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The thesis presents the results of the investigations of electronic properties and defect states of dislocation networks (DNs) in silicon produced by wafers direct bonding technique. Practical interest for the investigations in this area issued – first of all – from the potential application of such dislocation networks in microelectronics as all-Si light emitter for on-chip interconnection. Besides, dislocation networks may serve as a perfect model object to get new information about the fundamental properties of dislocations and grain boundaries in Si, what is of particular importance for multicrystalline silicon solar cells performance. Despite of a long story of studying of dislocations in silicon, a new insight into the understanding of their very attractive properties was succeeded due to the usage of a new, recently developed silicon wafer direct bonding technique, allowing to create regular dislocation networks with predefined dislocation types and densities. Samples for the investigations were prepared by hydrophilic bonding of p-type Si (100) wafers with same small misorientation tilt angle (~0,5°), but with four different twist misorientation angles Atw (being of <1°, 3°, 6° and 30°, respectively), thus giving rise to the different DN microstructure on every particular sample. The main experimental approach of this work was the measurements of current and capacitance of Schottky diodes prepared on the samples which contained the dislocation network at a depth that allowed one to realize all capabilities of different methods of space charge region spectroscopy (such as CV/IV, DLTS, ITS, etc.). The key tasks for the investigations were specified as the exploration of the DN-related gap states, their variations with gradually increasing twist angle Atw, investigation of the electrical field impact on the carrier emission from the dislocation-related states, as well as the establishing of the correlation between the electrical (DLTS), optical (photoluminescence PL) and structural (TEM) properties of DNs. The most important conclusions drawn from the experimental investigations and theoretical calculations can be formulated as follows: - DLTS measurements have revealed a great difference in the electronic structure of small-angle (SA) and large-angle (LA) bonded interfaces: dominating shallow level and a set of 6-7 deep levels were found in SA-samples with Atw of 1° and 3°, whereas the prevalent deep levels – in LA-samples with Atw of 6° and 30°. The critical twist misorientation angle separating SA- and LA- interfaces was estimated as Atw*≈ 3,5±0,5°, what agrees quiet well with the results of previous PL and TEM investigations. - For the dominating shallow traps in SA-samples (denoted as ST1/ST3 traps) a new phenomenon – that is ‘giant Poole-Frenkel effect’ of enhanced carrier emission due to dislocations elastic strain field was observed for the first time. Performed theoretical calculations have shown that in the investigated samples such an effect should be ascribed to the row of 60° dislocations rather than to the mesh of screw ones. In this respect, shallow traps ST1/ST3 were identified either with shallow 1D bands (directly or as being coupled with them) or with shallow stacking fault states on splitted 60° dislocation. - From the comparison and correlations of measured DLTS spectra with the results of PL and TEM investigations it was established, that shallow ST1/ST3 traps participate in D1 radiative recombination and that the structural elements, responsible for D1 luminescence of small-angle DNs, are the triple knots (intersections with screw dislocations) along the 60° dislocations. However, the optimal density of 60° dislocations as well as of triple knots, in other words – the optimal tilt and twist misorientation angles for maximal D1 intensity – needs further clarification.
Die vorliegende Arbeit befaßt sich mit der Entwicklung von MOS-Transistoren mit lateral erweitertem Drainanschluss (LDMOS) und deren Integration in eine 0.13µm SiGe:C-BiCMOS-Technologie. In dieser Technologie stehen neben SiGe-Heterobipolartransistoren (HBT) auch komplementäre MOS Feldeffekttransistoren (MOSFET) für Betriebsspannungen von 1.2V und 3.3V sowie passive Bauelemente, wie z.B. integrierte Kondensatoren, Widerstände und Spulen, zur Verfügung. Die 0.13µm-BiCMOS-Technologie verbindet so die Vorteile eines skalierten CMOS-Prozesses, z.B. für Digitalschaltungen mit hohen Rechenleistungen, mit den sehr guten Hochfrequenzeigenschaften der SiGe-HBTs. Damit ermöglicht sie neuartige Anwendungen im Millimeterwellenbereich, wie z.B. in optischen Netzwerken mit Übertragungsraten über 100 Gb/s oder in drahtlosen Kommunikationssystemen. Die zusätzliche Integration von Hochvolt-MOSFETs, mit der sich diese Arbeit befasst, ermöglicht eine erweiterte Funktionalität der mittels der BiCMOS-Technologie herstellbaren Schaltkreise. In der Regel verlangt die Herstellung von Hochvolttransistoren in etablierten BiCMOS- oder CMOS-Umgebungen meist zusätzlichen Prozessaufwand zu den Standardabläufen. Ein wesentliches Ziel dieser Arbeit war die Entwicklung von Integrationskonzepten die diesen technologischen Mehraufwand minimieren. Im ersten Teil dieser Arbeit wird ein Integrationskonzept entwickelt, welches die Herstellung komplementärer LDMOS-Transistoren erlaubt, d.h. LDMOS-Transistoren mit n-Kanal (NLDMOS) als auch p-Kanal (PLDMOS), und einen zusätzlichen Maskenschritt pro Transistortyp im Vergleich zum Basisprozess erfordert. Dabei wird speziell die Driftregion des NLDMOS-Transistors und insbesondere der Einfluss eines innerhalb der n-dotierten Driftregion realisierten p-dotierten Gebietes untersucht. Im zweiten Teil dieser Arbeit wird ein neuartiges Prinzip zur Realisierung von Hochvolttransistoren ohne zusätzlichen Prozessaufwand vorgestellt. Dabei wird die schwach dotierte Driftregion durch eine spezielle Kombination von Implantationen des Basis-CMOS-Prozesses hergestellt. Das vorgestellte Konzept wird so optimiert, dass es auch die Realisierung von komplementären Hochvolttransistoren erlaubt. Trotz des minimalen bzw. keines technologischen Mehraufwandes bei der Realisierung der komplementären Transistoren erzielen die Bauelemente Spitzenwerte in den Grenzfrequenzen bei den entsprechenden maximalen Betriebs- und Durchbruchspannungen für Si-basierte LDMOS-Transistoren.
