@phdthesis{Knapp2019, author = {Knapp, Alexander Gerhard}, title = {Resonant Spin Flip Raman-Spectroscopy of Electrons and Manganese-Ions in the n-doped Diluted Magnetic Semiconductor (Zn,Mn)Se:Cl}, doi = {10.25972/OPUS-18609}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-186099}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2019}, abstract = {Main focus of the present dissertation was to gain new insight about the interaction between magnetic ions and the conduction band of diluted magnetic semiconductors. This interaction in magnetic semiconductors with carrier concentrations near the metal-insulator transition (MIT) in an external magnetic field is barely researched. Hence, n-doped Zn1-xMnxSe:Cl samples were studied. Resonant Raman spectroscopy was employed at an external magnetic field between 1T and 7T and a temperature of 1.5K. The resulting magnetization of the material amplifies the splitting of states with opposite spins both in the valence and the conduction band. This is known as the "giant-Zeeman-effect". In this thesis, the resonance of the electron spin flip process, i.e. the enhancement of the signal depending on the excitation energy, was used as an indicator to determine the density of states of the charge carriers. The measured resonance profiles of each sample showed a structure, which consist of two partially overlapping Gaussian curves. The analysis of the Gaussian curves revealed that their respective maxima are separated independent of the magnetic field strenght by about 5 meV, which matches the binding energy of the donor bound exciton (D0, X). A widening of the full width at half maximum of the resonance profile was observed with increasing magnetic field. A detailed analysis of this behavior showed that the donor bound exciton spin flip resonance primarily accounts for the widening for all samples with doping concentrations below the metal insulator transition. A model was proposed for the interpretation of this observation. This is based on the fundamental assumptions of a spatially random distribution of the manganese ions on the group-II sublattice of the ZnSe crystal and the finite extension of the excitons. Thus, each exciton covers an individual quantity of manganese ions, which manifest as a local manganese concentration. This local manganese concentration is normally distributed for a set of excitons and hence, the evaluation of the distribution allows the determination of exciton radii Two trends were identified for the (D0, X) radii. The radius of the bound exciton decreases with increasing carrier concentration as well as with increasing manganese concentration. The determination of the (D0, X) radii by the use of resonant spin flip Raman spectroscopy and also the observation of the behavior of the (D0, X) radius depending on the carrier concentration, was achieved for the first time. For all samples with carrier concentrations below the metal-insulator transition, the obtained (X0) radii are up to a factor of 5.9 larger than the respective (D0, X) radii. This observation is explained by the unbound character of the (X0). For the first time, such an observation could be made by Raman spectroscopy.Beside the resonance studies, the shape of the Raman signal of the electron spin flip was analyzed. Thereby an obvious asymmetry of the signal, with a clear flank to lower Raman shifts, was observed. This asymmetry is most pronounced, when the spin flip process is excited near the (D0, X) resonance. To explain this observation, a theoretical model was introduced in this thesis. Based on the asymmetry of the resonantly excited spin flip signal, it was possible to estimate the (D0, X) radii, too. At external magnetic fields between 1.25T and 7T, the obtained radii lie between 2.38nm and 2.75nm. Additionally, the asymmetry of the electron spin flip signal was observed at different excitation energies. Here it is striking that the asymmetry vanishes with increasing excitation energy. At the highest excitation energy, where the electron spin flip was still detectable, the estimated radius of the exciton is 3.92nm. Beside the observations on the electron spin flip, the resonance behavior of the spin flip processes in the d-shell of the incorporated Mn ions was studied in this thesis. This was performed for the direct Mn spin flip process as well as for the sum process of the longitudinal optical phonon with the Mn spin flip. For the Stokes and anti-Stokes direct spin flip process and for the Stokes sum process, each the resonance curve is described by considering only one resonance mechanism. In contrast, resonance for the sum process in which an anti-Stokes Mn spin flip is involved, consists of two partially overlapping resonances due to different mechanisms. A detailed analysis of this resonance profile showed that for (Zn,Mn)Se at the chosen experimental parameters, an incoming and outgoing resonance can be achieved, separated by a few meV. Hereby, at a specific excitation energy range and a high excitation power, it was possible to achieve an inversion of the anti-Stokes to Stokes intensity, because only the anti-Stokes Mn spin flip process was enhanced resonantly.