Ingenieurwissenschaften und zugeordnete Tätigkeiten
Filtern
Erscheinungsjahr
- 2017 (211) (entfernen)
Dokumenttyp
- Zeitschriftenartikel (211) (entfernen)
Sprache
- Englisch (203)
- Deutsch (7)
- Mehrsprachig (1)
Referierte Publikation
- ja (211) (entfernen)
Schlagworte
- Nanoparticle (11)
- Fluorescence (10)
- Mechanochemistry (9)
- Quantum yield (8)
- SAXS (7)
- Small-angle X-ray scattering (7)
- NIR (6)
- Femtosecond laser (5)
- IR (5)
- Lifetime (5)
- Quantification (5)
- Additive manufacturing (4)
- Degradation (4)
- Fatigue strength (4)
- Fracture mechanics (4)
- In situ (4)
- Lanthanide (4)
- Laser-induced periodic surface structures (LIPSS) (4)
- Multiple crack propagation (4)
- Residual stress (4)
- Residual stresses (4)
- Upconversion (4)
- Alkali-silica reaction (3)
- Cast iron (3)
- Computed tomography (3)
- Electron backscatter diffraction (3)
- Ellipsometry (3)
- Initial crack size (3)
- Integrating sphere spectroscopy (3)
- Laser ablation (3)
- MAG welding (3)
- MALDI-TOF MS (3)
- Method (3)
- Neutron diffraction (3)
- Phase transformation (3)
- Polymer (3)
- Raman spectroscopy (3)
- Sensor (3)
- Short crack propagation (3)
- Silver nanoparticles (3)
- Steel (3)
- X-ray computed tomography (3)
- XRD (3)
- Absolute fluorometry (2)
- Aktive Thermografie (2)
- Biodiesel (2)
- Brightness (2)
- Broadband Dielectric Spectroscopy (2)
- Broadband dielectric spectroscopy (2)
- Carbon fiber reinforced polymer (2)
- Carbon nanotubes (2)
- Composites (2)
- Concrete (2)
- Corrosion (2)
- Crystallization (2)
- DNA origami (2)
- Doped tin oxide (2)
- Dye (2)
- EBSD (2)
- Environment (2)
- Environmental stress cracking (ESC) (2)
- Epoxy resin (2)
- Fatigue (2)
- Femtosecond laser ablation (2)
- Gas sensing (2)
- Gefahrgutverpackung (2)
- Grain growth (2)
- Heat treatment (2)
- High-strength steel (2)
- High-strength steels (2)
- Iron oxide (2)
- LIBS (2)
- Laser-induced periodic surface structures (2)
- MALDI (2)
- Mechanical properties (2)
- Metal phosphonate (2)
- Microscopy (2)
- Microstructure (2)
- NMR (2)
- Nanocomposite (2)
- Nanocomposites (2)
- Nanocrystal (2)
- Nanostructures (2)
- Non-destructive testing (2)
- Oxidation (2)
- Polyethylen (2)
- Polylactide (2)
- Polylactides (2)
- Polymorphism (2)
- Porosity (2)
- Process parameters (2)
- Quantum dot (2)
- Rammed earth (2)
- Reliability (2)
- Restraint (2)
- Ring-opening polymerization (2)
- Semiconductor (2)
- Slow crack growth (SCG) (2)
- Spectroscopic ellipsometry (2)
- Surface chemistry (2)
- Thermography (2)
- Thin Films (2)
- Thin films (2)
- Titanium (2)
- ToF-SIMS (2)
- Wear (2)
- Welding (2)
- Welding simulation (2)
- Weldments (2)
- X-ray imaging (2)
- X-ray refraction (2)
- Zerstörungsfreie Prüfung (2)
- (Mn,Ga)As crystallites (1)
- 3D printing (1)
- 4'-hydroxyacetophenone (1)
- AC-nanochip calorimetry (1)
- AFM cantilever vibration (1)
- AFM intermittent contact (1)
- AFM tip shape (1)
- Aberfan flowslide (1)
- Abplatzen (1)
- Absolute flourescence (1)
- Absolute flourometry (1)
- Absolute fluoreometry (1)
- Accelerated time integration (1)
- Accuracy (1)
- Acoustic emissions analysis (1)
- Active and passive thermography (1)
- Active thermography (1)
- Adjustment calculation (1)
- Adsorption of phosphate (1)
- Ageing (1)
- Al-Cu-Li-Legierung (1)
- Alkali ingress (1)
- Aluminum alloy 2024-T3 (1)
- Amphiphilic dumbbells (1)
- Anodic oxidation (1)
- Antenna effect (1)
- Antifouling (1)
- Antiphase boundary (1)
- Aqdditive manufacturing (1)
- Archaeology (1)
- Artificial cells (1)
- Artificial turf (1)
- Artificial weathering (1)
- Assay (1)
- Asymmetric supercapacitor (1)
- Athletic tracks (1)
- Atomic force microscopy (1)
- Auger electron spectroscopy (1)
- Ausscheidungen (1)
- Axle (1)
- Azobenzene (1)
- BLE (1)
- BODIPY (1)
- Bacterial adhesion (1)
- Bacteroidetes (1)
- Ball milling (1)
- Behandlungsparameter (1)
- Biegefestigkeit (1)
- Biegesteifigkeit (1)
- Bio lubricants (1)
- Biocides (1)
- Bioconjugate (1)
- Biofilm (1)
- Biofilms (1)
- Biofuel cells (1)
- Biofuels (1)
- Biomass (1)
- Biomedical engineering (1)
- Biomineralization (1)
- Blockcopolymer (1)
- Bluetooth Low Energy (1)
- Bone tissue engineering (1)
- Bragg-edge imaging (1)
- Brake pad materials (1)
- Brand (1)
- Brass (1)
- Brithtness (1)
- Building materials (1)
- Building-blocks (1)
- CCS (1)
- CFK (1)
- CFRP (1)
- CO2-storage (1)
- Calcium alkali orthophosphate (1)
- Calcium phosphate (1)
- Calibration (1)
- Carbamazepine (1)
