@phdthesis{Naydenova2014, author = {Naydenova, Tsvetelina}, title = {A Study of Seebeck and Nernst effects in (Ga,Mn)As/normal semiconductor junctions}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-101981}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {The discovery of the Giant Magneto Resistance (GMR) effect in 1988 by Albert Fert [Baib 88] and Peter Gr{\"u}nberg [Bina 89] led to a rapid development of the field of spintronics and progress in the information technology. Semiconductor based spintronics, which appeared later, offered a possibility to combine storage and processing in a single monolithic device. A direct result is reduced heat dissipation. The observation of the spin Seebeck effect by Ushida [Uchi 08] in 2008 launched an increased interest and encouraged research in the field of spin caloritronics. Spintronics is about the coupling of charge and spin transport. Spin caloritronics studies the interaction between heat and spin currents. In contrast to spintronics and its variety of applications, a particular spin-caloritronic device has not yet been demonstrated. However, many of the novel phenomena in spin caloritronics can be detected in most spintronic devices. Moreover, thermoelectric effects might have a significant influence on spintronic device operation. This will be of particular interest for this work. Additional knowledge on the principle of coupling between heat and spin currents uncovers an alternative way to control heat dissipation and promises new device functionalities. This thesis aims to further extend the knowledge on thermoelectrics in materials with strong spin-orbit coupling, in this case the prototypical ferromagnetic semiconductor (Ga,Mn)As. The study is focused on the thermoelectric / thermomagnetic effects at the interface between a normal metal and the ferromagnetic (Ga,Mn)As. In such systems, the different interfaces provide a condition for minimal phonon drag contribution to the thermal effects. This suggests that only band contributions (a diffusion transport regime) to these effects will be measured. Chapter 2 begins with an introduction on the properties of the studied material system, and basics on thermoelectrics and spin caloritronics. The characteristic anisotropies of the (Ga,Mn)As density of states (DOS) and the corresponding magnetic properties are described. The DOS and magnetic anisotropies have an impact on the transport prop- erties of the material and that results in effects like tunneling anisotropic magnetores- istance (TAMR) [Goul 04]. Some of these effects will be used later as a reference to the results from thermoelectric / thermomagnetic measurements. The Fingerprint tech- nique [Papp 07a] is also described. The method gives an opportunity to easily study the anisotropies of materials in different device geometries. Chapter 3 continues with the experimental observation of the diffusion thermopower of (Ga,Mn)As / Si-doped GaAs tunnel junction. A device geometry for measuring the diffusion thermopower is proposed. It consists of a Si - doped GaAs heating channel with a Low Temperature (LT) GaAs / (Ga,Mn)As contact (junction) in the middle of the channel. A single Ti / Au contact is fabricated on the top of the junction. For transport characterization, the device is immersed in liquid He. A heating current technique is used to create a temperature difference by local heating of the electron system on the Si:GaAs side. An AC current at low frequency is sent through the channel and it heats the electron population in it, while the junction remains at liquid He temperature (experimentally con- firmed). A temperature difference arises between the heating channel and the (Ga,Mn)As contact. As a result, a thermal (Seebeck) voltage develops across the junction, which we call tunnelling anisotropic magneto thermopower (TAMT), similar to TAMR. TAMT is detected by means of a standard lock-in technique at double the heating current frequency (at 2f ). The Seebeck voltage is found to be linear with the temperature difference. That dependence suggests a diffusion transport regime. Lattice (phonon drag) contribution to the thermovoltage, which is usually highly nonlinear with temperature, is not observed. The value of the Seebeck coefficient of the junction at 4.2 K is estimated to be 0.5 µV/K. It is about three orders of magnitude smaller than the previously reported one [Pu 06]. Subsequently, the thermal voltage is studied in external magnetic fields. It is found that the thermopower is anisotropic with the magnetization direction. The anisotropy is explained with the anisotropies of the (Ga,Mn)As contact. Further, switching events are detected in the thermopower when the magnetic field is swept from negative to positive fields. The switchings remind of a spin valve signal and is similar to the results from previous experiments on spin injection using a (Ga,Mn)As contacts in a non-local detection scheme. That shows the importance of the thermoelectric effects and