Refine
Has Fulltext
- yes (16)
Is part of the Bibliography
- yes (16)
Year of publication
Document Type
- Doctoral Thesis (16)
Keywords
- Spintronik (16) (remove)
We investigate transport measurements on all II-VI semiconductor resonant tunneling diodes (RTDs). Being very versatile, the dilute magnetic semiconductor (DMS) system (Zn,Be,Mn,Cd)Se is a perfect testbed for various spintronic device designs, as it allows for separate control of electrical and magnetic properties. In contrast to the ferromagnetic semiconductor (Ga,Mn)As, doping ZnSe with Mn impurities does not alter the electrical properties of the semiconductor, as the magnetic dopant is isoelectric in the ZnSe host.
For the realization of a programmable logic device, or indeed any nanoscale device, we need a reliable method to probe the magnetization direction of local domains. For this purpose we extend investigations on the previously discovered tunneling anisotropic magneto resistance effect (TAMR) by scaling the pillar size from 100 µm down to 260 nm. We start in chapter 4 with a theoretical description of the TAMR effect and show experimental data of miniaturized pillars in chapter 5. With such small TAMR probes we are able to locally sense the magnetization on the 100 nm scale. Sub-micron TAMR and anisotropic magneto resistance (AMR) measurements of sub-millimeter areas show that the behavior of macroscopic (Ga,Mn)As regions is not that of a true macrospin, but rather an ensemble average of the behavior of many nearly identical macrospins. This shows that the magnetic anisotropies of the local regions are consistent with the behavior extracted from macroscopic characterization. A fully electrically controllable read-write memory device out the ferromagnetic semiconductor (Ga,Mn)As is presented in chapter 6. The structure consists of four nanobars which are connected to a circular center region. The first part of the chapter describes the lithography realization of the device. We make use of the sub-micron TAMR probes to read-out the magnetization state of a 650 nm central disk. Four 200 nm wide nanobars are connected to the central disk and serve as source and drain of a spin-polarized current. With the spin-polarized current we are able to switch the magnetization of the central disk by means of current induced switching. Injecting polarized holes with a spin angular momentum into a magnetic region changes the magnetization direction of the region due to the p-d exchange interaction between localized Mn spins and itinerant holes. The magnetization of the central disk can be controlled fully electrically and it can serve as one bit memory element as part of a logic device. In chapter 7 we discuss the domain wall resistance in (Ga,Mn)As. At the transition from nanobars to central disk we are able to generate 90° and 180° domain walls and measure their resistance. The results presented from chapter 5 to 7 combined with the preexisting ultracompact (Ga,Mn)As-based memory cell of ref. [Papp 07c] are the building blocks needed to realize a fully functioning programmable logic device. The work of ref. [Papp 07c] makes use of lithographically engineered strain relaxation to produce a structure comprised of two nanobars with mutually orthogonal uniaxial easy axes, connected by a narrow constriction. Measurements showed that the resistance of the constriction depends on the relative orientation of the magnetization in the two bars. The programmable logic device consists of two central disks connected by a small constriction. The magnetization of the two central disks are used as the input bits and the constriction serves as the output during the logic operation. The concept is introduced in the end of chapter 6 and as an example for a logic operation an XOR gate is presented. The functionality of the programmable logic scheme presented here can be straightforwardly extended to produce multipurpose functional elements, where the given geometry can be used as various different computational elements depending on the number of input bits and the chosen electrical addressing. The realization of such a programmable logic device is shown in chapter 8, where we see that the constriction indeed can serve as a output of the logic operation because its resistance is dependent on the relative magnetization state of both disks. Contrary to ref. [Papp 07c], where the individual magnetic elements connected to the constriction only have two non-volatile magnetic states, each disk in our scheme connected to the constriction has four non-volatile magnetic states. Switching the magnetization of a central disk with an electrical current does not only change the TAMR read-out of the respective disk, it also changes the resistance of the constriction. The resistance polar plot of the constriction maps the relative magnetization states of the individual disks. The presented device design serves as an all-electrical, all-semiconductor logic element. It combines a memory cell and data processing in a single monolithic paradigm.