- Carbon fibre reinforced composite (1)
- Carbon fibres nanotubes interface (1)
- Carbon nanodots (1)
- Carbon-based nanomaterials (1)
- Carbon-fluorine bonds (1)
- Casting skin (1)
- Catalysis (1)
- Catalysts (1)
- Cationization (1)
- CdSe (1)
- Cell adhesion (1)
- Cellular solids (1)
- Ceramics (1)
- Cermet (1)
- Chemical analysis (1)
- Chemicals classification (1)
- Chemometrics (1)
- Circular dichroism (1)
- Climate simulation concrete prism test (1)
- Co-planar translational laminography (1)
- Cocrystal (1)
- Cocrystals (1)
- Colour center (1)
- Compatibility (1)
- Compatible solute (1)
- Complex formation (1)
- Complex structures (1)
- Component design (1)
- Compression (1)
- Compressive strength (1)
- Computational model for unsaturated flow (1)
- Computed thomography (1)
- Concrete pavement (1)
- Conductivity (1)
- Conductometry (1)
- Contamination (1)
- Continuum damage mechanics (1)
- Controlled radical polymerization (1)
- Coordination polymers (1)
- Copper (1)
- Correlative tomography (1)
- Corrosion fatigue (1)
- Corrosion resistance (1)
- Cr complex (1)
- Crack (1)
- Crack criterion (1)
- Crack detection (1)
- Crack driving force (1)
- Cracks (1)
- Creep (1)
- Critical micelle concentration (CMC) (1)
- Crystal phase determination (1)
- Crystal structure (1)
- Crystallography (1)
- Curing kinetics (1)
- Cuticle (1)
- Cyclic loading (1)
- Cyclic softening (1)
- Cyclopolymerization (1)
- Cysteine (1)
- C–C coupling (1)
- DNA (1)
- DSC (1)
- DSS (1)
- DSSC (1)
- Darkfield microscopy (1)
- Data correction (1)
- Data fusion (1)
- Decay time (1)
- Delamination (1)
- Dendrimersomes (1)
- Dendritic amphiphile (1)
- Dense alumina (1)
- Density functional theory (DFT) (1)
- Dentistry (1)
- Desiccation resistance (1)
- Dezincification (1)
- Dielectric materials (1)
- Dielectrics (1)
- Different electrochemical conditions (1)
- Different load cases (1)
- Differential scanning calorimetry (DSC) (1)
- Digital radiography (1)
- Dilatometry (1)
- Dislocations (1)
- Dispersity (1)
- Dissimilar welding (1)
- Distance transform (1)
- Doubly charged ions (1)
- Druckkraft (1)
- Dual emission (1)
- Dual-environment (1)
- Ductile cast iron (1)
- Duplex stainless steel (1)
- Duplex stainless steels (1)
- Dynamic fracture mechanics (1)
- EM-clustering (1)
- EN 16807-2016:12 (1)
- EPS (1)
- ESI-TOF-MS (1)
- EXAFS (1)
- Earth block masonry (EBM) (1)
- Economic wide technology replacement (1)
- Ectoine (1)
- Effective irradiation dose 0.2-16 [Gy] (1)
- Electroceramics (1)
- Electrochemical behavior (1)
- Electromagnetic scattering (1)
- Electron back-scattered diffraction (1)
- Electron irradiation 30 [kV] (1)
- Electronic structure (1)
- Electrospray ionization polymers (1)
- Emission standards (1)
- Emission test chamber (1)
- Emissivity (1)
- Energy efficiency (1)
- Energy input (1)
- Energy transfer (1)
- Epoxy (1)
- Etal-complexes (1)
- Ettringit (1)
- European Materials Research Society (E-MRS) (1)
- Excitation energy dependence (1)
- Excitation power density dependence (1)
- Excitation spectra (1)
- Exciton (1)
- External alkalis (1)
- External load test (1)
- FEA (1)
- FNCT (1)
- FRET (1)
- Fahrbahnbeton (1)
- Faserverbundwerkstoffe (CFK, GFK) (1)
- Fatigue assessment (1)
- Fatigue damage (1)
- Fatigue life time (1)
- Fatigue loading (1)
- Ferritic/martensitic steel (1)
- Festigkeitssteigerung (1)
- Feuchtetransport (1)
- Fibre reinforced composites (1)
- Film (1)
- Finite element method (1)
- Finite element simulation (1)
- Fire (1)
- Flame retardants (1)
- Flammability (1)
- Flowability (1)
- Fluid transport (1)
- Fluorescence probe (1)
- Focused ion beam tomography (1)
- Force-distance curves (1)
- Fourier series (1)
- Fracture energy (1)
- Friction (1)
- Friction stir welding (1)
- Full notch creep test (FNCT) (1)
- Full-notch creep test (FNCT) (1)
- Fungi (1)
- GMR (1)
- Gas permeation (1)
- Gas separation (1)
- Gas separation membrane (1)
- Gel electrophoresis (1)
- Gel-type electrolytes (1)
- Gelartige Elektrolyte (1)
- Geothermal environment (1)
- Germylium ions (1)
- Glass-ceramic (1)
- Globally Harmonized System of Classification and Labelling of Chemicals (1)
- Glow discharge processes (1)
- Gold nanoparticles (1)
- Grain pest beetles (1)
- Graphene (1)
- Graphene oxide (1)
- Grating interferometry (1)
- Greenhouse gas mitigation (1)
- Gurson model (1)
- HPC (1)
- HSC (1)
- HSQ (1)
- Halbleiterphysik (1)
- Haltezeit (1)
- Hard object collisions (1)
- Hazardous chemicals (1)
- Heat-affected zone (1)
