5 resultados para Energy consumption pattern, Rural energy consumption pattern in Kerala

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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Currently pi-conjugated polymers are considered as technologically interesting materials to be used as functional building elements for the development of the new generation of optoelectronic devices. More specifically during the last few years, poly-p-phenylene materials have attracted considerable attention for their blue photoluminescence properties. This Thesis deals with the optical properties of the most representative blue light poly-p-phenylene emitters such as poly(fluorene), oligo(fluorene), poly(indenofluorene) and ladder-type penta(phenylene) derivatives. In the present work, laser induced photoluminescence spectroscopy is used as a major tool for the study of the interdependence between the dynamics of the probed photoluminescence, the molecular structures of the prepared polymeric films and the presence of chemical defects. Complementary results obtained by two-dimensional wide-angle X-ray diffraction are reported. These findings show that the different optical properties observed are influenced by the intermolecular solid-state interactions that in turn are controlled by the pendant groups of the polymer backbone. A significant feedback is delivered regarding the positive impact of a new synthetic route for the preparation of a poly(indenofluorene) derivative on the spectral purity of the compound. The energy transfer mechanisms that operate in the studied systems are addressed by doping experiments. After the evaluation of the structure/property interdependence, a new optical excitation pathway is presented. An efficient photon low-energy up-conversion that sensitises the blue emission of poly(fluorene) is demonstrated. The observed phenomenon takes place in poly(fluorene) derivatives hosts doped with metallated octaethyl porphyrins, after quasi-CW photoexcitation of intensities in the order of kW/cm2. The up-conversion process is parameterised in terms of temperature, wavelength excitation and central metal cation in the porphyrin ring. Additionally the observation of the up-conversion is extended in a broad range of poly-p-phenylene blue light emitting hosts. The dependence of the detected up-conversion intensity on the excitation intensity and doping concentration is reported. Furthermore the dynamics of the up-conversion intensity are monitored as a function of the doping concentration. These experimental results strongly suggest the existence of triplet-triplet annihilation events into the porphyrin molecules that are subsequently followed by energy transfer to the host. After confirming the occurrence of the up-conversion in solutions, cyclic voltammetry is used in order to show that the up-conversion efficiency is partially determined from the energetic alignment between the HOMO levels of the host and the dopant.

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Conjugated polymers have attracted tremendous academical and industrial research interest over the past decades due to the appealing advantages that organic / polymeric materials offer for electronic applications and devices such as organic light emitting diodes (OLED), organic field effect transistors (OFET), organic solar cells (OSC), photodiodes and plastic lasers. The optimization of organic materials for applications in optoelectronic devices requires detailed knowledge of their photophysical properties, for instance energy levels of excited singlet and triplet states, excited state decay mechanisms and charge carrier mobilities. In the present work a variety of different conjugated (co)polymers, mainly polyspirobifluorene- and polyfluorene-type materials, was investigated using time-resolved photoluminescence spectroscopy in the picosecond to second time domain to study their elementary photophysical properties and to get a deeper insight into structure-property relationships. The experiments cover fluorescence spectroscopy using Streak Camera techniques as well as time-delayed gated detection techniques for the investigation of delayed fluorescence and phosphorescence. All measurements were performed on the solid state, i.e. thin polymer films and on diluted solutions. Starting from the elementary photophysical properties of conjugated polymers the experiments were extended to studies of singlet and triplet energy transfer processes in polymer blends, polymer-triplet emitter blends and copolymers. The phenomenon of photonenergy upconversion was investigated in blue light-emitting polymer matrices doped with metallated porphyrin derivatives supposing an bimolecular annihilation upconversion mechanism which could be experimentally verified on a series of copolymers. This mechanism allows for more efficient photonenergy upconversion than previously reported for polyfluorene derivatives. In addition to the above described spectroscopical experiments, amplified spontaneous emission (ASE) in thin film polymer waveguides was studied employing a fully-arylated poly(indenofluorene) as the gain medium. It was found that the material exhibits a very low threshold value for amplification of blue light combined with an excellent oxidative stability, which makes it interesting as active material for organic solid state lasers. Apart from spectroscopical experiments, transient photocurrent measurements on conjugated polymers were performed as well to elucidate the charge carrier mobility in the solid state, which is an important material parameter for device applications. A modified time-of-flight (TOF) technique using a charge carrier generation layer allowed to study hole transport in a series of spirobifluorene copolymers to unravel the structure-mobility relationship by comparison with the homopolymer. Not only the charge carrier mobility could be determined for the series of polymers but also field- and temperature-dependent measurements analyzed in the framework of the Gaussian disorder model showed that results coincide very well with the predictions of the model. Thus, the validity of the disorder concept for charge carrier transport in amorphous glassy materials could be verified for the investigated series of copolymers.

