Optimizing Millisecond Time Scale Near-Infrared Emission in Polynuclear Chrome(III)-Lanthanide(III) Complexes
- Authors
- Aboshyan-Sorgho, Lilit; Nozary, Homayoun; Aebischer, Annina; Buenzli, Jean-Claude G.; Morgantini, Pierre-Yves; Kittilstved, Kevin R.; Hauser, Andreas; Eliseeva, Svetlana V.; Petoud, Stephane; Piguet, Claude
- Issue Date
- 1-8월-2012
- Publisher
- AMER CHEMICAL SOC
- Citation
- JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, v.134, no.30, pp.12675 - 12684
- Indexed
- SCIE
SCOPUS
- Journal Title
- JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
- Volume
- 134
- Number
- 30
- Start Page
- 12675
- End Page
- 12684
- URI
- https://scholar.korea.ac.kr/handle/2021.sw.korea/107734
- DOI
- 10.1021/ja304009b
- ISSN
- 0002-7863
- Abstract
- This work illustrates a simple approach for optimizing long-lived near-infrared lanthanide-centered luminescence using trivalent chromium chromophores as sensitizers. Reactions of the segmental ligand L2 with stoichiometric amounts of M(CF3SO3)(2) (M = Cr, Zn) and Ln(CF3SO3)(3) (Ln = Nd, Er, Yb) under aerobic conditions quantitatively yield the D-3-symmetrical trinuclear [MLnM(L2)(3)](CF3SO3)(n) complexes (M = Zn, n = 7; M = Cr, n = 9), in which the central lanthanide activator is sandwiched between the two transition metal cations. Visible or NIR irradiation of the peripheral Cr(III) chromophores in [CrLnCr(L2)(3)](9+) induces rate-limiting intramolecular intermetallic Cr -> Ln energy transfer processes (Ln = Nd, Er, Yb), which eventually produces lanthanide-centered near-infrared (NIR) or IR emission with apparent lifetimes within the millisecond range. As compared to the parent dinuclear complexes [CrLn(L1)(3)](6+), the connection of a second strong-field [CrN6] sensitizer in [CrLnCr(L2)(3)](9+) significantly enhances the emission intensity without perturbing the kinetic regime. This work opens novel exciting photophysical perspectives via the buildup of non-negligible population densities for the long-lived doubly excited state [Cr*LnCr*(L2)(3)](9+) under reasonable pumping powers.
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Collections - Graduate School > Department of Material Chemistry > 1. Journal Articles
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