- Heating (1)
- Heterogeneity (1)
- High Cycle Fatigue (HCF) (1)
- High ductility (1)
- High power welding (1)
- High-density polyethylene (PE-HD) (1)
- Historical earthen building (1)
- Ho(III) (1)
- Hochleistungsbeton (1)
- Hot cracking (1)
- Hybrid laser-arc weld (1)
- Hybrid nanoparticles (1)
- Hydrodefluorination (1)
- Hydrogen embrittlement (1)
- Hydrogen trapping (1)
- Hydrogen-assisted cracking (1)
- Hyperbranched polymers (1)
- I-shape sections (1)
- ISO 6892-1 (1)
- Imaging (1)
- Impact behaviour (1)
- In situ PXRD (1)
- In situ XRD (1)
- In situ bending tests (1)
- In situ near-infrared (NIR) spectroscopy (1)
- Integrating sphere (1)
- Intermetallic compound (1)
- Interpass temperature (1)
- Interphase (1)
- Iron oxide nanoparticles (1)
- Iron oxides (1)
- Iron-oxo oligomers (1)
- Irradiation (1)
- Irreversible polycondensation (1)
- Janus dendrimers (1)
- Kikuchi patterns (1)
- Knoevenagel condensation (1)
- Kohlenstofffaserverstärkter Kunststoff (1)
- Krypton (1)
- LED phosphors (1)
- LPSO Phase (1)
- LTT (1)
- Lactides (1)
- Landslide propagation modelling (1)
- Laser Processing (1)
- Laser heated pedestal growth (1)
- Laser-induced breakdown spectroscopy (1)
- Laser-induced periodic surface structures, LIPSS (1)
- Laser-induced redox reactions (1)
- Laser-material interactions (1)
- Layer-wise slurry deposition (1)
- Leaching (1)
- Leakage (1)
- Lean duplex stainless steel (1)
- Lewis-acids (1)
- Life cycle assessment (LCA) (1)
- Life time prediction (1)
- Life-cycle assessment (1)
- Liftetime (1)
- Ligand (1)
- Light-harvesting (1)
- Limiting oxygen concentration (1)
- Liquid chromatography at critical conditions (1)
- Liquid petroleum products (1)
- Liquid phase sintering (1)
- Lizard (1)
- Load partition (1)
- Long-Term Monitoring (1)
- Low blow (1)
- Low temperature (1)
- Lubricant films (1)
- MALDI TOF MS (1)
- MEMS (1)
- MOF (1)
- Magnetic nanoparticles (1)
- Magnetic properties (1)
- Magnetic stray field (1)
- Mandible (1)
- Martensitic stainless steels (1)
- Material (1)
- Materials characterization (1)
- Mechanism (1)
- Medical imaging (1)
- Melanised microcolonial fungi (MCF) (1)
- Mesoporous films (1)
- Metal matrix composite (1)
- Metastable (1)
- Method evaluation (1)
- Methodology (1)
- Methods (1)
- Mg-Y-Zn Alloy (1)
- Micelle (1)
- Micro-CT (1)
- Microalloyed steels (1)
- Microbial adhesion tests (1)
- Microcracking (1)
- Microcracks (1)
- Micromechanics model (1)
- Microstructure and texture (1)
- Mill scale (1)
- Milling (1)
- Model friction tests (1)
- Modeling (1)
- Moisture Measurement (1)
- Moisture clog (1)
- Moisture transport (1)
- Molecular mobility (1)
- Monitoring of damage (1)
- Morphology (1)
- Mouthguard (1)
- Multi-regional inputeoutput data (1)
- Multi-sample analysis (1)
- Multidimensional Spectroscopy (1)
- Müller Polarimetry (1)
- NMR spectroscopy (1)
- Nano (1)
- Nanoclays (1)
- Nanocluster (1)
- Nanocorrosion of aluminium and silicon (1)
- Nanoindentation (1)
- Nanoparticles (1)
- Nanophysik (1)
- Nanostructure (1)
- Nanostructured capacitors (1)
- Nanoviscosity (1)
- Nanowires (1)
- Neon (1)
- Network (1)
- Neutron Diffraction (1)
- Neutron imaging (1)
- Ni-Co oxide (1)
- Nickel-based superalloy (1)
- Nile Red (1)
- Niobium carbide (1)
- Nitrile rubber (1)
- Non-Destructive testing (1)
- Nonlinear (1)
- Notches (1)
- Numerical inversion (1)
- Numerische Simulation (1)
- Oligospiroketals (1)
- Online NMR spectroscopy (1)
- Optical Wavefield (1)
- Optoelektronik (1)
- Orientation mapping (1)
- Oxides (1)
- Oxyfuel (1)
- PET (1)
- PH (1)
- PIM-1 (1)
- PLGA cement (1)
- POD (1)
- POSS (1)
- Pacemaker (1)
- Parameter Study (1)
- Partial safety factor (1)
- Particle (1)
- Particle architecture (1)
- Particle size (1)
- Particle size gradation (1)
- Pavement concrete (1)
- Perzyna viscoplasticity (1)
- Phosphine-ligands (1)
- Photo physics (1)
- Photocatalysis (1)
- Photon counting detectors (1)
- Photovoltaics (1)
- Physical ageing (1)
- Physical hazards (1)
- Piezopolarisation (1)
- Pipeline (1)
- Pitfalls (1)
- Pitting corrosion (1)
- Plasma polymers (1)
- Plasmid DNA pUC19 (1)
- Plasmonic absorption (1)
- Plasmonics (1)
- Plate girders (1)
- Polarity (1)
- Poly(acrylic acid) (1)
- Poly- (hydroxyethylmethacrylate) (1)
- Polyacrylic acid (1)
- Polyamorphism (1)
- Polycaprolactone (1)
- Polyester (1)
- Polyester fabric strips (1)
- Polyethylene (PE-HD) (1)
- Polyethylenterephthalat (1)
- Polymer MALDI (1)
- Polymer based nanocomposites (1)