Nanotopography development induced by photoelectrochemical in situ conditioning of silicon is followed using a combination of surface sensitive analysis techniques. In an etching study, vertical nanostructure analysis reveals a buried stressed layer within silicon, identified by Brewster-angle analysis (BAA). In conjunction with in system synchrotron radiation photoelectron spectroscopy (SRPES), a superior quality hydrogen terminated Si(111) surface could be prepared by obliteration of the intermediate stressed layer. Using a novel photoelectrochemical structure formation method, a variety of vertical nanotopographies has been generated and analyzed by in situ Brewster-angle reflectometry (BAR) and scanning probe microscopy (SPM). Shaping of the nanostructures became possible by real-time monitoring using BAR. Appearances range from aligned single nanoislands with improved aspect ratio to connected Si nano-networks. A model was developed to describe the nanostructure formation based on stress-induced selective oxidation. Increased local photo-oxidation is found to result in the formation of extended horizontal micro- and nanostructures with fractal properties. Within a defined light intensity range, the structures reveal the azimuthal symmetry of the investigated crystal planes (111), (100), (110) and (113). The observed features could be reproduced using a model that is based on the interplay of stress in silicon, oxidation by light generated excess holes and locally increased etching in fluoride containing solution.
The International Linear Collider offers a lot of different interesting challenges concerning the physics of elementary particles as well as the development of accelerator and detector technologies. In this thesis, we investigate two rather separate topics - the precision measurement of the Higgs boson mass and of its coupling to the neutral gauge boson Z and the research and development of sensors for BeamCal, which is a sub-detector system of the ILC detector. After the Higgs boson has been found, it is important to determine its properties with high precision. We employ the Higgs-strahlung process for this purpose. A virtual Z boson is created in the electron-positron collisions, which emits a Higgs-boson while becoming on-shell. Using the so-called recoil technique, we determine the Higgs boson mass by reconstructing the Z boson momentum and using the center-of-mass energy of the colliding leptons. This technique allows to measure the Higgs boson mass without considering the Higgs boson decay, i.e. it can be applied even to a Higgs boson invisibly decaying. Monte-Carlo studies including a full detector simulation and a full event reconstruction were performed to simulate the impact of a realistic detector model on the precision of the Higgs boson mass and production cross-section measurement. Also, an analytical estimate of the influence of a given detector performance on the Higgs boson mass measurement uncertainty is given. We included a complete sample of background events predicted by the Standard Model, which may have a detector response similar to the signal events. A probabilistic method is used for the signal-background separation. Several other probabilistic methods were used to investigate and improve the measurement of the Higgs-strahlung cross-section and the Higgs boson mass from the recoil mass spectrum obtained after the signal-background separation. For a Higgs boson mass of 120 GeV, a center-of-mass energy of 250 GeV and an integrated luminosity of 50/fb, a relative uncertainty of 10% is obtained for the cross-section measurement, and a precision of 118 MeV for the Higgs boson mass. The original motivation to use the recoil technique for a Higgs boson mass measurement independent on its decay modes could not be completely confirmed. For a Higgs boson mass of 180 GeV and 350 GeV, a statistics corresponding to 50/fb is not sufficient to achieve the necessary significance of the recoil mass peak above the background. The BeamCal is a calorimeter in the very forward region, about 3 m away from the nominal interaction point and surrounding the beam pipe. Due to its location, a lot of beamstrahlung pair particles will hit this calorimeter, representing a challenge for the operational reliability of the sensors under such harsh radiation conditions. We investigated single-crystal and polycrystalline CVD diamond, gallium arsenide and radiation-hard silicon as sensor candidates for their radiation hardness and found that diamond and gallium arsenide are promising. We used a 10 MeV electron beam of few nA to irradiate the samples under investigation up to doses of 5 MGy for diamond, up to about 1.5 MGy for gallium arsenide and up to about 90 kGy for silicon. We measured in regular periods the CCD to characterize the impact of the absorbed dose on the size of the signal, which is generated by electrons of a Sr-90 source crossing the sensor. Additional measurements such as the dark current and the CCD as functions of the voltage completed the characterization of the sensor candidates. For the single-crystal CVD diamond, also the thermally stimulated current was measured to determine amongst others the defect density created by irradiation. In the diamond samples, evidence for strong polarization effects inside the material was found and investigated in more detail. A phenomenological model based on semi-conductor physics was developed to describe the sensor properties as a function of the applied electric field, the dose and the dose rate. Its predictions were compared with the results of the measurements. Several parameters such as time scales and cross-sections were determined using this model, which led to ongoing investigations.
