Jan Rosdahl
Royal Institute of Technology
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Publication
Featured researches published by Jan Rosdahl.
ChemMedChem | 2011
Lars-Erik Briggner; Ramon Hendrickx; Lars Kloo; Jan Rosdahl; Per H. Svensson
Simple and rational: The intrinsic solubility of a compound can be systematically improved by perturbing key interactions in its crystal structure. By carefully choosing the perturbation, the end r ...
Polyhedron | 2002
Lars Kloo; Jan Rosdahl; Michael J. Taylor
Subvalent gallium can exist in aqueous solutions as Ga-Ga bonded gallium(II) species stabilised by halide ligands in the form of the complex anions Ga2X62- (X = Cl, Br or I) whose formation and rea ...
European Journal of Inorganic Chemistry | 1999
Stefan Ulvenlund; Jan Rosdahl; Andreas Fischer; Peter Schwerdtfeger; Lars Kloo
Hg2Cl2 dissolves in GaCl3/benzene solution to yield Hg-2(2+) and chlorogallate(III) ions, GanCl3n+1-. In such solutions, Hg-2(2+) can be reduced to Hg-3(2+) by metallic mercury. Solubility measur ...
ChemMedChem | 2014
Lars-Erik Briggner; Lars Kloo; Jan Rosdahl; Per H. Svensson
Solubility is a frequently recurring issue within pharmaceutical industry, and new methods to proactively resolve this are of fundamental importance. Here, a novel methodology is reported for intrinsic solubility improvement, using in silico prediction of crystal structures, by perturbing key interactions in the crystalline solid state. The methodology was evaluated with a set of benzodiazepine molecules, using the two‐dimensional molecular structure as the only a priori input. The overall trend in intrinsic solubility was correctly predicted for the entire set of benzodiazepines molecules. The results also indicate that, in drug compound series where the melting point is relatively high (i.e., “brick dust” compounds), the reported methodology should be very suitable for identifying strategically important molecular substitutions to improve solubility. As such, this approach could be a useful predictive tool for rational compound design in the early stages of drug development.
ACS Applied Materials & Interfaces | 2017
Peng Liu; Viktor Johansson; Herri Trilaksana; Jan Rosdahl; Gunther G. Andersson; Lars Kloo
The organization of dye molecules in the dye layer adsorbed on the semiconductor substrate in dye-sensitized solar cells has been studied using a combination of theoretical methods and experimental techniques. The model system is based on the simple D-π-A dye L0, which has been chemically modified by substituting the acceptor group CN with Br (L0Br) to offer better X-ray contrast. Experimental EXAFS data based on the Br K-edge backscattering show no obvious difference between dye-sensitized titania powder and titania film samples, thus allowing model systems to be based on powder slurries. Ab initio molecular dynamic (aiMD) calculations have been performed to extract less biased information from the experimental EXASF data. Using the aiMD calculation as input, the EXAFS structural models can be generated a priori that match the experimental data. Our study shows that the L0Br dye adsorbs in the trans-L0Br configuration and that adsorption involves both a proximity to other L0Br dye molecules and the titanium atoms in the TiO2 substrate. These results indicate direct coordination of the dye molecules to the TiO2 surface in contrast to previous results on metal-organic dyes. The molecular coverage of L0Br on mesoporous TiO2 was also estimated using NICIS spectroscopy. The NICISS results emphasized that the L0Br dye on nanoporous titania mainly forms monolayers with a small contribution of multilayer coverage.
Chemistry: A European Journal | 2001
Alexei N. Kuznetsov; Lars Kloo; Jan Rosdahl; Hermann Stoll
European Journal of Inorganic Chemistry | 2002
Lars Kloo; Jan Rosdahl; Per H. Svensson
European Journal of Inorganic Chemistry | 2005
Jan Rosdahl; Thomas F. Fässler; Lars Kloo
Inorganica Chimica Acta | 2004
Jan Rosdahl; Ingmar Persson; Lars Kloo; Kenny Ståhl
Glass Technology-european Journal of Glass Science and Technology Part A | 2007
Torun Bring; Bo Jonson; Lars Kloo; Jan Rosdahl; Reine Wallenberg