}, subject = {Raman-Spektroskopie}, language = {en} } @phdthesis{Klein2015, author = {Klein, Johannes Hubert}, title = {Electron Transfer and Spin Chemistry in Iridium-Dipyrrin Dyads and Triads}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-118726}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2015}, abstract = {The successful synthesis of a family of donor-iridium complex-acceptor triads (T1-T6, pMV1 and mMV1) and their electrochemical and photophysical properties were presented in this work. Triarylamines (TAA) were used as donors and naphthalene diimide (NDI) as acceptor. A bis-cyclometalated phenylpyrazole iridium dipyrrin complex acts as a photosensitiser. In addition, a molecular structure of T1 was obtained by single crystal X-ray diffraction. Transient absorption spectroscopy experiments of these triads resembled that upon excitation a photoinduced electron transfer efficiently generates long-lived, charge-separated (CS) states. Thereby, the electron-transfer mechanism depends on the excitation energy. The presence of singlet and triplet CS states was clarified by magnetic-field dependent transient-absorption spectroscopy in the nanosecond time regime. It was demonstrated that the magnetic field effect of charge-recombination kinetics showed for the first time a transition from the coherent to the incoherent spin-flip regime. The lifetime of the CS states could be drastically prolonged by varying the spacer between the iridium complex and the NDI unit by using a biphenyl instead of a phenylene unit in T4. A mixed-valence (MV) state of two TAA donors linked to an iridium metal centre were generated upon photoexcitation of triad pMV1 and mMV1. The mixed-valence character in these triads was proven by the analysis of an intervalence charge-transfer (IV-CT) band in the (near-infrared) NIR spectral region by femtosecond pump-probe experiments. These findings were supported by TD-DFT calculations. The synthesis of dyads (D1-D4) was performed. Thereby the dipyrrin ligand was substituted with electron withdrawing groups. The electrochemical and photophysical characterisation revealed that in one case (D4) it was possible to generate a CS state upon photoexcitation.}, subject = {Elektronentransfer}, language = {en} } @phdthesis{Kehl2010, author = {Kehl, Christian}, title = {Magnetic soft mode behaviour investigated via Multi-Spin Flip Raman Spectroscopy on near surface Cd1-xMnxTe/Cd1-yMgyTe Quantum wells}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-56088}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2010}, abstract = {In the context of the ongoing discussion about a carrier-induced ferromagnetic phase transition in diluted-magnetic II-VI semiconductors (DMS), theoretical studies on coherent dynamics of localized spins coupled with a two-dimensional hole gas (2DHG) in DMS quantum wells (QWs) were done by K.V. KAVOKIN. His key for studying the exchange interaction of the localized spin ensemble (e.g. Mn2+) with the 2DHG is the Larmor frequency of the localized Mn-ion spins and thus their Mn-g-factor. It was shown that the 2DHG affects a time evolution of the (Mn-) spin system in an in-plane magnetic field resulting in the reduction of its Larmor frequency (Mn-g-factor) under the influence of an oscillating effective field of holes. This is called magnetic soft mode (behaviour). The experimental access for demonstrating this Mn-g-factor reduction with increasing hole concentration is the method of Multi-Spin-Flip (SF) Raman scattering combined with the variation of the carrier concentration by photo-excitation with an additional light source (two-colour experiment). The main motivation for this thesis was the experimental confirmation of the theoretically predicted magnetic soft mode and the analysis of its dependence on the hole-concentration and external B-field, as well as its disappearance with increasing sample temperature. For that purpose, CdMnTe/CdMgTe QWs (Mn: 0.6\%, 1.0\%) positioned close to the sample surface (13-19nm) were investigated in an in-plane applied external magnetic field (up to 4.5T in Voigt-geometry) via a two-colour experiment i.e. using two light sources. This allows the spin excitation of Mn-ions by simultaneously tuning the hole-concentration towards the ferromagnetic phase transition by photo-generated carriers. Thus, one tuneable laser is responsible for resonant below-barrier excitation as a probe for Multi-SF Raman scattering. The other laser excites photo-generated carriers from above barrier (2.41eV) for tuning the hole concentration in the QW. Positioning the QW close to the sample surface causes a surface-induced p-doping of the QW (intrinsic hole concentration in the QW) and enables