Manipulating fluorescence by photo-switched spin-state conversions in an iron()-based SCO-MOF
Manipulating fluorescence by photo-switched spin-state conversions is an attractive prospect for applications in smart magneto-optical materials and devices. The challenge is how to modulate the energy transfer paths of the singlet excited state by light-induced spin-state conversions. In this work,...
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Veröffentlicht in: | Chemical science (Cambridge) 2023-06, Vol.14 (25), p.6936-6942 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Manipulating fluorescence by photo-switched spin-state conversions is an attractive prospect for applications in smart magneto-optical materials and devices. The challenge is how to modulate the energy transfer paths of the singlet excited state by light-induced spin-state conversions. In this work, a spin crossover (SCO) Fe
II
-based fluorophore was embedded into a metal-organic framework (MOF) to tune the energy transfer paths. Compound
1
{Fe(TPA-diPy)[Ag(CN)
2
]
2
}·2EtOH (
1
) has an interpenetrated Hofmann-type structure, wherein the Fe
II
ion is coordinated by a bidentate fluorophore ligand (TPA-diPy) and four cyanide nitrogen atoms and acts as the fluorescent-SCO unit. Magnetic susceptibility measurements revealed that
1
underwent an incomplete and gradual spin crossover with
T
1/2
= 161 K. Photomagnetic studies confirmed photo-induced spin state conversions between the low-spin (LS) and high-spin (HS) states, where the irradiation of 532 and 808 nm laser lights converted the LS and HS states to the HS and LS states, respectively. Variable-temperature fluorescence spectra study revealed an anomalous decrease in emission intensity upon the HS → LS transition, confirming the synergetic coupling between the fluorophore and SCO units. Alternating irradiation of 532 and 808 nm laser lights resulted in reversible fluorescence intensity changes, confirming spin state-controlled fluorescence in the SCO-MOF. Photo-monitored structural analyses and UV-vis spectroscopic studies demonstrated that the photo-induced spin state conversions changed energy transfer paths from the TPA fluorophore to the metal-centered charge transfer bands, ultimately leading to the switching of fluorescence intensities. This work represents a new prototype compound showing bidirectional photo-switched fluorescence by manipulating the spin states of iron(
ii
).
A new 3D Hofmann-type SCO-MOF, is synthesized. It exhibits synergetic fluorescence and SCO properties. Reversible modulation of its fluorescence and magnetism is achieved through photoinduced spin transition upon 532 and 808 nm irradiations. |
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ISSN: | 2041-6520 2041-6539 |
DOI: | 10.1039/d3sc01217d |