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Saprotrophic basidiomycetes decompose wood in aerobic environments and can cause economic damage. The availability of nitrogen is determining for decomposition, and diazotrophic bacteria might enhance the nitrogen availability by fixation of atmospheric N2. Simultaneous decomposition by basidiomycetes and diazotrophs may intensify decomposition, because N2 fixation requires ATP, which could be provided during cellulose decomposition. In this study, the interaction was analysed by measurements of the nitrogen content and the δ15N values in biomass. Besides, the activity of basidiomycetes, influenced by different nitrogen sources, was determined. The analysis of the nitrogen content in biomass of Oligoporus placenta and Trametes versicolor proved the efficient uptake of organic nitrogen by wood-decomposing fungi even if only traces were available. In the presence of urea and ammonium chloride, the growth of T. versicolor was intensified. At cultivations in a 15N2/O2 atmosphere, the diazotrophic bacteria Azotobacter croococcum, Beijerinckia acida and Novosphingobium nitrogenifigens covered 1 to 13% of the nitrogen in their biomass by N2 fixation. If basidiomycetes and diazotrophs were co-cultivated, only B. acida fixed N2 and transferred it to both fungi. A. croococcum and N. nitrogenifigens did not coexist with the fungi. The effects of the nitrogen sources, i.e., organic nitrogen in the medium, organic nitrogen in sapwood and N2 from air, on the biomass of the mentioned basidiomycetes were determined in experiments according to full-factorial experimental plans. Organic nitrogen in the medium increased the growth of both basidiomycetes significantly. In additional experiments, the nitrogen source in the medium was replaced by an inoculum of B. acida. Then, atmospheric N2 supported the bacterial growth, which caused a significant decrease of basidiomycetal biomass compared to N2-free conditions. The presence of B. acida increased the biomass of T. versicolor to a low extent, but had no effect on the biomass of O. placenta. In contrast to the previously mentioned organisms, Hypholoma fasciculare and proteobacteria occur together in nature. In experiments, the growth of biomass of H. fasciculare and proteobacteria was supported by organic nitrogen, urea and ammonium chloride. The N2 fixation of the bacteria was significant but amounted to a low extent and was therefore explained by adsorption and not by nitrogenase activity. Competition between H. fasciculare and proteobacteria for the same nitrogen sources appeared more probable than N enrichment by diazotrophic activity.
For the successful use of lithium-ion batteries in automotive applications, reliable availability of high storage capacity and very short recharging times are essential. In order to develop the perfect battery for a certain application, structure–property relationships of each active material must be fully understood. LiFePO4 is of great interest due to its fast-charging capability and high stability regarding its thermal resistance and chemical reactivity. The anisotropic lithium-ion diffusion through the LiFePO4 crystal structure indicates a strong dependence of the electrochemical performance of a nanostructured active material on particle morphology. In this paper, the relationship of the particle morphology and fast-charging capability of LiFePO4/C core/shell nanoparticles in half-cells was studied. For this purpose, a new multistep synthesis strategy was developed. It involves the combination of a solvothermal synthesis followed by an in situ polymer coating and thermal calcination step. Monodisperse rodlike LiFePO4 nanoparticles with comparable elongation along the b-axis (30–50 nm) and a varying aspect ratio c/a (2.4–6.9) were obtained. A strong correlation of the fast-charging capability with the aspect ratio c/a was observed. When using LiFePO4 nanoparticles with the smallest aspect ratio c/a, the best electrochemical performance was received regarding the specific capacity at high C-rates and the cycling stability. A reduction of the aspect ratio c/a by 30% (3.6 to 2.4) was found to enhance the charge capacity at 10 C up to an order of magnitude (7.4–73 mA h·g–1).
Photopolymer derived carbon grows in popularity, yet the range in available feature sizes is limited. Here we focus on expanding the field to low surface to volume ratio (SVR) structures. We describe a high temperature acrylic photopolymerizable precursor with FTIR and DSC and develop a thermal inert-gas treatment for producing architected carbon in the mm scale with SVR of 1.38 x10-3 μm-1. Based on TGA and MS, we distinguish two thermal regimes with activation energies of ~79 and 169 kJ mol-1, which we reason with mechanisms during the polymer’s morphologic conversion between 300 - 500 °C. The temperature range of the major dimensional shrinkage (300-440 °C, 50%) does not match the range of the largest alteration in elemental composition (440-600 °C, O/C 0.25-0.087%). The insights lead to an optimized thermal treatment with an initial ramp (2 °C min-1 to 350 °C), isothermal hold (14h), post hold ramp (0.5 °C min-1 to 440 °C) and final ramp (10 °C min-1 to 1000 °C). The resulting carbon structures are dimensionally stable, non-porous at the μm scale, and comprise an unprecedented variation in feature sizes (from mm to μm scale). The findings shall advance architected carbon to industrially relevant scales.
The analysis of non-metals normally is carried out using elemental analysers which require reference material for calibration. In the lecture the CRM-program of BAM suitable for non-metal-analysis is presented. There are CRMs available with non-metal contents in the low ppm up to the high percent region.
The synthesis of polymerlike amorphous carbon (a-C:H) thin-films by microwave excited collisional hydrocarbon plasma process is reported. Stable and highly aromatic a-C:H were obtained containing significant inclusions of poly(p-phenylene vinylene) (PPV). PPV confers universal optoelectronic properties to the synthesized material. That is a-C:H with tailor-made refractive index are capable of becoming absorption-free in visible (red)-near infrared wavelength range. Production of large aromatic hydrocarbon including phenyl clusters and/or particles is attributed to enhanced coagulation of elemental plasma species under collisional plasma conditions. Detailed structural and morphological changes that occur in a-C:H during the plasma synthesis are also described.
Due to their unique physical properties, particularly their electronic and luminescent properties, graphene quantum dots (GQDs) are expected to be suitable for a wide range of applications in bioimaging, electro-optical and photonic materials or energy harvesting among others.1 Tuning the surface chemistry provides an efficient approach to modulate the fluorescence and distinct electronic properties of GQDs.2 Nevertheless, the role of surface chemistry on the electronic structure of GQDs remains poorly understood. In this presentation, we will compare systematically the electronic and chemical structures of GQDs functionalized with carboxylic and aminated groups to those of non-functionalized GQDs, combining theoretical and experimental approaches, here various photon-based spectroscopies. First, the electronic structure of GQDs was characterized by soft X-ray absorption (XA) and X-ray emission (XE) spectroscopies, probing unoccupied and occupied electronic states, respectively, at the carbon K edge for the first time. The interpretation of the XA/XE spectra was done based on theoretical calculations. Then, the chemical structure of the GQDs was characterized in situ by ATR-FTIR in water, thereby accounting for the importance of the interface between GQDs and water believed to play a central role in the chemical reactivity and the optical properties. We previously demonstrated that monitoring the OH vibrations of water molecules during exposure to humid air was a powerful method to probe H-bonding environment around carbon nanomaterials.3 For GQDs, clear surface-dependent water adsorption profiles are observed and discussed. Finally, UV/Vis absorption and photoluminescence measurements were done to characterize the optical properties of these GQDs. Our results suggest that the surface chemistry of the GQDs affects significantly their electronic structure and optical properties. These findings will contribute to an improved understanding of the structure–activity relationship of GQDs and other carbon nanomaterials with surface modifications.