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Magnetic Resonance Imaging at field strengths up to 3 T, has become a default diagnostic modality for a variety of disorders and injuries, due to multiple reasons ranging from its non-invasive nature to the possibility of obtaining high resolution images of internal organs and soft tissues. Despite tremendous advances, MR imaging of certain anatomical regions and applications present specific challenges to be overcome. One such application is MR Musculo-Skeletal Imaging. This work addresses a few difficult areas within MSK imaging from the hardware perspective, with coil solutions for dynamic imaging of knee and high field imaging of hand.
Starting with a brief introduction to MR physics, different types of RF coils are introduced in chapter 1, followed by sections on design of birdcage coils, phased arrays and their characterization in chapter 2. Measurements, calculations and simulations, done during the course of this work, have been added to this chapter to give a quantitative feel of the concepts explained.
Chapter 3 deals with the construction of a phased array receiver for dynamic imaging of knee of a large animal model, i.e. minipig, at 1.5 T. Starting with details on the various aspects of an application that need to be considered when an MR RF array is designed, the chapter details the complex geometry of the region of interest in a minipig and reasons that necessitate a high density array. The sizes of the individual elements that constitute the array have been arrived at by studying the ratio of unloaded to loaded Q factors and choosing a size that provides the best ratio but still maintains a uniform SNR throughout the movement of the knee. To have a minimum weight and to allow mechanical movement of the knee, the Preamplifiers were located in a separate box. A movement device was constructed to achieve adjustable periodic movement of the knee of the anesthetized animal. The constructed array has been characterized for its SNR and compared with an existing product coil to show the improvement. The movement device was also characterized for its reproducibility. High resolution static images with anatomical details marked have been presented. The 1/g maps show the accelerations possible with the array. Snapshots of obtained dynamic images trace the cruciate ligaments through a cycle of movement of the animal's knee.
The hardware combination of a high density phased array and a movement device designed for a minipig's knee was used as a 'reference' and extended in chapter 4 for a human knee. In principle the challenges are similar for dynamic imaging of a human knee with regards to optimization of the elements, the associated electronics and the construction of the movement device. The size of the elements were optimized considering the field penetration / sensitivity required for the internal tissues. They were distributed around the curvature of the knee keeping in mind the acceleration required for dynamic imaging and the direction of the movement. The constructed movement device allows a periodic motion of the lower half of the leg, with the knee placed within the coil, enabling visualization of the tissues inside, while the leg is in motion. Imaging has been performed using dynamic interleaved acquisition sequence where higher effective TR and flip angles are achieved due to a combination of interleaving and segmentation of the sequence. The movement device has been characterized for its reproducibility while the SNR distribution of the constructed RF array has been compared with that of a commercially available standard 8 channel array. The results show the improvement in SNR and acceleration with the constructed geometry. High resolution static images, dynamic snapshots and the 3D segmentation of the obtained images prove the usefulness of the complete package provided in the design, for performing dynamic imaging at a clinically relevant field strength.
A simple study is performed in chapter 5 to understand the effects of changes in overlap for coil configurations with different loads and at different frequencies. The noise levels of individual channels and the correlation between them are plotted against subtle changes in overlap, at 64 and 123 MHz. SNR for every overlap setup is also measured and plotted. Results show that achieving critical overlap is crucial to obtain the best possible SNR in those coil setups where the load offered by the sample is low.
Chapter 6 of the thesis work deals with coil design for high field imaging of hand and wrists at 7 T, with an aim to achieve ultra high resolution imaging. At this field strength due to the increase in dielectric effects and the resulting decrease in homogeneity, whole body transmit coils are impractical and this has led engineers to design local transmit coils, for specific anatomies. While transmit or transceive arrays are usually preferred, to mitigate SAR effects, the spatial resolution obtained is limited. It is shown that a solution to this, with regards to hand imaging, can be a single volume transmit coil, along with high density receive arrays optimized for different regions of the hand. The use of a phased array for reception provides an increased SNR / penetration under high resolution. A volume transmit coil could pose issues in homogeneity at 7 T, but the specific anatomy of hand and wrist, with comparatively less water content, limits dielectric effects to have homogeneous B_1+ profile over the hand. To this effect, a bandpass birdcage and a 12 channel receive array are designed and characterized. Images of very high spatial resolution (0.16 x 0.16 x 0.16 mm3) with internal tissues marked are presented. In vivo 1/g maps show that an acceleration of up to 3 is possible and the EM simulation results presented show the uniform field along with SAR hotspots in the hand. To reduce the stress created due to the 'superman' position of imaging, provisions in the form of a holder and a hand rest have been designed and presented. Factors that contributed to the stability of the presented design are also listed, which would help future designs of receive arrays at high field strengths.
