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Published on: June 23, 2023
Competitive Cation Exchange and Etching Processes in Metal Sulfide Nanoparticles from Anion/Ligand Cooperativity and
Joseph M Veglak1, Nicholos A Benson1, Raymond E Schaak1,2,3
1Department of Chemistry, The Pennsylvania State University, University Park, Pennsylvania 16802, United States.
Abstract:
Cation exchange reactions enable the construction of sophisticated multimaterial architectures within nanoparticles, with certain regions capable of being etched to create void spaces and sculpted morphologies. However, the chemical reactivity that leads to etching often remains unknown and therefore uncontrollable, making it an undesirable side reaction rather than a reaction that can be harnessed for nanostructure design. Here, we report the discovery that spectator anions and exogenous cations that are assumed to be innocent during nanoparticle cation exchange reactions instead drive an etching process that is competitive with exchange. Attempts to exchange some of the Cu+ cations in roxbyite Cu1.8S nanorods with Ga3+ using GaCl3 proceed as expected, but when the same reaction is applied to heterostructured ZnS-Cu1.8S, CdS-Cu1.8S, and CuInS2-Cu1.8S nanorods, Ga3+ exchange does not occur, but instead the Cu1.8S regions are etched. Through a comprehensive series of experiments, we identified three reaction components that work cooperatively to favor etching over exchange: Cl- anions from GaCl3 or another chloride salt, trioctylphosphine that is present to help drive the cation exchange reaction, and the presence of exchangeable metal cations in solution that can originate from the non-Cu1.8S regions of the heterostructured nanorods. These insights reveal that nanoparticle cation exchange and etching exist on a continuum and that these competitive processes can be harnessed to control and tune nanostructural features.
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