Characterisation, degradation and regeneration of luminescent Ag clusters in solution.

Nanoscale

Condensed Matter & Interfaces, Debye Institute for Nanomaterials Science, Universiteit Utrecht, Princetonplein 5, 3584 CC Utrecht, The Netherlands.

Published: December 2016


Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

Luminescent Ag clusters are prepared with lipoic acid (LA) as the ligand. Using a combination of mass spectrometry, optical spectroscopy and analytical ultracentrifugation, the clusters are found to be highly monodisperse with mass 5.6 kDa. We assign the chemical composition [Ag(LA)] to the clusters, where LA likely binds in a bidentate fashion. The Ag clusters show slow degradation, retaining their deep red emission for at least 18 months if stored in the dark. Purification or exposure to light results in faster degradation. No other cluster species are observed during the degradation process. Once degraded, the clusters could easily be regenerated using NaBH, which is not usually observed for thiolate-capped Ag clusters.

Download full-text PDF

Source
http://dx.doi.org/10.1039/c6nr04958cDOI Listing

Publication Analysis

Top Keywords

luminescent clusters
8
clusters
7
characterisation degradation
4
degradation regeneration
4
regeneration luminescent
4
clusters solution
4
solution luminescent
4
clusters prepared
4
prepared lipoic
4
lipoic acid
4

Similar Publications

Biopreservation is a microbiome engineering technology based on the use of microorganisms as protective cultures and/or their metabolites, which can be used to mitigate the presence of pathogens in food. This study explores the potential of ecological niche modeling to guide the selection of biopreservation candidates. A luminescent strain of Listeria monocytogenes was utilized in a multivariate high-throughput competition assay, assessing a combination of abiotic factors (i.

View Article and Find Full Text PDF

Sm/Cd-CPs with Dual-Core Clusters as High-Performance Multifunctional Fluorescence Sensors for Real-Time Detection of Fe, CrO, Nitrobenzene in Water.

Langmuir

August 2025

Department of Chemistry and Chemical Engineering, Laboratory of New Energy & New Function Materials, Shaanxi Key Laboratory of Chemical Reaction Engineering, Yan'an University, Shaanxi 716000, China.

In light of the escalating water pollution problem, there is an urgent need to construct novel sensing materials capable of swift and real-time detection of pollutants. Coordination polymers (CPs) are widely used in the field of fluorescence sensing due to their special and novel structural characteristics. Here, the ligands 5-[(4-pyridyl)methoxy]isophthalic acid (HPLIA) and 4,4-bis(imidazolyl)biphenyl (BIBP) with high symmetry are employed as precursors to synthesize luminescent CPs [Sm(PLIA)(HO)] (CP1) and [Cd(PLIA)(BIBP)(HO)] (CP2) under solvothermal conditions.

View Article and Find Full Text PDF

Electron Density-Dependent Mallory Photocyclization Constructs Rigid Saddle-Shaped Polycyclic Aromatic Hydrocarbons with Enhanced Aromaticity.

Chemistry

August 2025

Key Laboratory of Cluster Science, Beijing Key Laboratory of Photoelectronic/Electrophotonic Conversion Materials, School of Chemistry and Chemical Engineering, Beijing Institute of Technology, Ministry of Education of China, Beijing, 102488, P. R. China.

This study reports the synthesis of three saddle-shaped polycyclic aromatic hydrocarbons (PAHs)-bFT-C, bFP-C, and bFP2-C-via Mallory photocyclization of bisfluorenylidene-dihydroacene precursors. The reaction achieved high yields (77-88%) under UV irradiation, with structural characterization confirming enhanced aromaticity and rigid frameworks in the cyclized products. Kinetic studies revealed that anthracene-containing bFP2 exhibited the fastest reaction rate, which we attribute to its elevated electron density.

View Article and Find Full Text PDF

Giant 3d-4f Heterometallic Polyoxoniobates of {NaZnLnNb}, {ZnEuNb}, and {ZnLnNb} with Photonic Barcodes.

Small

August 2025

Fujian Provincial Key Laboratory of Advanced Inorganic Oxygenated-Materials, College of Chemistry, Fuzhou University, Fuzhou, 350108, China.

The integration of the rich electronic properties of 3d-4f heterometallic clusters with rigid and diamagnetic polyoxometalates is of great interest and is expected to yield novel materials with enhanced properties due to synergistic effects. For the first time, the study succeeds in introducing fluorescent Zn-Ln heterometallic clusters into polyoxoniobates (PONbs), forming a family of rare giant heterometallic PONbs with various architectures, including 78-metal {ZnEuNb}, 112-metal {ZnLnNb} (Ln = La, Y), and 165-metal {NaZnLnNb} (Ln = Pr, Nd, Sm, Eu, Gd, Tb, Dy, Ho). These heterometallic PONbs exhibit many appealing structural features and unique building blocks.

View Article and Find Full Text PDF

The integration of luminescent materials with plasmonic nanomaterials holds the potential to give rise to innovative analytical and sensing applications. In this study, novel nano-scaled luminescent Hf-MOF (Hf-nanoMOF) was prepared by the modulator-induced defect approach. Acetate was used as a modulator to preferentially coordinate with metal centers, which inhibited the formation of coordination bond between the metal clusters and 2-aminobenzene-1,4-dicarboxylic acid and limited the Ostwald ripening effect.

View Article and Find Full Text PDF