- Polymer degradation (1)
- Polymer-metal (1)
- Polymerization (1)
- Polymers of intrinsic microporosity (1)
- Polymorphic transition (1)
- Polymorphs (1)
- Polysaccharides (1)
- Polystyrene (1)
- Porosimetry (1)
- Porous materials (1)
- Post-welding Imperfections (1)
- Powder diffraction (1)
- Pre-Columbian ceramics (1)
- Principal component analysis (1)
- Probe (1)
- Process innovations (1)
- Projective geometry (1)
- Protein (1)
- Pseudo-dynamic loads (1)
- Pseudobrookite (1)
- Pullulan (1)
- Pyrazinamide (1)
- Quantum Yield (1)
- Quantum rod (1)
- Quantum yield standard (1)
- Quenching and partitioning (1)
- R-curve (1)
- RSSI (1)
- Radioprotector ectoine (1)
- Rapid prototyping (1)
- Reduced graphene oxide (1)
- Reference material (1)
- Reference materials (1)
- Refractive index (1)
- Residual Stresses (1)
- Resistance (1)
- Resonance (1)
- Resonance testing (1)
- Reverse time migration (1)
- Rheology (1)
- Ring-expansion polymerization (1)
- Rock-art caves (1)
- Room-temperature (1)
- Rope (1)
- Rubber (1)
- Rubber granules (1)
- Rust (1)
- Röntgen-3D-Computertomographie (1)
- SA508 (1)
- SEM–EDS/EBSD (1)
- SERS (1)
- SHPB (1)
- SPH (1)
- STEM/TEM imaging (1)
- Saxs (1)
- Scaffold (1)
- Scanning nano beam electron diffraction (1)
- Scanning transmission electron microscopy (STEM) (1)
- Scattering (1)
- Scattering Theory (1)
- Sealing materials (1)
- Selective laser melting (1)
- Self-assembled structures (1)
- Semiconductor quantum dot (1)
- Shear test (1)
- Shear-compression tests (1)
- Shell (1)
- Shock absorbtion (1)
- Shore hardness (1)
- Shrinkage (1)
- Silica (1)
- Silica nanowires (1)
- Silicate glasses (1)
- Silicon (1)
- Silver (1)
- Simulation (1)
- Single crystal fiber (1)
- Sinter/sintering (1)
- Sliding friction (1)
- Small-angle x-ray scattering (1)
- Sn catalysts (1)
- Soft matter (1)
- Soyean oil (1)
- Spalling (1)
- Spannungsrissbeständigkeit (1)
- Specific heat spectroscopy (1)
- Specific surface (1)
- Spectroelectrochemistry (1)
- Spectroscopic ellipsomety (1)
- Sphingan (1)
- Spontane Polarisation (1)
- Spot welding (1)
- Spot welds (1)
- Spring Meeting 2016 (1)
- Stabilising agents (1)
- Stability (1)
- Standard (1)
- Standards (1)
- Stapeldruckprüfung (1)
- Starch (1)
- Static monitoring (1)
- Steam (1)
- Steel reinforced concrete (1)
- Stern Geary constant (1)
- Stern-Geary-Konstante (1)
- Stofftransport (1)
- Strengthening (1)
- Stress-strain behavior (1)
- Strontium yttrate (1)
- Structural Health Monitoring (1)
- Structural integrity (1)
- Structural properties (1)
- Structural relaxation (1)
- Structure solution (1)
- Sub-aerial biofilms (SAB) (1)
- Substitute model (1)
- Sulfobetaines (1)
- Supercapacitor (1)
- Superconducting magnets (1)
- Superconductor (1)
- Supercritical CO2 (1)
- Superparamagnetic nanoparticles (1)
- Superplasticity (1)
- Supra molecular polymerization (1)
- Surface analysis (1)
- Surface coating (1)
- Surface functionalization (1)
- Surface plasmon (1)
- Surface plasmon polariton (1)
- Surface plasmon resonance (1)
- Surface tension (1)
- Surface texture (1)
- Surface treatment (1)
- Surface wetting (1)
- Sustainability assessment (1)
- Symbiosis (1)
- Synchrotron X-ray diffraction (1)
- Synchrotron, BAMline (1)
- Synthesis (1)
- TEM (1)
- TENSTAND WP4 Final Report (1)
- TIG-welding (1)
- TMF (1)
- Talbot-Lau interferometer (1)
- Tandem gas metal arc welding (1)
- Tandem welding (1)
- Target plate material (1)
- Temper (1)
- Temperature (1)
- Tensile behavior (1)
- Tensile loading (1)
- Tensile properties (1)
- Tensile strength (1)
- Tensile testing procedure (1)
- Test methods (1)
- The charge transfer and ionization process (CTI) (1)
- Theory (1)
- Thermal desorption spectrometry (TDS) (1)
- Thermal diffusivity (1)
- Thermal softening (1)
- Thermische Diffusivität (1)
- Thermo-mechanical fatigue (1)
- Thermomechanical Fatigue (TMF) (1)
- Thermomechanical fatigue (1)
- Thermoresponsive polymers (1)
- Thermoresponsive polymres (1)
- Thick films (1)
- Thin film metrology (1)
- Thin polymeric films (1)
- Thiol (1)
- Three-dimensional printing (1)
- Ti-6Al-4V (1)
- Time-of-flight secondary ion mass spectrometry (1)
- Tin catalysts (1)
- Titanite (1)
- Titanium alloy (1)
- Titanium alloys (1)
- Titanium dioxide (1)
- Titanium nitride films (1)
- Top-down (1)
- Transesterification (1)
- Transfer layer (1)
- Transformable steels (1)
- Transformation induced plasticity (1)
- Transmission Kikuchi diffraction (1)
- Transparent conductive oxides (1)
