003
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/58230
DOI
10.1021/jacs.5c03707
ISSN
0002-7863
1520-5126
Abstract
Cation exchange reactions (CERs), recognized as a promising postsynthetic modification strategy, have garnered significant interest for generating thermodynamically unfavorable structural features, such as heterointerfaces. The formation of these heterointerfaces, which exhibit physicochemical properties distinct from those of their individual components, relies on precise control over the diffusion pathways of externally introduced cations as they migrate from the surface into the crystal interior. However, achieving regiospecific modulation of cation diffusion to rationally design heterointerfaces remains a formidable challenge. Herein, we synthesized layer-by-layer interdigitated {CuS/Au2S}@IrS2 heteronanoplates (L-Au2S HNPs), in which Au2S and CuS are alternately stacked at the atomic scale, using Cu1.81S@IrS2 nanoplates (CSIS NPs) as a starting template. This distinct structural arrangement was realized through a two-step CER with Au cations and a phase transformation process from Cu2-x S to CuS. Experimental results indicate that S-S bonds within phase-converted CuS crystals act as diffusion barriers during subsequent CER, restricting the migration of Au cations into specific CuS layers. Furthermore, theoretical calculations suggest that the expansion of the anion sublattice within channels containing diffused Au cations induces compressive strain in adjacent CuS layers, thereby impeding further Au incorporation. Expanding this synthetic strategy to construct atomic-layer-level stacked heteronanostructures across a broader range of materials could unlock new opportunities for developing advanced materials with unprecedented optical and catalytic properties.
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