The association of lanthanide ions and paracyclophane derivatives has been very scarcely reported in the literature. In this study, elaboration of five coordination lanthanide complexes involving the 1,4(1,4)-dibenzenacyclohexaphane-1,4-diylbis(diphenylphosphine oxide) ligand () was achieved with the determination of single-crystal X-ray diffraction structures of four mononuclear complexes of formula [Ln(hfac)()] (hfac- = 1,1,1,5,5,5-hexafluoroacetylacetonate) (Ln = Dy(III) (1-Dy) and Yb(III) (2-Yb)) and [Ln(tta)()] (tta = 2-tenoyl-trifluoroacetylacetonate) (Ln = Dy(III) (3-Dy) and Yb(III) (4-Yb)) and one dinuclear complex [Na(Dy(hfac)())](BArF) (BArF = tetrakis[3,5-bis(trifluoromethyl)phenyl]borate) (5-Dy). The compounds were characterized using elemental analysis, IR spectroscopy, DC and AC magnetic measurements and photophysical investigations. L is an efficient organic chromophore for the sensitization of both visible Dy(III) (1-Dy) and near-infrared Yb(III) (2-Yb and 4-Yb) luminescence. The combination of excitation and emission spectra allowed the determination of the crystal field spitting of both the F ground state and F excited state for 2-Yb and 4-Yb. Moreover, 3-Dy and the two Yb(III) derivatives displayed field-induced single-molecule magnet (SMM) behaviour with slow magnetic relaxation occurring through the Raman process only for 2-Yb and 4-Yb, whereas a combination of Orbach and Raman processes was identified for 3-Dy.
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http://dx.doi.org/10.1039/d4dt00536h | DOI Listing |
Inorg Chem
November 2024
Department of Chemistry, The University of Manchester, Oxford Road, Manchester M13 9PL, U.K.
Modulation of the crystal field (CF) in lanthanide (Ln) complexes can enhance optical and magnetic properties, and large CF splitting can be achieved with low coordination numbers in specific geometries. We previously reported that the homoleptic near-linear Sm complex [Sm{N(SiPr)}] () is oxidized by the 2,2,6,6-tetramethylpiperidinyl-1-oxy (TEMPO) radical to give the heteroleptic, approximately trigonal planar Sm complex, [Sm{N(SiPr)}(TEMPO)] (). Here, we report the synthesis of homologous [Ln{N(SiPr)}(TEMPO)] (; Ln = Tm, Yb) complexes by the oxidation of the parent [Ln{N(SiPr)}] (; Ln = Tm, Yb) with TEMPO; complexes all contain TEMPO anions.
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May 2024
Univ Rennes, CNRS, ISCR (Institut des Sciences Chimiques de Rennes) - UMR 6226, 35000 Rennes, France.
Inorg Chem
June 2010
Molecular Catalysis and Innovative Material Laboratory, Department of Chemistry, Fudan University, Shanghai 200433, People's Republic of China.
The treatment of [(Me(3)Si)(2)NC(NCy)(2)](2)Ln(mu-Cl)(2)Li(THF)(2) with 1 equiv of BnK (Bn = benzyl) in toluene affords [(Me(3)Si)(2)NC(NCy)(2)](2)LnBn [Ln = Er (1-Er), Y (1-Y)] in good yields. Similarly, [(Me(3)Si)(2)NC(NCy)(2)](2)Ln(t)Bu [Ln = Er (2-Er), Yb (2-Yb)] are obtained in satisfactory yields by the reaction of [(Me(3)Si)(2)NC(NCy)(2)](2)Ln(mu-Cl)(2)Li(THF)(2) with (t)BuLi in hexane. 1 reacts with 1/8 equiv of S(8) in toluene to form the sulfur insertion products {[(Me(3)Si)(2)NC(NCy)(2)](2)Ln(mu-SBn)}(2) [Ln = Er (3-Er), Y (3-Y)], while the reaction of 2 with elemental sulfur under the same conditions affords the oxidation products {[(Me(3)Si)(2)NC(NCy)(2)](2)Ln}(2)(mu-eta(2):eta(2)-S(2)) [Ln = Er (4-Er), Yb (4-Yb)] regardless of the equivalency of S(8) employed.
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