In this work, the electrical and luminescence properties of a series of Si based materials used for photovoltaics, microelectronics and nanoelectronics have been investigated by means of electron beam induced current (EBIC), cathodoluminescence (CL), photoluminescence (PL) and electroluminescence (EL). Photovoltaic Si produced by block casting has been investigated by EBIC on wafers sliced from different parts of the ingot. The impact of selected solar cell processing steps on the material properties has been evaluated by EBIC utilizing adjacent wafers from the ingot. The temperature dependence of dislocations’ EBIC contrast was measured to assess the degree of dislocation contamination with impurities, yielding low dislocation contamination for the middle of the block and high contamination in the top and bottom regions. This is in agreement with the impurity distribution in the block. It was found that phosphorus diffusion gettering (PDG) followed by SiN firing greatly reduces the recombination activity of extended defects at room temperature, and improves the bulk property simultaneously. The improvement is attributed to both PDG of metal impurities and a passivation effect of SiN firing. In order to better understand the factors limiting the properties of thin polycrystalline Si layers prepared by the Aluminum induced layer exchange (Alile) technique, epilayers grown on (111) and (100) monocrystalline Si substrates were used as a model system to investigate the impact of processing temperature (Ts) and type of substrate. It was found that no dislocations are formed for epilayers on (100) Si, while a high density of dislocations was detected on epilayers prepared on (111) Si at 450 °C. The dislocation density decreases with increasing TS. The diffusion lengths extracted from the energy dependent EBIC collection efficiencies reveal an improvement of the epilayer quality with increasing TS during growth from 450 °C to 650 °C, and a decrease of the epilayer quality at 700 °C. This is attributed to a reduction of the dislocation density with increasing TS and a formation of precipitates during the process. Precipitate formation of at 700 °C is limited because the metal impurities are very mobile at high TS, resulting in a homogeneous distribution of the impurities. Because the impurities are effective lifetime killers of the minority carriers, so the diffusion length decreases. PL measurements on epilayers grown on Si substrates revealed no characteristic dislocation-related luminescence (DRL) lines at room temperature and 77 K, while intense characteristic DRL lines D1 - D4 have been detected in the sample prepared by the Alile technique. This indicates that dislocations in the Alile sample are relatively clean. The possible reason for the purification of the Alile samples is Al induced gettering during the polycrystalline Si layer growth. The diffusion length in the thin top layer of Si-on-insulator (SOI) samples has been successfully measured by EBIC employing suppression of the surface recombination at the buried oxide layer and at surface of the top layer by biasing. The measured diffusion length is several times larger than the layer thickness. Dislocation networks produced by Si wafer direct bonding have been investigated with regard to their electrical properties by EBIC. The networks were observed to show charge carrier collection and electrical conduction. Inhomogeneities in the charge collection were detected in n- and p-type samples under appropriate beam energy. The EBIC contrast behavior can be understood under the consideration of the positively charged oxide precipitates along with dislocations charged with majority carriers, where the appearance of the contrast in dark or bright depends strongly on the ratio of the collection and the recombination loss of the carriers.The luminescence properties of Si nanostructures (Si nanowires, Si nano rods, porous Si, and Si/SiO2 multi quantum wells (MQWs)) are another important subject of this work. Sub-bandgap infrared (IR) luminescence around 1570 nm has been found in Si nanowires, nano rods and porous Si. PL measurements with samples immersed in different liquid media, for example, in aqueous HF (50%), concentrated H2SO4 (98%) and H2O2 established that the sub-bandgap IR luminescence originates from the Si/SiOx interface. Its origin was explained in terms of a simple recombination model through radiative interface states. EL in the sub-bandgap IR range has been observed in simple diodes prepared on porous Si and MQWs at room temperature. The results show the possibility to fabricate an efficient light emitter around 1570 nm wavelength based on the radiative recombination at the Si/Si oxide interface. Based on the knowledge about radiative transitions via the interface states, an improved understanding of luminescence in dislocated samples was proposed.