the active tuning of the hole concentration by photo-generated carriers due to different tunnelling behaviour of electrons and holes from the QW to the surface. The Mn-g-factor was decreased by quasi-continuously increasing the above-barrier illumination (and thus the hole concentration), while the below-barrier excitation (Multi-PR probe) was kept at a constant low power. This results in a Mn-g-factor reduction starting from its atomic value g=2.01 to lowest evaluated Mn-g-factor in this thesis g=1.77. This is a magnetic softening of 12\%. Apart from the general magnetic soft mode behaviour at low temperatures, one of the main experimental results in this thesis is the confirmation of the theoretical prediction that the magnetic soft mode behaviour in the external B-field does not only depend on the carrier concentration but also on the B-field strength itself. An additional aspect is the temperature dependence of the magnetic soft mode. The Mn-g-factor decrease is suppressed with increasing temperature almost reaching the atomic Mn-g-factor at 4.2K (g=1.99). This behaviour is due to the T-induced weakening of the transverse 2DHG spin susceptibility. The results of the investigations concerning the cap layer thickness impact on the QW carrier characteristics were investigated in the cap thickness range of 13nm to 19nm. The cap thickness configures on the one hand the intrinsic hole concentration of the QW ("2DHG offset") due to the surface-induced p-doping and sets the "starting point" for the Mn-g-factor reduction. On the other hand the cap thickness determines the probability of electron tunnelling to the surface and thus the efficiency of the hole tuning by light. The latter is the criterion for the range of Mn-g-factor reduction by light. This two dependences were pointed out by the photo-generated hole influence on the QW PL-spectra which results in tuning the exciton-trion ratio. In summary both mechanisms are of relevance for the hole tuning and thus for the magnetic soft-mode behaviour. The mechanism of tunnelling time prevails at small cap layer thicknesses while the surface-induced p-doping plays the major role for larger cap thicknesses (> 25nm). In conclusion, the presented method in this thesis is a sensitive tool to study the dynamics of the spin excitations and the paramagnetic susceptibility in the vicinity of the hole-induced ferromagnetic phase transition.}, subject = {Raman-Spektroskopie}, language = {en} } @phdthesis{Lentze2009, author = {Lentze, Michael}, title = {Spin-flip Raman Untersuchungen an semimagnetischen II-VI Halbleiter-Quantentr{\"o}gen und Volumenproben}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-34834}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2009}, abstract = {Im Zentrum dieser Arbeit standen ramanspektroskopische Untersuchungen der elektronischen spin-flip-{\"U}berg{\"a}nge an semimagnetischen (Zn,Mn)Se Proben. Hierbei wurden sowohl Quantentrogstrukturen untersucht als auch volumenartige Proben. Ziel der Forschung war dabei, ein tieferes Verst{\"a}ndnis der Wechselwirkungen der magnetischen Ionen mit den Leitungsbandelektronen der Materialien zu gewinnen. Im Hinblick auf m{\"o}gliche zuk{\"u}nftige spin-basierte Bauelemente lag das Hauptaugenmerk auf dem Einfluss von n-Dotierung bis zu sehr hohen Konzentration. Hierf{\"u}r standen verschiedene Probenreihen mit unterschiedlichen Dotierungskonzentrationen zur Verf{\"u}gung.}, subject = {Dotierter Halbleiter}, language = {de} } @phdthesis{Keller2004, author = {Keller, Dirk}, title = {Optische Eigenschaften ZnSe-basierter zweidimensionaler Elektronengase und ihre Wechselwirkung mit magnetischen Ionen}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-14774}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2004}, abstract = {In dieser Arbeit wurden nichtmagnetische und semimagnetische ZnSe-basierte Quantentr{\"o}ge untersucht. Im Mittelpunkt des Interesses standen hierbei vor allem die Modifikation der optischen Spektren mit einer zunehmenden Modulationsdotierung der Strukturen und der Einfluss von Spinflip-Streuungen der freien Band-Elektronen an den Mn-Ionen auf die Magnetisierung und somit die Zeeman-Aufspaltung der Strukturen. Als experimentelle Methoden wurden Photolumineszenz (PL), Photolumineszenzanregung (PLE) und Reflexionsmessungen verwendet, die in Magnetfeldern von bis zu B=48 T und bei Temperaturen im Bereich von 1.6 K bis 70 K durchgef{\"u}hrt wurden. Dar{\"u}ber hinaus wurde die Abh{\"a}ngigkeit der Spin-Gitter-Relaxationszeit der Mn-Ionen von der Mn-Konzentration und der Elektronengasdichte in den Quantentr{\"o}gen durch zeitaufgel{\"o}ste Lumineszenzmessungen untersucht. Der Einfluss eines Gradienten in der s/p-d-Austauschwechselwirkung auf die Diffusion der Ladungstr{\"a}ger bildet einen weiteren Schwerpunkt dieser Arbeit. Als experimentelle Methode wurde hierbei ortsaufgel{\"o}ste Lumineszenz verwendet.}, subject = {Zinkselenid}, language = {de} }