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The cooperative motion algorithm was applied on the molecular simulation of complex chemical reactions and macromolecular orientation phenomena in confined geometries. First, we investigated the case of equilibrium step-growth polymerization in lamellae, pores and droplets. In such systems, confinement was quantified as the area/volume ratio. Results showed that, as confinement increases, polymerization becomes slower and the average molecular weight (MW) at equilibrium decreases. This is caused by the sterical hindrance imposed by the walls since chain growth reactions in their close vicinity have less realization possibilities. For reactions inside droplets at surfaces, contact angles usually increased after polymerization to compensate conformation restrictions imposed by confinement upon growing chains. In a second investigation, we considered monodisperse and chemically inert chains and focused on the effect of confinement on chain orientation. Simulations of thin polymer films showed that chains are preferably oriented parallel to the surface. Orientation increases as MW increases or as film thickness d decreases, in qualitative agreement with experiments with low MW polystyrene. It is demonstrated that the orientation of simulated chains results from a size effect, being a function of the ratio between chain end-to-end distance and d. This study was complemented by experiments with thin films of pi-conjugated polymers like MEH-PPV. Anisotropic refractive index measurements were used to analyze chain orientation. With increasing MW, orientation is enhanced. However, for MEH-PPV, orientation does not depend on d even at thicknesses much larger than the chain contour length. This contradiction with simulations was discussed by considering additional causes for orientation, for instance the appearance of nematic-like ordering in polymer films. In another investigation, we simulated droplet evaporation at soluble surfaces and reproduced the formation of wells surrounded by ringlike deposits at the surface, as observed experimentally. In our simulations, swollen substrate particles migrate to the border of the droplet to minimize the contact between solvent and vacuum, which costs the most energy. Deposit formation in the beginning of evaporation results in pinning of the droplet. When polymer chains at the substrate surface have strong uniaxial orientation, the resulting pattern is no longer similar to a ring but to a pair of half-moons. In a final stage, as an extension for the model developed for polymerization in nanoreactors, we studied the effect of geometrical confinement on a hypothetical oscillating reaction following the mechanism of the so called periodically forced Brusselator. It was shown that a reaction which is chaotic in the bulk may be driven to periodicity by confinement and vice-versa, opening new perspectives for chaos control.

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Apple proliferation (AP) disease is the most important graft-transmissible and vector-borne disease of apple in Europe. ‘Candidatus Phytoplasma mali’ (Ca. P. mali) is the causal agent of AP. Apple (Malus x domestica) and other Malus species are the only known woody hosts. In European apple orchards, the cultivars are mainly grafted on one rootstock, M. x domestica cv. M9. M9 like all other M. x domestica cultivars is susceptible to ‘Ca. P. mali’. Resistance to AP was found in the wild genotype Malus sieboldii (MS) and in MS-derived hybrids but they were characterised by poor agronomic value. The breeding of a new rootstock carrying the resistant and the agronomic traits was the major aim of a project of which this work is a part. The objective was to shed light into the unknown resistance mechanism. The plant-phytoplasma interaction was studied by analysing differences between the ‘Ca. P. mali’-resistant and -susceptible genotypes related to constitutively expressed genes or to induced genes during infection. The cDNA-Amplified Fragment Length Polymorphism (cDNA-AFLP) technique was employed in both approaches. Differences related to constitutively expressed genes were identified between two ‘Ca. P. mali’-resistant hybrid genotypes (4551 and H0909) and the ‘Ca. P. mali’-susceptible M9. 232 cDNA-AFLP bands present in the two resistant genotypes but absent in the susceptible one were isolated but several different products associated to each band were found. Therefore, two different macroarray hybridisation experiments were performed with the cDNA-AFLP fragments yielding 40 sequences encoding for genes of unknown function or a wide array of functions including plant defence. In the second approach, individuation and analysis of the induced genes was carried out exploiting an in vitro system in which healthy and ‘Ca. P. mali’-infected micropropagated plants were maintained under controlled conditions. Infection trials using in vitro grafting of ‘Ca. P. mali’ showed that the resistance phenotype could be reproduced in this system. In addition, ex vitro plants were generated as an independent control of the genes differentially expressed in the in vitro plants. The cDNA-AFLP analysis in in vitro plants yielded 63 bands characterised by over-expression in the infected state of both the H0909 and MS genotypes. The major part (37 %) of the associated sequences showed homology with products of unknown function. The other genes were involved in plant defence, energy transport/oxidative stress response, protein metabolism and cellular growth. Real-time qPCR analysis was employed to validate the differential expression of the genes individuated in the cDNA-AFLP analysis. Since no internal controls were available for the study of the gene expression in Malus, an analysis on housekeeping genes was performed. The most stably expressed genes were the elongation factor-1 α (EF1) and the eukaryotic translation initiation factor 4-A (eIF4A). Twelve out of 20 genes investigated through qPCR were significantly differentially expressed in at least one genotype either in in vitro plants or in ex vitro plants. Overall, about 20% of the genes confirmed their cDNA-AFLP expression pattern in M. sieboldii or H0909. On the contrary, 30 % of the genes showed down-regulation or were not differentially expressed. For the remaining 50 % of the genes a contrasting behaviour was observed. The qPCR data could be interpreted as follows: the phytoplasma infection unbalance photosynthetic activity and photorespiration down-regulating genes involved in photosynthesis and in the electron transfer chain. As result, and in contrast to M. x domestica genotypes, an up-regulation of genes of the general response against pathogens was found in MS. These genes involved the pathway of H2O2 and the production of secondary metabolites leading to the hypothesis that a response based on the accumulation of H2O2 in MS would be at the base of its resistance. This resembles a phenomenon known as “recovery” where the spontaneous remission of the symptoms is observed in old susceptible plants but occurring in a stochastic way while the resistance in MS is an inducible but stable feature. As additional product of this work three cDNA-AFLP-derived markers were developed which showed independent distribution among the seedlings of two breeding progenies and were associated to a genomic region characteristic of MS. These markers will contribute to the development of molecular markers for the resistance as well as to map the resistance on the Malus genome.

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Identifizierung, Sequenzierung und Charakterisierung des Dmxl1-Gen in Mus musculus sowie die funktionelle Analyse durch Knock-OutrnrnBei Dmxl1 handelt es sich um ein neuartiges Gen aus Mus musculus. Das ebenfalls in der vorliegenden Arbeit bioinformatisch untersuchte Gen DMXL1 ist das zu Dmxl1 homologe Gen des Menschen. Beide Gene bestehen aus 43 Exons, das murine Dmxl1 codiert für eine mRNA von 10992 bp bzw. 12210 bp, das humane DMXL1 kodiert für eine cDNA von 11082 bp, der offene Leserahmen umfasst bei der Maus 9042 bp. In der Maus konnte ein mögliches alternatives Polyadenylierungssignal identifiziert werden. Zwischen beiden Spezies sind die Exonpositionen und ihre Längen hoch konserviert. Dmxl1 liegt auf dem Crick-Strang von Chromosom 18 Bande C, der translatierte Bereich erstreckt sich auf genomischer Ebene über 129558 bp und die Orientierung verläuft in Richtung Centromer. Dmxl1 und DMXL1 gehören damit zu den größten bekannten Genen in Maus und Mensch. Bei beiden Spezies liegen die DmX-Homologen genomisch innerhalb eines Bereichs der Isochoren-Klasse L1 in einer Gen-armen Region. Die Anzahl der repetitiven Elemente innerhalb der Genregion von Dmxl1 liegt 6% unter dem erwarteten Wert eines L1 Isochors, die Anzahl beim Menschen liegt 4% über dem erwarteten Wert. Um die mögliche Promotorstruktur von Dmxl1 darzustellen, wurden umfangreiche in silico-Analysen der Region um den putativen Transkriptionsstart vorgenommen. Mit Hilfe der gewonnenen Daten konnte ein Transkriptionstartpunkt identifiziert werden. Zudem wurde eine Promotorstruktur erarbeitet, bei der angenommen werden kann, dass sie eine gute Näherung an die tatsächlich vorhandenen Bindungsstellen von Transkriptionsfaktoren darstellt. Die mit bioinformatischen Werkzeugen erzeugte virtuelle Promotor- und Enhancerstruktur zeigt das Potenzial, Dmxl1 basal und ubiquitär zu exprimieren. Gleichzeitig zeigen diese Daten, dass Dmxl1 vermutlich in einigen Geweben der Keimbahn, im Fettgewebe, dem blutbildenen System und während der Embryogenese hochkomplex reguliert werden kann. Eine regulierte Expression zur Steuerung des Energiestoffwechsels ist ebenfalls wahrscheinlich. Diese Ergebnisse passen sehr gut zu den experimentell ermittelten Daten und den beobachteten Phänotypen Dmxl1-chimärer Mäuse.rnDie abgeleitete Aminosäuresequenz umfasst in der Maus 3013 AS, im Menschen 3027 AS, der Vergleich der abgeleiteten Aminosäuresequenzen zeigt eine Identität von 89,3 % und eine Similarität von 94,7 % zwischen beiden Spezies. Im Dmxl1/DMXL1-Protein von Maus und Mensch konnten mindestens 24 und maximal 36 WD-Wiederholungseinheiten identifiziert werden, zudem wurden eine Reihe weiterer konservierter Proteinmotive gefunden. Die in silico-Strukturanalysen beider abgeleiteter Aminosäuresequenzen lässt vermuten, dass sich C- und N-terminal WD-Propellerstrukturen befinden. In dieser Arbeit gelang eine C-terminale Rekonstruktion einer 10-blättrigen Propellerstruktur, denkbar ist jedoch auch eine Struktur mit mindestens drei WD-Propellern, wenn eine prädominante Struktur mit Propellern aus jeweils sieben Propellerblättern angenommen wird.rnDas primäre Ziel dieser Arbeit, die Etablierung einer stabilen Mauslinie mit diruptiertem Dmxl1-Gen konnte aufgrund einer beobachteten Haploinsuffizienz nicht erreicht werden. Trotz zahlreicher Transformationen von Maus-Stammzelllinien konnte letztlich nur eine stabil transformierte Linie mit einem Dmxl1-Null-Allel identifiziert werden, was auch zu den theoretischen Daten und den angenommenen Aufgaben von Dmxl1 als komplex und diffizil reguliertes Multifunktions-Protein passt. Aus der transformierten Mauszelllinie konnten chimäre Mäuse entwickelt werden, die in Abhängigkeit von dem Ausmaß des Chimärismus phänotypisch massive Schädigungen aufwiesen. Neben einer Teilsterilität wurden massive Fettleibigkeit und ein ausgeprägter Hypogonadismus beobachtet. Keines der Tiere war in der Lage das Dmxl1-Null-Allel zu transduzieren. Die Tiere waren nur sehr eingeschränkt fertil, die wenigen Nachkommen entsprachen genotypisch und phänotypisch ausschließlich den verwendeten Blastocysten.rn