- Transport processes (1)
- UCST-type copolymer (1)
- UHMWPE (1)
- UN-GHS (1)
- UV radiation (1)
- UV/Vis and emission spectroscopy (1)
- Ultra thin polymer films (1)
- Ultra-Hochleistungsbeton (1)
- Ultrafast microscopy (1)
- Ultrasonic (1)
- Ultrasonic echo technique (1)
- Ultrasonic velocity (1)
- Uncertainty (1)
- Upconverion (1)
- VOC (1)
- Vapor-phase hydrofluorination (1)
- Vertebral (1)
- Vinyl fluoride (1)
- Void nucleation & growth (1)
- Volatile organic compound (1)
- Volumenbruchteil (1)
- Vorlagerungszeit (1)
- Vulcanisation system (1)
- Water oxydation catalysis (1)
- Welded Plate Girders (1)
- Welding residual stress (1)
- Welding residual stresses (1)
- Wärmebehandlung (1)
- X-ray CT (1)
- X-ray absorption fine structure (1)
- X-ray absorption near-edge structure (1)
- X-ray computer tomography (1)
- X-ray diffraction (1)
- X-ray diffractometry (XRD) (1)
- X-ray phase contrast (1)
- XAFS (1)
- XANES (1)
- XPS (1)
- Yb(III) (1)
- Yellowness index (1)
- Young's modulus (1)
- Young’s modulus (1)
- Zinc (1)
- Zinc(II) complexes (1)
- Zink (1)
- Zn-Fe-Zr nanoparticles (1)
- Zonierung (1)
- Zr(iV) compounds (1)
- biomineralization (1)
- calcium carbonate (1)
- microwave synthesis (1)
- nanoparticles (1)
- nucleation (1)
- photocatalysis (1)
- polymer additives (1)
- µCT (1)
- α-1,4- and α-1,6-glucans (1)
- β-eucryptite (1)
Many engineering structures are nowadays made of composite materials or metal foam. These modern engineering materials contain very complex inner geometry. To simulate the deformational behaviour of these structures often requires a high number of discretisation elements. This in turn yields a very large system of linear equations that are extremely time and memory consuming or practically impossible to solve. It is therefore desirable to find an approach to overcome this obstacle. In this paper a numerical method is proposed to find an approximate substitute model for geometrical complex structures.
Efficient water oxidation catalysts are required for the development of water splitting technologies. Herein, the synthesis of layered hybrid NiFephenylphosphonate compounds from metal acetylacetonate precursors and phenylphosphonic acid in benzyl alcohol, and their Oxygen evolution reaction performance in alkaline medium, are reported. The hybrid particles are formed by inorganic layers of NiO6 and FeO6 distorted octahedra separated by bilayers of the organic group, and template the Formation in situ of NiFe hydroxide nanosheets of sizes between 5 and 25 nm and thicknesses between 3 and 10 nm. X-ray absorption spectroscopy measurements suggest that the hybrid also acts as a template for the local structure of the metal sites in the active catalyst, which remain distorted after the transformation. Optimum electrocatalytic activity is achieved with the hybrid compound with a Fe content of 16%. The combination of the synergistic effect between Ni and Fe with the structural properties of the hybrid results in an efficient catalyst that generates a current density of 10 mA cm−2 at an overpotential of 240 mV, and also in a stable catalyst that operates continuously at low overpotentials for 160 h.
Miniaturized pacemakers with a surface consisting of a Ti alloy may have to be removed after several years from their implantation site in the heart and shall, therefore, not be completely overgrown by cells or tissue. A method to avoid this may be to create at the surface by laser-ablation self-organized sharp conical spikes, which provide too little surface for cells (i.e., fibroblasts) to grow on. For this purpose, Ti-alloy substrates were irradiated in the air by 790 nm Ti:sapphire femtosecond laser pulses at fluences above the ablation threshold. The laser irradiation resulted in pronounced microstructure formation with hierarchical surface morphologies. Murine fibroblasts were seeded onto the laser-patterned surface and the coverage by cells was evaluated after 3–21 days of cultivation by means of scanning electron microscopy. Compared to flat surfaces, the cell density on the microstructures was significantly lower, the coverage was incomplete, and the cells had a clearly different morphology. The best results regarding suppression of cell growth were obtained on spike structures which were additionally electrochemically oxidized under acidic conditions. Cell cultivation with additional shear stress could reduce further the number of adherent cells.
