Chiral terpyridine ligands have been synthesized and characterized. By applying Ru(III)/Ru(II) chem., sym. as well as asym. bis-terpyridine ruthenium(II) complexes were obtained. These materials were fully characterized and their optical properties investigated. While the chiral metal complexes revealed no Cotton effect in good solvents such as chloroform, CD-measurements in dodecane showed an effect in both ligand and MLCT regions, suggesting chirality transfer from the lateral alkyl chains to the complex core. This behavior points to the formation of supramol. aggregates in dodecane. Furthermore, the analogous achiral ligand and its corresponding ruthenium(II) complexes were prep
The synthesis of a series of heteroleptic ruthenium(II)-complexes containing both, 2,2:6,2-terpyridi...
In our continued efforts in the synthesis of ruthenium(II) polypyridine complexes as potential dyes ...
Enantiopure dinuclear ruthenium polypyridyl complexes of the form [Ru-2(LL)(4)L-1](PF6)(4) (LL = 2,2...
Chiral terpyridine ligands have been synthesized and characterized. By applying Ru(III)/Ru(II) chem....
A rigid terpyridine ligand containing chiral alkyl chains has been synthesized, characterized and su...
Supramolecular architectures are of great interest in modern materials research. The directed synthe...
The synthesis of di- and trinuclear ruthenium(II) complexes is reported, where each metal center has...
Herein we report synthesis of series of novel chiral complexes of various metals (Cu, Re, etc.) with...
Three new optically pure C1-terpyridine ligands (L1–3) were prepared and the copper(II) complexes, o...
The synthesis of di- and trinuclear ruthenium(II) complexes is reported, where each metal center has...
A series of enantiopure ruthenium(II) polypyridyl complexes are reported that feature pendant pyridy...
Organometallic complexes have proven to have significant nonlinear optical (NLO) properties. Th...
A series of oligoaniline-functionalized mono- and bis-topic terpyridine ligands, i.e. C6H5[N(R)C6H4]...
We report here the synthesis and structural characterization of a new class of homoleptic terpyridin...
The preparation and the photophysical properties of a series of luminescent chiral alkynylplatinum(I...
The synthesis of a series of heteroleptic ruthenium(II)-complexes containing both, 2,2:6,2-terpyridi...
In our continued efforts in the synthesis of ruthenium(II) polypyridine complexes as potential dyes ...
Enantiopure dinuclear ruthenium polypyridyl complexes of the form [Ru-2(LL)(4)L-1](PF6)(4) (LL = 2,2...
Chiral terpyridine ligands have been synthesized and characterized. By applying Ru(III)/Ru(II) chem....
A rigid terpyridine ligand containing chiral alkyl chains has been synthesized, characterized and su...
Supramolecular architectures are of great interest in modern materials research. The directed synthe...
The synthesis of di- and trinuclear ruthenium(II) complexes is reported, where each metal center has...
Herein we report synthesis of series of novel chiral complexes of various metals (Cu, Re, etc.) with...
Three new optically pure C1-terpyridine ligands (L1–3) were prepared and the copper(II) complexes, o...
The synthesis of di- and trinuclear ruthenium(II) complexes is reported, where each metal center has...
A series of enantiopure ruthenium(II) polypyridyl complexes are reported that feature pendant pyridy...
Organometallic complexes have proven to have significant nonlinear optical (NLO) properties. Th...
A series of oligoaniline-functionalized mono- and bis-topic terpyridine ligands, i.e. C6H5[N(R)C6H4]...
We report here the synthesis and structural characterization of a new class of homoleptic terpyridin...
The preparation and the photophysical properties of a series of luminescent chiral alkynylplatinum(I...
The synthesis of a series of heteroleptic ruthenium(II)-complexes containing both, 2,2:6,2-terpyridi...
In our continued efforts in the synthesis of ruthenium(II) polypyridine complexes as potential dyes ...
Enantiopure dinuclear ruthenium polypyridyl complexes of the form [Ru-2(LL)(4)L-1](PF6)(4) (LL = 2,2...