Röntgenstrukturuntersuchungen an spintronischen Halbleiter- und Halbmetall-Dünnschichtsystemen
(2010)
In dieser Arbeit wurden die strukturellen Eigenschaften von spintronischen Halbleiter- und Halbmetall-Dünnschichtsystemen untersucht. Mit Röntgenreflektivitätsmessungen konnten die Schichtdicken und Grenzflächenrauigkeiten der Mehrschichtsysteme sehr genau bestimmt werden. Hierfür wurde die Software Fewlay verwendet, welche den Parratt-Formalismus zur Berechnung der Reflektivität nutzt. An reziproken Gitterkarten, die an möglichst hoch indizierten Bragg-Reflexen gemessen wurden, konnte das Relaxationsverhalten der Schichtsysteme untersucht werden.
Ferromagnetic semiconductors (FS) promise the integration of magnetic memory functionalities and semiconductor information processing into the same material system. The prototypical FS (Ga,Mn)As has become the focus of semiconductor spintronics research over the past years. The spin-orbit mediated coupling of magnetic and semiconductor properties in this material gives rise to many novel transport-related phenomena which can be harnessed for device applications. In this thesis we address challenges faced in the development of an all-semiconductor memory architecture. A starting point for information storage in FS is the knowledge of their detailed magnetic anisotropy. The first part of this thesis concentrates on the investigation of the magnetization behaviour in compressively strained (Ga,Mn)As by electrical means. The angle between current and magnetization is monitored in magnetoresistance(MR) measurements along many in-plane directions using the Anisotropic MR(AMR) or Planar Hall effect(PHE). It is shown, that a full angular set of such measurements displayed in a color coded resistance polar plot can be used to identify and quantitatively determine the symmetry components of the magnetic anisotropy of (Ga,Mn)As at 4 K. We compile such "anisotropy fingerprints" for many (Ga,Mn)As layers from Wuerzburg and other laboratories and find the presence of three symmetry terms in all layers. The biaxial anisotropy term with easy axes along the [100] and [010] crystal direction dominates the magnetic behaviour. An additional uniaxial term with an anisotropy constant of ~10% of the biaxial one has its easy axis along either of the two <110> directions. A second contribution of uniaxial symmetry with easy axis along one of the biaxial easy axes has a strength of only ~1% of the biaxial anisotropy and is therefore barely visible in standard SQUID measurements. An all-electrical writing scheme would be desirable for commercialization. We report on a current assisted magnetization manipulation experiment in a lateral (Ga,Mn)As nanodevice at 4 K (far below Tc). Reading out the large resistance signal from DW that are confined in nanoconstrictions, we demonstrate the current assisted magnetization switching of a small central island through a hole mediated spin transfer from the adjacent leads. One possible non-perturbative read-out scheme for FS memory devices could be the recently discovered Tunneling Anisotropic MagnetoResistance (TAMR) effect. Here we clarify the origin of the large amplification of the TAMR amplitude in a device with an epitaxial GaAs tunnel barrier at low temperatures. We prove with the help of density of states spectroscopy that a thin (Ga,Mn)As injector layer undergoes a metal insulator transition upon a change of the magnetization direction in the layer plane. The two states can be distinguished by their typical power law behaviour in the measured conductance vs voltage tunneling spectra. While all hereto demonstrated (Ga,Mn)As devices inherited their anisotropic magnetic properties from their parent FS layer, more sophisticated FS architectures will require locally defined FS elements of different magnetic anisotropy on the same wafer. We show that shape anisotropy is not applicable in FS because of their low volume magnetization. We present a method to lithographically engineer the magnetic anisotropy of (Ga,Mn)As by submicron patterning. Anisotropic strain relaxation in submicron bar structures (nanobars) and the related deformation of the crystal lattice introduce a new uniaxial anisotropy term in the energy equation. We demonstrate by both SQUID and transport investigations that this lithographically induced uniaxial anisotropy overwrites the intrinsic biaxial anisotropy at all temperatures up to Tc. The final section of the thesis combines all the above into a novel device scheme. We use anisotropy engineering to fabricate two orthogonal, magnetically uniaxial, nanobars which are electrically connected through a constriction. We find that the constriction resistance depends on the relative orientation of the nanobar magnetizations, which can be written by an in-plane magnetic field. This effect can be explained with the AMR effect in connection with the field line patterns in the respective states. The device offers a novel non-volatile information storage scheme and a corresponding non-perturbative read-out method. The read out signal is shown to increase drastically in samples with partly depleted constriction region. This could be shown to originate in a magnetization direction driven metal insulator transition of the material in the constriction region.
