Uniform Ag nanocubes are reproducibly synthesized by a AgCl particle-mediated heterogeneous nucleation and disassembly process in polyol chemistry. By introducing N,N-dimethylformamide (DMF) in a conventional polyol method with HCl etchant, Ag nanocrystals (NCs) begin to be nucleated on the surface of AgCl-precipitated particles due to the promoted reduction reaction by DMF. The nucleated Ag NCs on the AgCl particles are grown to Ag nanocubes in shape by consuming Ag sources from the AgCl mother particles. Eventually the grown Ag nanocubes are disassembled from the mother AgCl particles because the AgCl particles are fully digested by the growing Ag nanocubes. Density functional theory calculation confirms that the Ag atoms can be favorably deposited on the (100) facet of AgCl particles and the Ag nuclei on the AgCl particles tend to reveal (100) facet.

Download full-text PDF

Source
http://dx.doi.org/10.1002/smll.201904031DOI Listing

Publication Analysis

Top Keywords

agcl particles
20
uniform nanocubes
8
agcl
8
agcl particle-mediated
8
particle-mediated heterogeneous
8
heterogeneous nucleation
8
nucleation disassembly
8
grown nanocubes
8
100 facet
8
particles
7

Similar Publications

One of the most promising approaches in solving the energy crisis and reducing atmospheric CO emissions is artificial photosynthetic CO reduction. The electrochemical method for CO reduction is more appealing since it can be operated under ambient conditions, and the product selectivity strongly depends on the applied potential. Perovskites with ferroelectric properties strongly adsorb linear CO molecules.

View Article and Find Full Text PDF

Bioelectrochemical anaerobic ammonium oxidation (anammox) systems allow eco-friendly removal of nitrogen from reject wastewater coming from biogas processing as the anammox bacteria have previously shown to have c-type cytochromes acting in the extracellular electron transport (EET) mechanism between the bacteria and electrode. The anammoxosome compartment present in anammox bacteria features a highly curved membrane and contains tubular structures along with electron-dense particles that contain iron, which could enhance the process of EET and enhance nitrogen removal by properly applied potentials. In this study, nitrogen removal was investigated in the electrostimulated anammox nitrogen removal (EANR) cells operated comparatively at open circuit and at applied potentials of - 300 mV, - 500 mV, and - 700 mV vs.

View Article and Find Full Text PDF

Metabolomics Analysis for Unveiling the Toxicological Mechanism of Silver Nanoparticles Using an Gastrointestinal Digestion Model.

ACS Nanosci Au

October 2024

State Key Laboratory of Environmental Chemistry and Ecotoxicology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China.

Article Synopsis
  • * A simulated digestion model was used to study how the physicochemical properties of AgNPs change during digestion and to explore their toxic effects on intestinal cells through metabolomics analysis.
  • * Results indicate that conditions in the GIT, including acidity and the presence of digestive enzymes, can enhance Ag uptake by gut cells, leading to oxidative stress and potential cell damage, with implications for understanding the health risks associated with AgNPs.
View Article and Find Full Text PDF

This study demonstrates the synthesis of 1D surface vertically aligned nanorods of ZnO on the fluorine-doped tin oxide-coated glass substrate (ZnO-VANRs/FTOs) synthesized via a chemical route for the targeted electrochemical sensing of aniline. The ZnO-VANRs/FTOs were 1.57 ± 0.

View Article and Find Full Text PDF

The strong fluorescence of green tea was quenched with Fe because of ligand-to-metal charge transfer and subsequent formation of magnetite (FeO) nanoparticles (heavy metal effect). Ag restored the lost fluorescence by confining iron particles (capped with Cl) with the formation of AgCl. Thus, toxic Ag was sensed in the aqueous system with a linear detection range of 10 M to 10 M and a detection limit of 4.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!