their possible contribution to the spin injection measurements. A polar plot of the collected switching fields for different magnetization angles reveals a biaxial anisotropy and resembles earlier TAMR measurements of (Ga,Mn)As tunnel junction. A simple cartoon model is introduced to describe and estimate the expected thermopower of the studied junction. The model yields a Fermi level inside of the (Ga,Mn)As valence band. Moreover, the model is found to be in good agreement with the experimental results. The Nernst effect of a (Ga,Mn)As / GaAs tunnel junction is studied in Chapter 4. A modified device geometry is introduced for this purpose. Instead of a single contact on the top of the square junction, four small contacts are fabricated to detect the Nernst signal. A temperature difference is maintained by means of a heating current technique described in Chapter 3. A magnetic field is applied parallel to the device plane. A voltage drop across two opposite contacts is detected at 2f. It appears that a simple cosine function with a parameter the angle between the magnetization and the [100] crystal direction in the (Ga,Mn)As layer manages to describe this signal which is attributed to the anomalous Nernst effect (ANE) of the ferromagnetic contact. Its symmetry is different than the Seebeck effect of the junction. For the temperature range of the thermopower measurements the ANE coefficient has a linear dependence on the temperature difference (∆T). For higher ∆T, a nonlinear dependence is observed for the coefficient. The ANE coefficient is found to be several orders of magnitude smaller than any Nernst coefficient in the literature. Both the temperature difference and the size of the ANE coefficient require further studies and analysis. Switching events are present in the measured Nernst signal when the magnetic field is swept from positive to negative values. These switchings are related to the switching fields in the ferromagnetic (Ga,Mn)As. Usually, there are two states which are present in TAMR or AMR measurements - low and high resistance. Instead of that, the Nernst signal appears to have three states - high, middle and low thermomagnetic voltage. That behaviour is governed not only by the magnetization, but also by the characteristic of the Nernst geometry. Chapter 5 summarizes the main observations of this thesis and contains ideas for future work and experiments.}, subject = {Galliumarsenid}, language = {en} } @phdthesis{Constantino2013, author = {Constantino, Jennifer Anne}, title = {Characterization of Novel Magnetic Materials: Ultra-Thin (Ga,Mn)As and Epitaxial-Growth MnSi Thin Films}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-90578}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2013}, abstract = {The study of magnetic phases in spintronic materials is crucial to both our fundamental understanding of magnetic interactions and for finding new effects for future applications. In this thesis, we study the basic electrical and magnetic transport properties of both epitaxially-grown MnSi thin films, a helimagnetic metal only starting to be developed within our group, and parabolic-doped ultra-thin (Ga,Mn)As layers for future studies and applications.}, subject = {Galliumarsenid}, language = {en} } @phdthesis{Ebel2013, author = {Ebel, Lars Frederik}, title = {Molecular Beam Epitaxy and Characterization of Ferromagnetic Bulk and Thin (Ga,Mn)As Layers/Heterostructures}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-83942}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2013}, abstract = {Die vorgelegte Arbeit untersucht den ferromagnetischen Halbleiter (Ga,Mn)As mit seinen komplexen Eigenschaften im Hinblick auf die Optimierung der Materialeigenschaften sehr d{\"u}nner (4 nm) (Ga,Mn)As Schichten, welche mit der Technologie der Molekularstrahlepitaxie (MBE) hergestellt wurden. Zuerst werden die strukturellen, ferromagnetischen und elektrischen Eigenschaften von (Ga,Mn)As vorgestellt. Die Einfl{\"u}sse von Punktdefekten, Grenzfl{\"a}chen- und Oberfl{\"a}chen-Effekten auf dicke und d{\"u}nne (Ga,Mn)As Schichten werden mit Hilfe von vereinfachten, selbstkonsistenten Berechnungen der Bandkantenverl{\"a}ufe diskutiert. Der Experimental-Teil ist in drei Teile unterteilt: Der erste Teil untersucht den Einfluss der epitaktischen Wachstumsbedingungen auf die elektrischen und magnetischen Eigenschaften von dicken (70 nm) (Ga,Mn)As Schichten. Der zweite Teil f{\"u}hrt ein alternatives, parabolisches Mn-Dotierprofil mit effektiver Schichtdicke von 4 nm ein im Vergleich zu einer gleich d{\"u}nnen Schicht mit homogenem Mn-Dotierprofil. Es konnten einerseits verbesserte Eigenschaften dieser parabolischen Schicht erreicht werden, anderseits sind die magnetischen und elektrischen Eigenschaften vergleichbar zu dicken (Ga,Mn)As Schichten mit gleichem Mn-Gehalt von 4\%. MBE Wachstumsbedingungen f{\"u}r (Ga,Mn)As Schichten mit parabolischem Mn-Dotierprofil und verringertem nominellem Mn-Gehalt von 2.5\% wurden ebenfalls untersucht. Ein schmales Wachstumsfenster wurde hierbei ermittelt, in dem die Tieftemperatur-Eigenschaften verbessert sind. Der letzte Teil der Arbeit pr{\"a}sentiert eine Anwendung der magnetischen Anisotropiekontrolle einer dicken (Ga,Mn)As Schicht.