Tuning the energetics and tailoring the optical properties of silver clusters confined in zeolites
Author(s) -
Oliver Fenwick,
Eduardo CoutiñoGonzález,
D. Grandjean,
Wouter Baekelant,
Fanny Richard,
Sara Bonacchi,
Dirk De Vos,
Peter Lievens,
Maarten B. J. Roeffaers,
Johan Hofkens,
Paolo Samorı́
Publication year - 2016
Publication title -
nature materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 14.344
H-Index - 483
eISSN - 1476-4660
pISSN - 1476-1122
DOI - 10.1038/nmat4652
Subject(s) - photoluminescence , cluster (spacecraft) , chemical physics , materials science , characterization (materials science) , nanotechnology , metal , zeolite , ionization , dielectric , quantum dot , optoelectronics , ion , chemistry , biochemistry , organic chemistry , computer science , metallurgy , programming language , catalysis
The integration of metal atoms and clusters in well-defined dielectric cavities is a powerful strategy to impart new properties to them that depend on the size and geometry of the confined space as well as on metal-host electrostatic interactions. Here, we unravel the dependence of the electronic properties of metal clusters on space confinement by studying the ionization potential of silver clusters embedded in four different zeolite environments over a range of silver concentrations. Extensive characterization reveals a strong influence of silver loading and host environment on the cluster ionization potential, which is also correlated to the cluster's optical and structural properties. Through fine-tuning of the zeolite host environment, we demonstrate photoluminescence quantum yields approaching unity. This work extends our understanding of structure-property relationships of small metal clusters and applies this understanding to develop highly photoluminescent materials with potential applications in optoelectronics and bioimaging.
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