In pursuit of a novel generation of devices, exploration of spin properties of the particles is needed. Spintronics is a modern field in physics which exploits spin properties to be used in addition to the charge degree of freedom. Since the conductivity mismatch problem presents a fundamental obstacle for electrical spin injection from a ferromagnetic metal into a diffusive semiconductor [SFM+00], other means for injecting spin-polarized carriers must be used. With a tunnel contact, it is possible to achieve a highly spin-polarized room-temperature tunnel injection [JWS+05]. We used a novel approach and applied magnetic RTDs for spin manipulation. In this work, properties of all-II-VI magnetic resonant tunneling diodes (RTDs), as applied to spintronics, were reported. Growth conditions were optimized to increase the peak-to-valley ratio, and the design of the RTDs was optimized for observation of spin related transport effects. When an external magnetic field was applied, spin manipulation became possible. Selforganized CdSe quantum structures were grown and investigated using optical means. After embedding them into a (Zn,Be)Se tunneling barrier, the properties were assessed by the resonant tunneling.
Die Zielsetzung dieser Arbeit war die elektrische Spininjektion in Halbleiter zu erforschen und Methoden zu deren Realisation zu entwickeln. Hierzu wurden in dieser Arbeit III-V und II-VI Halbleiterheterostrukturen mit Hilfe von Photolumineszenz-, Elektrolumineszenz- und Anregungsspektroskopie untersucht. Die Messungen wurden bei Temperaturen im Bereich von 1.6 K bis 50 K durchgeführt und es wurden Magnetfelder bis zu 9 T verwendet. Die elektrische Spininjektion in einen nicht magnetischen Halbleiter wurde zum ersten mal in dieser Arbeit nachgewiesen. Hierzu wurden zwei neuartige Konzepte verwendet und miteinander verbunden. Zum einen wurde die Detektion von spinpolarisierten Strömen mit Hilfe von optischen Übergängen durchgeführt. Zum anderen wurde in dieser Arbeit erstmals ein semimagnetischer II-VI Halbleiter als spinpolarisierender Kontakt verwendet. Durch die optische Detektion wurden die bisherigen Magnetowiderstandsmessungen zur Bestimmung der Spininjektion abgelöst und durch die Verwendung von semimagnetischen Halbleitern wurde eine neue Klasse von Materialien für die Anwendung in spinselektiven Halbleiterheterostrukturen gefunden. Für den optischen Detektor der Elektronenpolarisation wurde eine GaAs/(Al, Ga)As Leuchtdiode (Spin-LED) verwendet, in die über das p-dotierte Substrat unpolarisierte Löcher und über den n-dotierten semimagnetischen Halbleiter spinpolarisierte Elektronen injiziert wurden. Das durch die Rekombination der Ladungsträger aus der LED emittierte Licht wurde in Oberflächenemission detektiert. Aufgrund der Auswahlregeln für optische Übergänge in Halbleitern mit Zinkblendestruktur ist es möglich, anhand der zirkularen Polarisation der Elektrolumineszenz, die Polarisation der injizierten Elektronen anzugeben. Abhängig vom externen Magnetfeld wurde die zirkulare Polarisation der Lichtemission von Spin-LEDs analysiert. Diese Polarisation erreichte schon bei geringen externen Magnetfeldern von z.B. 0.5 T sehr hohe Werte von bis zu 50 %. Im Vergleich dazu ist die intrinsische Polarisation von GaAs/(Al, Ga)As Heterostrukturen mit bis zu 5 % sehr gering. An den Spin-LEDs wurden Photolumineszenzmessungen zu der Bestimmung der intrinsischen Polarisation durchgeführt und zusätzlich wurde die Elektrolumineszenz von GaAs LEDs ohne manganhaltigen Kontakt analysiert. Mit Hilfe dieser Referenzmessungen konnten Seiteneffekte, die z.B. durch die magneto-optisch aktive manganhaltige Schicht in den Spin-LEDs verursacht werden können, ausgeschlossen werden. Insgesamt war es möglich die elektrische Spininjektion in Halbleiter eindeutig nachzuweisen.