TY - JOUR A1 - Schmidt, T. A1 - Dai, Z. A1 - Drexler, H.-J. A1 - Baumann, W. A1 - Jäger, Christian A1 - Pfeifer, Dietmar A1 - Heller, D. T1 - Novel contributions to the mechanism of the enantioselective hydrogenation of dimethyl itaconate with rhodium complexes KW - Enantioselective Hydrogenation KW - Rhodium-Phosphor-Complex KW - Powder Diffractometry KW - Hr- and Solid State NMR-Spectroscpy KW - Asymmetric catalysis KW - Hydrogenation KW - Kinetics KW - Reaction mechanisms KW - Rhodium PY - 2008 U6 - https://doi.org/10.1002/chem.200800389 SN - 0947-6539 SN - 1521-3765 VL - 14 IS - 15 SP - 4469 EP - 4471 PB - Wiley-VCH Verl. CY - Weinheim AN - OPUS4-18368 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Engl, T. A1 - Eberl, N. A1 - Gorse, C. A1 - Krüger, T. A1 - Schmidt, T. A1 - Plarre, Rüdiger A1 - Adler, C. A1 - Kaltenpoth, M. T1 - Ancient symbiosis confers desiccation resistance to stored grain pest beetles N2 - Microbial symbionts of insects provide a range of ecological traits to their hosts that are beneficial in the context of biotic interactions. However, little is known about insect symbiont-mediated adaptation to the abiotic environment, for example, temperature and humidity. Here, we report on an ancient clade of intracellular, bacteriome-located Bacteroidetes symbionts that are associated with grain and Wood pest beetles of the phylogenetically distant families Silvanidae and Bostrichidae. In the saw-toothed grain beetle Oryzaephilus surinamensis, we demonstrate that the symbionts affect cuticle thickness, melanization and hydrocarbon profile, enhancing desiccation resistance and thereby strongly improving fitness under dry conditions. Together with earlier observations on Symbiont contributions to cuticle biosynthesis in weevils, our findings indicate that convergent acquisitions of bacterial mutualists represented key adaptations enabling diverse pest beetle groups to survive and proliferate under the low ambient humidity that characterizes dry grain storage facilities. KW - Bacteroidetes KW - Cuticle KW - Desiccation resistance KW - Grain pest beetles KW - Symbiosis PY - 2017 U6 - https://doi.org/10.1111/mec.14418 SN - 1365-294X SN - 0962-1083 VL - 27 IS - 8 SP - 2095 EP - 2108 AN - OPUS4-44013 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Schulz, K. A1 - Schmack, R. A1 - Klemm, H. W. A1 - Kabelitz, Anke A1 - Schmidt, T. A1 - Emmerling, Franziska A1 - Kraehnert, R. T1 - Mechanism and kinetics of hematite crystallization in air: Linking bulk and surface models via mesoporous films with defined nanostructure N2 - Iron can form numerous oxides, hydroxides, and oxide−hydroxides. Despite their relevance, many of the transformation processes between these phases are still poorly understood. In particular the crystallization of quasi-amorphous hydroxides and oxide−hydroxides is difficult to assess, since typical diffraction and scattering methods provide only sampleaveraged information about the crystallized phases. We report a new approach for the investigation of the crystallization of oxide−hydroxides. The approach relies on model-type films that comprise a defined homogeneous nanostructure. The nanostructure allows quantitative linking of Information obtained by bulk-averaging diffraction techniques (XRD, SAXS) with locally resolved information, i.e., Domain sizes (SEM, TEM, LEEM) and phase composition (SAED). Using time-resolved imaging and diffraction we deduce mechanism and kinetics for the crystallization of ferrihydrite into hematite. Hematite forms via nucleation of hematite domains and subsequent Domain growth that terminates only upon complete transformation. A Johnson−Mehl−Avrami−Kolmogorov model describes the kinetics over a wide temperature range. The derived understanding enables the first synthesis of ferrihydrite films with ordered mesoporosity and quantitative control over the films’ hematite and ferrihydrite content. KW - Iron oxide KW - Crystallization KW - Mesoporous films KW - Nanostructure PY - 2017 U6 - https://doi.org/10.1021/acs.chemmater.6b05185 SN - 0897-4756 SN - 1520-5002 VL - 29 IS - 4 SP - 1724 EP - 1734 AN - OPUS4-39690 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -