4 resultados para GaN Buffer

em Universitätsbibliothek Kassel, Universität Kassel, Germany


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This work focuses on the analysis of the influence of environment on the relative biological effectiveness (RBE) of carbon ions on molecular level. Due to the high relevance of RBE for medical applications, such as tumor therapy, and radiation protection in space, DNA damages have been investigated in order to understand the biological efficiency of heavy ion radiation. The contribution of this study to the radiobiology research consists in the analysis of plasmid DNA damages induced by carbon ion radiation in biochemical buffer environments, as well as in the calculation of the RBE of carbon ions on DNA level by mean of scanning force microscopy (SFM). In order to study the DNA damages, besides the common electrophoresis method, a new approach has been developed by using SFM. The latter method allows direct visualisation and measurement of individual DNA fragments with an accuracy of several nanometres. In addition, comparison of the results obtained by SFM and agarose gel electrophoresis methods has been performed in the present study. Sparsely ionising radiation, such as X-rays, and densely ionising radiation, such as carbon ions, have been used to irradiate plasmid DNA in trishydroxymethylaminomethane (Tris buffer) and 4-(2-hydroxyethyl)-1-piperazineethanesulfonic acid (HEPES buffer) environments. These buffer environments exhibit different scavenging capacities for hydroxyl radical (HO0), which is produced by ionisation of water and plays the major role in the indirect DNA damage processes. Fragment distributions have been measured by SFM over a large length range, and as expected, a significantly higher degree of DNA damages was observed for increasing dose. Also a higher amount of double-strand breaks (DSBs) was observed after irradiation with carbon ions compared to X-ray irradiation. The results obtained from SFM measurements show that both types of radiation induce multiple fragmentation of the plasmid DNA in the dose range from D = 250 Gy to D = 1500 Gy. Using Tris environments at two different concentrations, a decrease of the relative biological effectiveness with the rise of Tris concentration was observed. This demonstrates the radioprotective behavior of the Tris buffer solution. In contrast, a lower scavenging capacity for all other free radicals and ions, produced by the ionisation of water, was registered in the case of HEPES buffer compared to Tris solution. This is reflected in the higher RBE values deduced from SFM and gel electrophoresis measurements after irradiation of the plasmid DNA in 20 mM HEPES environment compared to 92 mM Tris solution. These results show that HEPES and Tris environments play a major role on preventing the indirect DNA damages induced by ionising radiation and on the relative biological effectiveness of heavy ion radiation. In general, the RBE calculated from the SFM measurements presents higher values compared to gel electrophoresis data, for plasmids irradiated in all environments. Using a large set of data, obtained from the SFM measurements, it was possible to calculate the survive rate over a larger range, from 88% to 98%, while for gel electrophoresis measurements the survive rates have been calculated only for values between 96% and 99%. While the gel electrophoresis measurements provide information only about the percentage of plasmids DNA that suffered a single DSB, SFM can count the small plasmid fragments produced by multiple DSBs induced in a single plasmid. Consequently, SFM generates more detailed information regarding the amount of the induced DSBs compared to gel electrophoresis, and therefore, RBE can be calculated with more accuracy. Thus, SFM has been proven to be a more precise method to characterize on molecular level the DNA damage induced by ionizing radiations.

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The rapid growth in high data rate communication systems has introduced new high spectral efficient modulation techniques and standards such as LTE-A (long term evolution-advanced) for 4G (4th generation) systems. These techniques have provided a broader bandwidth but introduced high peak-to-average power ratio (PAR) problem at the high power amplifier (HPA) level of the communication system base transceiver station (BTS). To avoid spectral spreading due to high PAR, stringent requirement on linearity is needed which brings the HPA to operate at large back-off power at the expense of power efficiency. Consequently, high power devices are fundamental in HPAs for high linearity and efficiency. Recent development in wide bandgap power devices, in particular AlGaN/GaN HEMT, has offered higher power level with superior linearity-efficiency trade-off in microwaves communication. For cost-effective HPA design to production cycle, rigorous computer aided design (CAD) AlGaN/GaN HEMT models are essential to reflect real response with increasing power level and channel temperature. Therefore, large-size AlGaN/GaN HEMT large-signal electrothermal modeling procedure is proposed. The HEMT structure analysis, characterization, data processing, model extraction and model implementation phases have been covered in this thesis including trapping and self-heating dispersion accounting for nonlinear drain current collapse. The small-signal model is extracted using the 22-element modeling procedure developed in our department. The intrinsic large-signal model is deeply investigated in conjunction with linearity prediction. The accuracy of the nonlinear drain current has been enhanced through several issues such as trapping and self-heating characterization. Also, the HEMT structure thermal profile has been investigated and corresponding thermal resistance has been extracted through thermal simulation and chuck-controlled temperature pulsed I(V) and static DC measurements. Higher-order equivalent thermal model is extracted and implemented in the HEMT large-signal model to accurately estimate instantaneous channel temperature. Moreover, trapping and self-heating transients has been characterized through transient measurements. The obtained time constants are represented by equivalent sub-circuits and integrated in the nonlinear drain current implementation to account for complex communication signals dynamic prediction. The obtained verification of this table-based large-size large-signal electrothermal model implementation has illustrated high accuracy in terms of output power, gain, efficiency and nonlinearity prediction with respect to standard large-signal test signals.