Photoluminescence techniques are amongst the most widely used Tools in the life sciences, with new and exciting applications in medical diagnostics and molecular Imaging continuously emerging. Advantages include their comparative ease of use, unique sensitivity, non-invasive character, and potential for Multiplexing, remote sensing, and miniaturization. General drawbacks are, however, signals, that contain unwanted wavelength- and polarization contributions from Instrument-dependent effects, which are also time-dependent due to aging of Instrument-components, and difficulties to measure absolute flourescence entensities. Moreover, scattering Systems require Special measurement geometries and the interest in new optical Reporters with Emission > 1000 nm strategies for reliable measurements in the second diagnostic for the comparison of material Performance and the rational designg of new flourophores with improved properties.
Here, we present strategies to versatile method-adaptable liquid and solid flourescence Standards for different flourescence paramters including traceable Instrument calibration procedures and the design of integrating spere setups for the absolute measurements of emission spectra and Quantum yields in the wavelength Region of 350 to 1600 nm. Examples are multi-Emitter glasses, spectral flourescence Standards, and quantum yield Standards for the UV/vis/NIR.
One of the fundamental principles of the UN-GHS (Globally Harmonized System of Classification and Labelling of Chemicals) is that all hazards of a chemical should be assigned and communicated. There is no general prioritization of hazards in the sense that certain hazard classes are not applicable if another one has been assigned. In contrast to health and environmental hazards, there are physical or chemical factors which preclude certain combinations of physical hazard classes. So far, there is no common understanding as to which combinations are relevant and which not. For example, should a pyrophoric liquid be classified as flammable liquid in addition, or is this redundant and unnecessary? In the course of the implementation of the GHS by countries or sectors and the actual application by industry all over the world, such questions become more and more important.
This publication systematically discusses all combinations of the UN-GHS physical hazard classes and assesses them with regard to the relevance of possible simultaneous assignment to a chemical. For many of the combinations an unambiguous decision based on theGHS alone is not possible, thus confirming that the question which physical hazard classes might be assigned simultaneously to a chemical is not trivial. As one more milestone on the path to a globally harmonized system for the classification of hazardous chemicals, this should be discussed and ultimately solved on a global basis. It is the hope that this publication might serve as an impetus for such discussions.
In this study, thickness related changes of the optical properties of doped tin oxide were studied. Two different sets of samples were prepared. The first set was doped with iron or nickel on silicon substrate with thicknesses of 29–56 nm, the second was iron doped on gold/glass substrate with 1.6–6.3 nm. The optical constants were determined by using spectral ellipsometry (SE) followed by modelling of the dielectric function with an oscillator model using Gaussian peaks. The analysis of the optical constants shows a dependence of the refraction and the absorption on the thickness of the doped tin oxide coating. In addition to the tin oxide absorption in the UV, one additional absorption peak was found in the near-IR/red which is related to plasmonic effects due to the doping. This peak shifts from the near-IR to the red part of the visible spectrum and becomes stronger by reducing the thickness, probably due to the formation of metal nanoparticles in this layer. These results were found for two different sets of samples by using the same optical model. Afterwards the second sample set was tested in the Surface Plasmon Resonance Enhanced Ellipsometric (SPREE) gas measurement with CO gas. It was found that the thickness has significant influence on the sensitivity and thus the adsorption of the CO gas. By increasing the thickness from 1.6 nm to 5.1 nm, the sensing ability is enhanced due to a higher coverage of the surface with the over coating. This is explained by the high affinity of CO molecules to the incorporated Fe-nanoparticles in the tin oxide coating. By increasing the thickness further to 6.3 nm, the sensing ability drops because the layer disturbs the SPR sensing effect too much.
The breadth of applications of nanoparticles and the access to food-associated consumer products containing nanosized materials lead to oral human exposure to such particles. In biological fluids nanoparticles dynamically interact with biomolecules and form a protein corona. Knowledge about the protein corona is of great interest for understanding the molecular effects of particles as well as their fate inside the human body. We used a mass spectrometry-based toxicoproteomics approach to elucidate mechanisms of toxicity of silver nanoparticles and to comprehensively characterize the protein corona formed around silver nanoparticles in Caco-2 human intestinal epithelial cells. Results were compared with respect to the cellular function of proteins either affected by exposure to nanoparticles or present in the protein corona. A transcriptomic data set was included in the analyses in order to obtain a combined multiomics view of nanoparticle-affected cellular processes. A relationship between corona proteins and the proteomic or transcriptomic responses was revealed, showing that differentially regulated proteins or transcripts were engaged in the same cellular signaling pathways. Protein corona analyses of nanoparticles in cells might therefore help in obtaining information about the molecular consequences of nanoparticle treatment.
The nucleophilic thiol–ene (thia-Michael) reaction between molecular rods bearing terminal thiols and bis-maleimides was investigated. The molecular rods have oligospiroketal (OSK) and oligospirothioketal (OSTK) backbones. Contrary to the expectations, cyclic oligomers were always obtained instead of linear rigid-rod polymers. Replacing the OS(T)K rods with a flexible chain yielded polymeric products, suggesting that the OS(T)K structure is responsible for the formation of cyclic products. The reason for the preferred formation of cyclic products is due to the presence of folded conformations, which have already been described for articulated rods.