In conclusion, the coils and related hardware presented in this thesis address the following two aspects of MSK imaging: Dynamic imaging of knee and High resolution imaging of hand / wrist. The presented hardware addresses specific challenges and provides solutions. It is hoped that these designs are steps in the direction of improving the existing coils to get a better knowledge and understanding of MSK diseases such as Rheumatoid Arthritis and Osteoarthritis. The hardware can aid our study of ligament reconstruction and development. The high density array and transmit coil design for hand / wrist also demonstrates the benefits of the obtained SNR at 7 T while maintaining SAR within limits. This design is a contribution towards optimizing hardware at high field strength, to make it clinically acceptable and approved by regulatory bodies.
The subject of this thesis is the growth of Hg\(_{1-x}\)Cd\(_2\)Te layers via molecular beam epitaxy (MBE).
This material system gives rise to a number of extraordinary physical phenomena related to its electronic band structure and therefore is of fundamental interest in research.
The main results can be divided into three main areas, the implementation of a temperature measurement system based on band edge thermometry (BET), improvements of CdTe virtual substrate growth and the investigation of Hg\(_{1-x}\)Cd\(_2\)Te for different compositions.
Quantitative Electron Paramagnetic Resonance Studies of Charge Transfer in Organic Semiconductors
(2020)
In the present work we investigated various charge transfer processes, as they appear in the versatile world of organic semiconductors by probing the spin states of the corresponding charge carrier species via electron paramagnetic resonance (EPR) spectroscopy. All studied material systems are carbon-based compounds, either belonging to the group of polymers, fullerenes, or single-wall carbon nanotubes (SWNTs).
In the first instance, we addressed the change of the open circuit voltage (Voc) with the fullerene blend stoichiometry in fullerene-based solar cells for organic photovoltaics (OPV). The voltage depends strongly on the energy separation between the lowest unoccupied molecular orbital (LUMO) of the donor and the highest occupied molecular orbital (HOMO) of the acceptor. By exploiting the Gaussian distribution of the charge carriers in a two-level system, and thus also their spins in the EPR experiment, it could be shown that the LUMOs get closer by a few to a few hundred meV when going from pure fullerene materials to a fullerene mixture. The reason for this strong energetic effect is likely the formation of a fullerene alloy.
Further, we investigated the chemical doping mechanism of SWNTs with a (6,5)-chirality and their behaviour under optical excitation. In order to determine the unintentional (pre)-doping of SWNTs, EPR spectra of the raw material as well as after different purification steps were recorded. This facilitated the determination of nanotube defects and atmospheric p-doping as the causes of the measured EPR signals. In order to deliberately transfer additional charge carriers to the nanotubes, we added the redox-active substance AuCl3 where we determined an associated doping-yield of (1.5±0.2)%. In addition, a statistical occupation model was developed which can be used to simulate the distribution of EPR active, i.e. unpaired and localised charge carriers on the nanotubes.
Finally, we investigated the charge transfer behaviour of (6,5)-SWNTs together with the polymer P3HT and the fullerene PC60BM after optical excitation.
Im Rahmen dieser Arbeit wurden GaInP/GaAs/GaInNAs 3J-Mehrfachsolarzellen in einem MBE/MOVPE-Hybridprozess hergestellt und untersucht. Der verwendete Hybridprozess, bei dem nur die GaInNAs-Teilsolarzelle mittels MBE hergestellt wird, kombiniert diese beiden Technologien und setzt sie entsprechend ihrer jeweiligen Vorteile ein. Die gezeigten Ergebnisse bestätigen grundsätzlich die Machbarkeit des Hybridprozesses, denn eine Degradation des mittels MBE hergestellten GaInNAs-Materials durch die Atmosphäre im MOVPE-Reaktor konnte nicht festgestellt werden. Dieses Resultat wurde von im Hybridprozess hergestellten 3J-Mehrfachsolarzellen, die GaInNAs-Teilsolarzellen enthalten, bekräftigt. Die offene Klemmspannung einer gezeigten Solarzelle erreichte bereits 2,59 V (AM1.5d) bzw. 2,48 V (AM0) und liegt damit jeweils über einer als Referenz hergestellten 2J-Mehrfachsolarzelle ohne GaInNAs. Die mittlere interne Quanteneffizienz der enthaltenen GaInNAs-Teilsolarzelle liegt bei 79 %. Die Berechnungen auf Grundlage dieser Effizienz unter Beleuchtung mit AM1.5d und unter Beleuchtung mit AM0 zeigten, dass nicht die enthaltene GaInNAs-Teilsolarzelle Strom limitierend wirkt, sondern die mittels MOVPE gewachsene GaInP-Teilsolarzelle. Die experimentell bestimmte Kurzschlussstromdichte der hergestellten Mehrfachsolarzelle ist wegen dieser Limitierung etwas geringer als die der 2J-Referenzsolarzelle. Der MOVPE-Überwachsvorgang bietet zwar noch weiteres Verbesserungspotential, aber es ist naheliegend, dass der Anwachsvorgang auf dem MBE-Material soweit optimiert werden kann, dass die aufgewachsenen GaInP- und GaAs-Schichten frei von Degradation bleiben. Damit bietet der Hybridprozess perspektivisch das Potential günstigere Produktionskosten in der Epitaxie von Mehrfachsolarzellen mit verdünnten Nitriden zu erreichen als es ausschließlich mittels MBE möglich ist.
Im Vorfeld zur Herstellung der 3J-Mehrfachsolarzellen wurden umfassende Optimierungsarbeiten des MBE-Prozesses zur Herstellung der GaInNAs-Teilsolarzelle durchgeführt. So wurde insbesondere festgestellt, dass das As/III-Verhältnis während dem Wachstum einen entscheidenden Einfluss auf die elektrisch aktive Dotierung des GaInNAs-Materials besitzt. Die elektrisch aktive Dotierung wiederum beeinflusst sehr stark die Ausdehnung der Raumladungszone in den als p-i-n-Struktur hergestellten GaInNAs-Solarzellen und hat damit einen direkten Einfluss auf deren Stromerzeugung. In der Tendenz zeigte sich eine Zunahme der Stromerzeugung der GaInNAs-Teilsolarzellen bei einer gleichzeitigen Abnahme ihrer offenen Klemmspannung, sobald das As/III-Verhältnis während des Wachstums reduziert wurde. Durch eine sehr exakte Kalibration des As/III-Verhältnisses konnte ein bestmöglicher Kompromiss zwischen offener Klemmspannung und Stromerzeugung gefunden werden. Eine gezeigte GaInNAs-Einfachsolarzelle erreichte eine mittlere interne Quanteneffizienz von 88 % und eine offene Klemmspannung von 341 mV (AM1.5d) bzw. 351 mV (AM0). Berechnungen auf Grundlage der Quanteneffizienz ergaben, dass diese Solarzelle integriert in eine 3J-Mehrfachsolarzelle unter dem Beleuchtungsspektrum AM1.5g eine Stromdichte von 14,2 mA/cm^2 und unter AM0 von 17,6 mA/cm^2 erzeugen würde. Diese Stromdichten sind so hoch, dass diese GaInNAs-Solarzelle die Stromproduktion der GaInP- und GaAs-Teilsolarzellen in einer gängigen Mehrfachsolarzelle erreicht und keine Ladungsträgerverluste auftreten würden. Aufgrund ihrer höheren offenen Klemmspannung gegenüber einer Ge-Teilsolarzelle bietet diese GaInNAs-Teilsolarzelle das Potential die Effizienz der Mehrfachsolarzelle zu steigern. Messungen der Dotierkonzentration in der GaInNAs-Schicht dieser Solarzelle ergaben extrem geringe Werte im Bereich von 1x10^14 1/cm^3 bis 1x10^15 1/cm^3 (p-Leitung). In Ergänzung zu den Optimierungen des As/III-Verhältnisses konnte gezeigt werden, dass sich ein Übergang von p- zu n-Leitung im GaInNAs mit der Verringerung des As/III-Verhältnisses erzeugen lässt. Nahe des Übergangsbereiches wurden sehr geringe Dotierungen erreicht, die sich durch eine hohe Stromproduktion aufgrund der Ausbildung einer extrem breiten Verarmungszone gezeigt haben. Durch eine reduzierte offene Klemmspannung der bei relativ geringen As/III-Verhältnissen hergestellten Solarzellen mit n-leitendem GaInNAs konnte auf das Vorhandensein von elektrisch aktiven Defekten geschlossen werden. Generell konnten die gemessenen elektrisch aktiven Dotierkonzentrationen im Bereich von üblicherweise 10^16 1/cm^3 mit hoher Wahrscheinlichkeit auf elektrisch aktive Kristalldefekte im GaInNAs zurückgeführt werden. Eine Kontamination des Materials mit Kohlenstoffatomen in dieser Größenordnung wurde ausgeschlossen.