Four mononuclear manganese(III) complexes coordinated with photo-active hexadentate azobenzene ligands, [Mn(5azo-sal-323)](X) (X = Cl, 1; X = BF, 2; X = ClO, 3; X = PF, 4), were prepared. The impact of various counter anions on the stabilization and switching of the spin state of the manganese(III) center was explored through detailed magneto-structural investigation using variable temperature single-crystal X-ray diffraction, magnetic, spectroscopic, and spectroelectrochemical studies, along with theoretical calculations. All four complexes consisted of an isostructural monocationic distorted octahedral MnNO coordination environment offered by the hexadentate ligand and Cl, BF, ClO, and PF as counter anions respectively. Complex 1 with a spherical Cl counter anion showed a reversible and gradual spin-state switching between low-spin (LS) ( = 1) and high-spin (HS) ( = 2) states above 400 K, where non-covalent cation-anion interactions played a significant role in stabilizing the LS state. While, irrespective of the shape of the counter anion, complexes 2-4 remained in the HS state throughout the measured temperature range of 300-2 K, where strong π-π interaction between the azobenzene motifs among cationic units played a substantial role in stabilizing the HS state. Furthermore, magnetic data analyses revealed significantly large zero-field splitting in the = 1 state for 1 ( = 19.4 cm, / = 0.008) in comparison with that in the = 2 state for 2-4 ( = 3.99-4.97 cm, / = 0.002-0.195). Spectroelectrochemical investigations revealed the quasi-reversible reduction and oxidation of the manganese(III) center to manganese(II) and manganese(IV), respectively. A detailed theoretical calculation at the DFT and CASSCF level of theory was carried out to better understand the magneto-structural correlation.
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Herein, we present a strategy to access a novel class of pH-responsive, dual-state emissive (DSE), highly fluorescent pyrrole-based chromophores diformylation of dipyrroethenes (DPE) followed by condensation with various aniline derivatives. The DPE-based chromophores exhibit a large Stokes shift and maintain good fluorescence quantum yields. Remarkably, these chromophores demonstrate reversible colourimetric changes and a fluorometric 'on-off-on' switch in response to pH variations.
View Article and Find Full Text PDFChem Asian J
December 2024
IIT delhi, department of chemistry, Hauz Kahs, 110016, New Delhi, INDIA.
The crystallization of lanthanide-containing β-octamolybdate (β-{Mo8O26}4-) based solids from a binary 1:1 (water/DMSO) solution under ambient conditions is reported. A uniform synthetic protocol yielded three structurally related series of general composition {Ln(solvent)n}[NaMo8O26]·yH2O, with the whole lanthanide series (except for radioactive Pm). The three series are (i) {Ln(DMSO)8}[NaMo8O26]·0.
View Article and Find Full Text PDFActa Crystallogr E Crystallogr Commun
October 2024
Department of Chemistry & Biochemistry California State Polytechnic University, Pomona 3801 W Temple Ave Pomona CA 91768 USA.
The crystal structure of the title compound, hexa-aqua-nickel(II) dichloride-1,4,7,10,13,16-hexa-oxa-cyclo-octa-deca-ne-water (1/2/2), [Ni(HO)]Cl·2CHO·2HO, is reported. The asymmetric unit contains half of the Ni(OH) moiety with a formula of CHClNiO at 105 K and triclinic (1) symmetry. The [Ni(OH)] cation has close to ideal octa-hedral geometry with O-Ni-O bond angles that are within 3° of idealized values.
View Article and Find Full Text PDFInorg Chem
December 2024
School of Energy Materials and Chemical Engineering, Hefei University, Hefei 230000, China.
Three novel alkali metal fluoroaluminophosphates, Li[AlPOF(OH)](HO) and [Al(PO)F(HO)]( = K, Rb), were designed and synthesized by using low-temperature flux methods. They crystallized in polar space groups and 222, respectively. Li[AlPOF(OH)](HO) features a unique two-dimensional layered structure of fluoroaluminophosphate [AlPOF(OH)], composed of alternately connected AlFO octahedra and PO tetrahedra.
View Article and Find Full Text PDFActa Crystallogr C Struct Chem
January 2025
Ordered Matter Science Research Center, Nanchang University, Nanchang 330031, People's Republic of China.
In recent years, molecular-based ferroelectric materials have attracted widespread research interest due to their excellent performance. Among them, host-guest-type crown ether inclusion compounds composed of organic ammonium cations, crown ether molecules and corresponding anions have become a star component in the design of molecular-based ferroelectric materials because they are prone to order-disorder phase transitions. Many anions have been studied extensively as counter-ions, such as bis(trifluoromethanesulfonyl)amidate (TFSA), PF and [FeCl].
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