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Die wachsende Produktpalette von z. B. Pharmazeutika geht mit einer steigenden Nachfrage für hochsensitive/schonende Aufreinigungstechniken einher. Bisherige Verfahren führen oft zu geringer Reinheit und verminderter Bioaktivität, zeigen eine Limitation der Analytengröße oder bedingen dessen Modifikation. Durch die Kombination von mikroskaligen Magnetpartikeln und spezifisch wechselwirkenden Einzelstrang-DNA-Oligonukleotiden, den sog. ssDNA-Aptameren, sind eine höhere Selektivität/Reinheit und eine Automatisierung möglich. In diesem Kontext werden zum einen ssDNA-Amplifikationstechniken und zum anderen der praktische Einsatz von Aptameren in einer Magnetseparation vorgestellt. Die ssDNA-Synthese basiert auf einem In-vivo-dsDNA-Produktionsschritt mittels eines rekombinanten Escherichia coli. Die als High-copy-Plasmid organisierte Sequenz wird in vitro durch Kombination verschiedener enzymatischer Reaktionen in die funktionelle ssDNA überführt. Diese Technik bedingt nur minimale Instrumentierung bzw. Prozessregelung. Die zweite Synthesetechnik wird in Form eines In-vitro-Amplifikationsverfahrens realisiert und beruht auf dem Prinzip einer PCR (Potenzial zu einer Automatisierung bzw. Miniaturisierung). Die gewonnenen Aptamere werden im Anschluss in einem auf Magnetpartikeln basierten Trennverfahren zur Isolationvon 6xHis-tag-Proteinen bezüglich ihrer Eigenschaften untersucht.
Deoxyribonucleic acid (DNA) and protein recognition are now standard tools in biology. In addition, the special optical properties of microsphere resonators expressed by the high quality factor (Q-factor) of whispering gallery modes (WGMs) or morphology dependent resonances (MDRs) have attracted the attention of the biophotonic community. Microsphere-based biosensors are considered as powerful candidates to achieve label-free recognition of single molecules due to the high sensitivity of their WGMs. When the microsphere surface is modified with biomolecules, the effective refractive index and the effective size of the microsphere change resulting in a resonant wavelength shift. The transverse electric (TE) and the transverse magnetic (TM) elastic light scattering intensity of electromagnetic waves at 600 and 1400 nm are numerically calculated for DNA and unspecific binding of proteins to the microsphere surface. The effect of changing the optical properties was studied for diamond (refractive index 2.34), glass (refractive index 1.50), and sapphire (refractive index 1.75) microspheres with a 50 µm radius. The mode spacing, the linewidth of WGMs, and the shift of resonant wavelength due to the change in radius and refractive index, were analyzed by numerical simulations. Preliminary results of unspecific binding of biomolecules are presented. The calculated shift in WGMs can be used for biomolecules detection.
We present a new approach to the problem of optimal control of solar sails for low-thrust trajectory optimization. The objective was to find the required control torque magnitudes in order to steer a solar sail in interplanetary space. A new steering strategy, controlling the solar sail with generic torques applied about the spacecraft body axes, is integrated into the existing low-thrust trajectory optimization software InTrance. This software combines artificial neural networks and evolutionary algorithms to find steering strategies close to the global optimum without an initial guess. Furthermore, we implement a three rotational degree-of-freedom rigid-body attitude dynamics model to represent the solar sail in space. Two interplanetary transfers to Mars and Neptune are chosen to represent typical future solar sail mission scenarios. The results found with the new steering strategy are compared to the existing reference trajectories without attitude dynamics. The resulting control torques required to accomplish the missions are investigated, as they pose the primary requirements to a real on-board attitude control system.
Often, detailed simulations of heat conduction in complicated, porous media have large runtimes. Then homogenization is a powerful tool to speed up the calculations by preserving accurate solutions at the same time. Unfortunately real structures are generally non-periodic, which requires unpractical, complicated homogenization techniques. We demonstrate in this paper, that the application of simple, periodic techniques to realistic media, that are just close to periodic, gives accurate, approximative solutions. In order to obtain effective parameters for the homogenized heat equation, we have to solve a so called “cell problem”. In contrast to periodic structures it is not trivial to determine a suitable unit cell, which represents a non-periodic media. To overcome this problem, we give a rule of thumb on how to choose a good cell. Finally we demonstrate the efficiency of our method for virtually generated foams as well as real foams and compare these results to periodic structures.
Air- and water-stable phenyl complexes with nitridotechnetium(V) cores can be prepared by straightforward procedures. [TcNPh2(PPh3)2] is formed by the reaction of [TcNCl2(PPh3)2] with PhLi. The analogous N-heterocyclic carbene (NHC) compound [TcNPh2(HLPh)2], where HLPh is 1,3,4-triphenyl-1,2,4-triazol-5-ylidene, is available from (NBu4)[TcNCl4] and HLPh or its methoxo-protected form. The latter compound allows the comparison of different Tc–C bonds within one compound. Surprisingly, the Tc chemistry with such NHCs does not resemble that of corresponding Re complexes, where CH activation and orthometalation dominate.
Assessment of RF Safety of Transmit Coils at 7 Tesla by Experimental and Numerical Procedures (490.)
(2012)
Aufbau von Handelseinheiten
(2012)