This thesis addresses the electro-optical properties of silicon, containing dislocations. The interest in those properties is driven mainly by two practical reasons. One is the optical characterisation of multicrystalline silicon for solar cells, and the other is the design of light emitting diodes based on silicon by enhancement of silicon radiative properties via introduction of dislocations. The work demonstrates that dislocation specific radiation may provide a means for optical diagnostics of solar cell grade silicon. It provides insight into the mechanisms governing the dislocation recombination activity, their radiation, and how are they influenced by other defects present in silicon. We demonstrate that photoluminescence mapping is useful for monitoring the recombination activity in solar cell grade silicon and can be applied for identification of contaminants, based on their photoluminescence signatures. It is shown that the recombination at dislocations is strongly influenced by the presence of metals at the dislocation sites. The dislocation radiation activity correlates with their electrical activity. Thus, photoluminescence mapping at room temperature may provide a means for revealing and characterising of dislocation-rich regions in multicrystalline silicon. It is shown that the dislocation and band-to-band luminescence are essentially anti-correlated. The band-to-band intensity being related to the diffusion length of minority carriers can be used for measurements of diffusion length, as long as the surface recombination rate is controlled. Moreover, photoluminescence mapping can be used for the detection of optically active defects in solar grade materials. Thus, betaFeSi2 precipitates, with a luminescence at 0.8 eV, were detected within the grains of block cast materials. They exhibit a characteristic feature of quantum dots, namely blinking. The second aspect of the thesis concerns the topic of silicon based light emitters for on-chip optical interconnects. The goal is an enhancement of sub-band-gap or band-to-band radiation by controlled formation of dislocation-rich areas in microelectronics-grade silicon as well as understanding of the processes governing such enhancement. For light emitters based on band-to-band emission it is shown, that internal quantum efficiency of nearly 2 % can be achieved, but the emission is essentially generated in the bulk of the wafer. On the other hand, light emitters utilizing the emission from dislocation-rich areas of a well localized wafer depth were explored. Three different methods for reproducible formation of a dislocation-rich region beneath the wafer surface were investigated and evaluated in view of their room temperature sub-band-gap radiation: (1) silicon implantation and annealing, (2) epitaxially grown SiGe buffer, and (3) direct wafer bonding. The most promising dislocation-based emitter appears the utilization of a dislocation network produced by wafer bonding. It is shown, that monochromatic D1 radiation (wavelength 1.5 µm) can be generated in a well localised depth of the wafer. The radiation is not absorbed in silicon and such localized emitter can, potentially, be coupled with silicon waveguides and Ge-based detectors for optical interconnects.