Unraveling the Dynamics of Nanoscopically Confined PVME in Thin Films of a Miscible PVME/PS Blend
(2017)
Broadband dielectric spectroscopy (BDS) was employed to investigate the glassy dynamics of thin films (7−200 nm) of a poly(vinyl methyl ether) (PVME)/polystyrene (PS) blend (50:50 wt %). For BDS measurements, nanostructured capacitors (NSCs) were employed, where films are allowed a free surface. This method was applied for film thicknesses up to 36 nm. For thicker films, samples were prepared between crossed electrode capacitors (CECs). The relaxation spectra of the films showed multiple processes. The first process was assigned to the α-relaxation of a bulklike layer. For films measured by NSCs, the rates of α-relaxation were higher compared to those of the bulk blend. This behavior was related to the PVME-rich free surface layer at the polymer/air interface. The second process was observed for all films measured by CECs (process X) and the 36 nm film measured by NSCs (process X2). This process was assigned to fluctuations of constraint PVME segments by PS. Its activation energy was found to be thickness-dependent because of the evidenced thickness dependency of the compositional heterogeneity. Finally, a third process with an activated temperature dependence was observed for all films measured by NSCs (process X1). It resembled the molecular fluctuations in an adsorbed layer found for thin films of pure PVME, and thus, it is assigned accordingly. This process undergoes an extra confinement because of frozen adsorbed PS segments at the polymer/substrate interface. To our knowledge, this is the first example where confinement-induced changes were observed by BDS for blend thin films
L-Lactide is polymerized in bulk at 160 8C either with dibutyltin bis(benzylmercaptide) (SnSBzl), dibutyltin bis(benzothiazole 2-mercaptide) (SnMBT), or with dibutyltin bis(pentafluorothiophenolate) (SnSPF) as catalysts. SnSBzl yields linear polylactides having benzylthio-ester end groups in addition to cyclic polylactides, whereas SnMBT and SnSPF mainly or exclusively yield cyclic polylactides. This finding, together with model reactions, indicates that the SnS catalysts promote a combined ring-opening polymerization and polycondensation process including end-to-end cyclization. SnMBT caused slight racemization (3%–5%), when used at 160 8C. With SnSPF optically pure cyclic poly(L-lactide)s with high-molecular weights can be prepared at 160 8C.
Nanocomposites based on poly(L-lactide) (PLA) and organically modified Ni/Al layered double hydroxides (NiAl/LDHs) are prepared by melt blending and investigated by a combination of size exclusion chromatography, differential scanning calorimetry (DSC), small-angle X-ray scattering (SAXS), wide-angle X-ray scattering, and broadband dielectric spectroscopy. A detailed comparison to the behavior of the corresponding MgAl/LDH–PLA nanocomposites is made. SAXS investigations show that the morphology of the NiAl/LDH–PLA nanocomposites is more intercalated compared to the MgAl/LDH based PLA nanocomposite, which is more exfoliated. The DSC investigation gives a different dependence of the degree of crystallization on the concentration of LDH for NiAl/LDH–PLA than for MgAl/LDH–PLA nanocomposite system. These differences are discussed taking the differences of the morphologies of both systems into account. Broadband dielectric spectroscopy reveals information about the molecular dynamics where essential differences are observed for all relaxation processes taking place in both systems which were related to the different morphologies.
The quantum yield is a critically important parameter in the development of lanthanide-based upconverting nanoparticles (UCNPs) for use as novel contrast agents in biological imaging and optical reporters in assays. The present work focuses on the influence of the beam Profile in measuring the quantum yield (f) of nonscattering dispersions of nonlinear upconverting probes, by establishing a relation between f and excitation light power density from a rate equation analysis. A resulting 60% correction in the measured f due to the beam profile utilized for excitation underlines the significance of the beam profile in such measurements, and its impact when comparing results from different Setups and groups across the world.
In concrete elements, simultaneously subjected to cyclic loadings and external alkalis, the risk for damage caused by or under participation of an alkali-silica reaction (ASR) is particularly high. This is of particular concern for concrete pavements due to the increasing heavy vehicle traffic and the application of sodium chloride (NaCl) de-icer during winter. Since 2004, the climate simulation concrete prism test (CS-CPT) has been used successfully to evaluate job mixtures for pavements by considering the impact of alkali-containing de-icers. However, the role of mechanical predamage on ASR is largely unclear. In a joint research project, the CS-CPT has been used to investigate the influence of preexisting microcracks on ASR. It was evident that an ASR initiated earlier in the predamaged concrete prisms due to the more rapid ingress of NaCl solution through the microcracks.
Approximation of the crack driving force for cracks at notches under static and cyclic loading
(2017)
The work deals with the efficient calculation of the elastic-plastic crack driving force (J-integral for monotonic loading andΔJ-integral under cyclic loading) for short cracks at notches as essential parameter for the reliable static and fatigue assessment of notched structures. The J- or ΔJ-integral is calculated based on analytical solutions for stress intensity factors, estimated by means of well-known weight function solutions in the case of cracks under power-law stress distributions. A plasticity-correction function is applied to the stress intensity factors to obtain the final expression of the crack driving force. The comparison between analytical solutions and finite element calculations in case of cracks at the weld toe in welded joints shows good agreement.