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We investigate the effect of the epitaxial structure and the acceptor doping profile on the efficiency droop in InGaN/GaN LEDs by the physics based simulation of experimental internal quantum efficiency (IQE) characteristics. The device geometry is an integral part of our simulation approach. We demonstrate that even for single quantum well LEDs the droop depends critically on the acceptor doping profile. The Auger recombination was found to increase stronger than with the third power of the carrier density and has been found to dominate the droop in the roll over zone of the IQE. The fitted Auger coefficients are in the range of the values predicted by atomistic simulations.

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Wenn sich in einem wichtigen Bereich der Elektrotechnik ein neues Halbleitermaterial zu etablieren beginnt, weckt dies einerseits Erwartungen der Wirtschaft und Industrie, andererseits kann es eine erhebliche Herausforderung für die Hersteller bedeuten. Nachdem Gallium-Nitrid erstmalig vor 20 Jahren als Transistor verwendet wurde und seit über einer Dekade serienmäßig in der Hochfrequenztechnik eingesetzt wird, erobert es nun die Leistungselektronik. Die ausschlaggebenden Kriterien sind hier die Verwendbarkeit bei höheren Betriebstemperaturen, die Energieeffizienz und die Reduzierung von Größe und Gewicht durch den Betrieb bei höheren Schaltfrequenzen. Die vorliegende Arbeit basiert auf der Motivation zunächst einen möglichst breit angelegten Überblick des ständig wachsenden Angebotsspektrums zu geben, das mittlerweile durch die vielfältigen Varianten der verfügbaren Transistoren an Übersichtlichkeit etwas verloren hat. Nach einer ausführlichen Erläuterung der physikalischen und elektrischen Eigenschaften, werden die jeweiligen Typen in überschaubaren Abschnitten beschrieben und im Anschluss tabellarisch zusammengefasst. Die elektrischen Eigenschaften der hier ausgewählten EPC 2010 eGaN-HFETs (200 V Spannungsklasse) werden eingehend diskutiert. Das Schaltverhalten der eGaN-HFETs in einem Synchron-Tiefsetzsteller wird untersucht und modelliert. Eine Analyse aller in den GaN-FETs entstehenden Verlustleistungen wird durchgeführt. Zur Abschätzung der dynamischen Verlustleistungen wird eine analytische Methode umgesetzt und weiter entwickelt. Um die Vorteile der erhöhten Schaltfrequenzen nutzen zu können, erfolgt eine sehr ausführliche Betrachtung der notwendigen magnetischen Komponenten, deren Auswahl- und Verwendungskriterien im Detail untersucht, evaluiert und aufgegliedert werden. Diese werden im praktischen Teil ausgiebig in Verbindung mit den GaN-Transistoren ausgesucht und messtechnisch bewertet. Theoretische Betrachtungen hinsichtlich der Grenzen, die magnetische Bauelemente schnell schaltenden Halbleitern auferlegen, werden durchgeführt. Da die untersuchten Niedervolt-GaN-HFETs quasi kein Gehäuse haben, ist eine korrekte Strommessung nicht realisierbar. Am praktischen Beispiel eines Synchron-Tiefsetzstellers werden zwei experimentelle Methoden entwickelt, mit deren Hilfe die Verlustleistungen in den EPC 2010 eGaN-HFETs ermittelt werden. Anschließend wird das Verbesserungspotential der GaN-Leistungstransistoren erläutert sowie deren Anwendungsbereiche diskutiert.