}, subject = {Molekularstrahlepitaxie}, language = {en} } @phdthesis{Schmid2010, author = {Schmid, Benjamin}, title = {Surface preparation and Mn states of (Ga,Mn)As investigated by means of soft- and hard x-ray photoemission spectroscopy}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-50057}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2010}, abstract = {The present thesis deals with surface treatment, material improvement, and the electronic structure of the diluted magnetic semiconductor (Ga,Mn)As. The two key issues are the preparation of clean surfaces and the observation of potential valence hybridizations in (Ga,Mn)As by means of photoemission spectroscopy. Several cleaning methods are applied individually to (Ga,Mn)As and their e ects are compared in detail by various methods. Based on the results of each method, a sophisticated recipe has been elaborated, which provides clean, stoichiometric, and reconstructed surfaces, even if the sample was exposed to air prior to preparation. Moreover, the recipe works equally well for intentionally oxidized surfaces. The individual advantages of ex-situ wet- chemical etching and in situ ion-milling and tempering can be combined in an unique way. In regard to the post-growth annealing in order to optimize the electronic and magnetic properties of (Ga,Mn)As, the effect of surface segregation of interstitial Mn was quantifed. It turns out that the Mn concentration at the surface increases by a factor 4.3 after annealing at 190 C for 150 h. The removal of the segregated and oxidized species by wet-chemical etching allows a tentative estimate of the content of interstitial Mn. 19-23\% of the overall Mn content in as-grown samples resides on interstitial positions. The complementary results of core level photoemission spectroscopy and resonant photoemission spectroscopy give hints to the fact that a sizeable valence hybridization of Mn is present in (Ga,Mn)As. This outlines that the simple Mn 3d5-con guration is too naive to refect the true electronic structure of substitutional Mn in (Ga,Mn)As. Great similarities in the core level spectra are found to MnAs. The bonding is thus dominantly of covalent, not ionic, character. Transport measurements, in particular for very low temperatures (<10 K), are in agreement with previous results. This shows that at low temperature, the conduction is mainly governed by variable-range hopping which is in line with the presence of an impurity band formed by substitutional Mn. In the light of the presented results, it is therefore concluded that a double-exchange interaction is the dominant mechanism leading to ferromagnetic coupling in (Ga,Mn)As. The valence hybridization and the presents of an impurity band, both of which are inherent properties of substitutional Mn, are indications for a double-exchange scenario, being at variance to a RKKY-based explanation. Contributions from a RKKY-like mechanism cannot definitely be excluded, however, they are not dominant.}, subject = {Photoelektronenspektroskopie}, language = {en} } @phdthesis{Ruester2005, author = {R{\"u}ster, Christian}, title = {Magnetotransport effects in lateral and vertical ferromagnetic semiconductor junctions}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-15554}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2005}, abstract = {This work is an investigation of giant magnetoresistance (GMR), tunneling magnetoresistance (TMR) and tunneling anisotropic magnetoresistance (TAMR)effects in (Ga,Mn) based ferromagnetic semiconductor junctions. Detailed results are published in the following articles: [1] C. R{\"u}ster, T. Borzenko, C. Gould, G. Schmidt, L.W. Molenkamp, X. Liu, T.J.Wojtowicz, J.K. Furdyna, Z.G. Yu and M. Flatt´e, Very Large Magnetoresistance in Lateral Ferromagnetic (Ga,Mn)As Wires with Nanoconstrictions, Physical Review Letters 91, 216602 (2003). [2] C. Gould, C. R{\"u}ster, T. Jungwirth, E. Girgis, G.M. Schott, R. Giraud, K. Brunner, G. Schmidt and L.W. Molenkamp, Tunneling Anisotropic Magnetoresistance: A Spin-Valve-Like Tunnel Magnetoresistance Using a Single Magnetic Layer, Physical Review Letters 93, 117203 (2004). [3] C. R{\"u}ster, C. Gould, T. Jungwirth, J. Sinova, G.M. Schott, R. Giraud, K. Brunner, G. Schmidt and L.W. Molenkamp, Very Large Tunneling Anisotropic Magnetoresistance of a (Ga,Mn)As/GaAs/(Ga,Mn)As Stack, Physical Review Letters 94, 027203 (2005). [4] C. R{\"u}ster and C. Gould, T. Jungwirth, E. Girgis, G.M. Schott, R. Giraud, K. Brunner, G. Schmidt and L.W. Molenkamp, Tunneling anisotropic magnetoresistance: Creating a spin-valve-like signal using a single ferromagnetic semiconductor layer, Journal of Applied Physics 97, 10C506 (2005).}, subject = {Galliumarsenid}, language = {en} }