One of the great strengths of X-ray computed tomography over conventional inspection methods (ultrasound, thermography, radiography) is that it can image damage in 3D. However for curved ordeformed composite panels it can be difficult to automatically ascribe the damage to specific plies or inter-ply interfaces. An X-ray computed tomography (CT) data processing methodology is developed to extract the through-thickness distribution of damage in curved or deformed composite panels. The method is applied to [(0°/90°)2]s carbon fibre reinforced polymer (CFRP) panels subjected low velocity impact damage (5 J up to 20 J) providing 3D ply-by-ply damage visualisation and analysis. Our distance transform approach allows slices to be taken that approximately follow the composite curvature allowing the impact damage to be separated, visualised and quantified in 3D on a ply-by-ply basis. In this way the interply delaminations have been mapped, showing characteristic peanut shaped delaminations with the major axis oriented with the fibres in the ply below the interface. This registry to the profile of the panel constitutes a significant improvement in our ability to characterise impact damage in composite laminates and extract relevant measurements from X-ray CT datasets.
The 7th International Conference on Spectroscopic Ellipsometry (ICSE-7) was held in Berlin in June 2016, jointly organised by ICSE and BAM. The publication of the proceedings special issue in Applied Surface Science follows this event. In the special issue, about 100 articles on current topics of optics and surface science related to ellipsometry, polarimetry, and similar techniques are presented, underpinning the high significance of these techniques for many fields of materials science.
If fracture mechanics shall be applied to the total lifetime respectively the fatigue limit of components (within the meaning of the S-N curve approach) it has to address four challenges:
(a) It has to adequately describe so-called short crack propagation, which cannot be based on the common long crack concepts for principle reasons. Since the crack size is in the order of the plastic zone size, the modelling of short crack propagation cannot be based on the common linear elastic Delta K concept. Instead, an elastic-plastic parameter such as the cyclic J integral has to be applied. A second point is that the crack closure concept has to be modified in that the crack opening stress is not a constant, crack size- independent parameter but shows a transient behaviour with increasing short crack size.
(b) It has to provide a meaningful definition of the initial crack dimensions as the starting point for an S-N curve relevant (residual) lifetime analysis. This can be based either on the (statistical) size of material defects which can be treated as cracks or by the size of the crack which would arrest subsequent to early crack propagation, whatever is larger.
(c) It has to cope with the problem of multiple cracks for load levels higher than the fatigue limit such as it occurs in many applications in the absence of very large initial defects.
(d) This requires consequent statistical treatment taking into account variations in the local geometry of the area where crack initiation has to be expected as well as the scatter in the initial crack size and in the material data used for the analyses.
The unparalleled excited-state potential-energy landscape of the chromium(III)-based dye [1]3+ ([Cr(ddpd)2]3+; ddpd=N,N’-dimethyl-N,N’-dipyridin-2-ylpyridin-2,6-diamine) enables a strong dual emission in the near infrared region. The temperature dependence of this dual emission allows the use of [1]3+ as an unprecedented molecular ratiometric thermometer in the 210–373 K temperature range in organic and in aqueous media. Incorporation of [1]3+ in biocompatible nanocarriers, such as 100 nm-sized polystyrene nanoparticles and solutol micelles, provides nanodimensional thermometers operating under physiological conditions.
The mechanochemical Knoevenagel condensation of malononitrile with p-nitrobenzaldehyde was studied in situ using a tandem approach. X-ray diffraction and Raman spectroscopy were combined to yield time-resolved information on the milling process. Under solvent-free conditions, the reaction leads to a quantitative conversion to p-nitrobenzylidenemalononitrile within 50 minutes. The in situ data indicate that the process is fast and proceeds under a direct conversion. After stopping the milling process, the reaction continues until complete conversion. The continuous and the stopped milling process both result in crystalline products suitable for single crystal X-ray diffraction.
The practical performance of surface coatings in applications like catalysis, water splitting or batteries depends critically on the coating materials’ porosity. Determining the porosity in a fast and nondestructive way is still an unsolved problem for industrial thin-films technology. As a contribution to calibrated, non-destructive, optical layer characterisation, we present a multi-method comparison study on porous TiO2 films deposited by sol-gel synthesis on Si wafers. The ellipsometric data were collected on a range of samples with different TiO2 layer thickness and different porosity values. These samples were produced by templated sol-gel synthesis resulting in layers with a well-defined pore size and pore density. The ellipsometry measurement data were analysed by means of a Bruggeman effective medium approximation (BEMA), with the aim to determine the mixture ratio of void and matrix material by a multi-sample analysis strategy. This analysis yielded porosities and layer thicknesses for all samples as well as the dielectric function for the matrix material. Following the idea of multi-method techniques in metrology, the data was referenced to imaging by electron microscopy (SEM) and to a new EPMA (electron probe microanalysis) porosity approach for thin film analysis. This work might lead to a better metrological understanding of optical porosimetry and also to better-qualified characterisation methods for nano-porous layer systems.
1. IntroductionPorous materials, especially porous thin films play an importantrole in chemical and physical technology in every case where thecontact area between two media has to be maximised. From cataly-sis to photochemistry and photovoltaics, the applications of porouslayer materials are diverse and numerous [1–6].The accurate and non-destructive characterisation of porousfilms for layered systems poses a challenge. This applies especiallyfor the key parameter of porous films, their porosity, i.e. the mix-ing ratio between the Matrix of the film (host material) and thepore volume which is empty or filled with a fluid medium (inclu-sions). This parameter influences most of the physical and chemicalproperties of a porous thin film and is therefore essential for theunderstanding as well as the optimisation of this class of materials.