Die internationale Temperaturskala von 1990 wird im Bereich von -38,8344°C bis 961,78°C neben dem Wasser- und dem Quecksilber-Tripelpunkt durch Schmelz- und Erstarrungstemperaturen von Reinstmetallen definiert. Die Unsicherheiten bei der Darstellung und Weitergabe der Basiseinheit Kelvin des Internationalen Einheitensystems in diesem Bereich (und somit auch der Einheit Grad Celsius und aller abgeleiteten Einheiten) werden dominiert von den Unsicherheiten der Realisierung dieser Fixpunkte und diese wiederum von einem Beitrag, der vom Einfluss in den Metallen gelöster Verunreinigungen herrührt und bis jetzt nur pauschal abgeschätzt wurde. Zwar wird versucht, noch reineres Fixpunktmetall zu verwenden, aber wesentliche Verbesserungen bezüglich der Reproduzierbarkeit der Fixpunkttemperaturen können nur durch eine Korrektion dieser Beiträge erreicht werden. Voraussetzungen für diese Korrektion sind nicht nur eine chemische Spurenanalyse der Fixpunktmetalle mit Unsicherheiten und Detektionsgrenzen am aktuellen technischen Limit, sondern auch die Kenntnis der Auswirkungen jeder einzelnen Verunreinigung auf die Fixpunkttemperatur. Diese Abhängigkeit der Phasenübergangstemperatur von der Konzentration der jeweiligen Verunreinigung wird auf Grund fehlender Kenntnisse im Bereich kleinster Konzentrationen von 10^-9 bis 10^-5 (mol/mol) experimentell durch gezielte Dotierung der Fixpunktmetalle bestimmt. Um die dargestellten Probleme grundlegend zu lösen, wurden im Rahmen dieser Arbeit zwei verschiedene Fixpunktzelldesigns entwickelt. Beide erlauben eine Messung und Kontrolle des Drucks der Gasatmosphäre und sind außerdem wiederverschließbar, wodurch sie eine chemische Analyse des Fixpunktmaterials ermöglichen, das sich in der Zusammensetzung wesentlich von dem unterscheiden kann, mit dem die Zelle befüllt worden ist. Während der eine Zelltyp für Kalibrierzwecke konstruiert worden ist und den herkömmlichen Zellen ähnelt, wurde der zweite Typ auf die Verwendung von deutlich weniger Fixpunktmetall hin optimiert, so dass er sich unter anderem gut für die erwähnten Dotierungsexperimente eignet. Zunächst allerdings bringen die Veränderungen im Design gegenüber den üblichen Fixpunktzellen unvermeidlich eine Vergrößerung unerwünschter parasitärer Wärmeflüsse mit sich, welche als sogenannte thermische Effekte die gemessene Fixpunkttemperatur verfälschen. Diese fallen bei der angestrebten Verwendung von höchstreinem Fixpunktmetall relativ zu den anderen Einflussgrößen umso mehr ins Gewicht, deswegen wurde ihre Untersuchung zu einem weiteren Schwerpunkt der Arbeit. Dabei konnte ein Verfahren zur Quantifizierung und Korrektion und ein besseres Verständnis dieser Effekte entwickelt werden, welche für Metallfixpunktzellen jeder Bauart nützlich sind. Im Ergebnis liegen die Unsicherheiten bei den Messungen mit den verkleinerten Zellen unverändert im Bereich weniger hundert Mikrokelvin. Die Zellen eignen sich daher sehr gut, die Beeinflussung der Phasenübergangstemperatur der Metallfixpunkte durch die Dotierung mit anderen Elementen im Konzentrationsbereich von 10^-7 bis 10^-5 zu bestimmen. Bevor dies abschließend auch experimentell mit Untersuchungen an ausgewählten binären Systemen gezeigt wird, werden thermodynamische Berechnungen dargestellt, die erstmals eine Vielzahl von möglichen Verunreinigungen in den Fixpunktzellen ausschließen, so dass sich nicht nur die Anzahl zu untersuchender möglicher Verunreinigungen in den Fixpunkten erheblich reduziert, sondern auch die Anzahl zu berücksichtigender Beiträge bei der angestrebten Korrektion der Fixpunkttemperaturen. Alles in allem steht nun eine Methodik zur Verfügung, die Unsicherheit bei der Darstellung der internationalen Temperaturskala im industriell besonders wichtigen Bereich von -40°C bis 1000°C mindestens um den Faktor 3 zu reduzieren.
This thesis addresses fundamental physical processes which take place at the surface region of a target during and after the interaction with ultra-short laser pulses. The general goal is to bring together different phenomena and discuss the non-equilibrium nature of the interaction of femtosecond laser pulses (tp < 100 fs) with various materials, in particular dielectrics and semiconductors. Different experiments, using various techniques, are designed to explore the basic mechanisms of laser ionization, defect creation, electron-lattice energetic transfer, charged particles desorption, optical breakdown, phase transformations and surface morphological changes. Such processes are shown to depend strongly on the laser intensity. Thus, they are analyzed for intensities over four orders of magnitude (10^11-10^14 W/cm2), around the surface optical breakdown (damage) threshold intensity. First, experimental studies using time-of-flight mass spectrometry indicate that non-resonant intense ultra-short laser pulses can efficiently ionize a dielectric (semiconducting) material leading to emission of electrons as well as charged particles, i.e. atomic ions and large clusters, and neutral particles. Under these irradiation conditions, the ionization processes can be at best described by multiphoton ionization and ionization at defects sites. The structural defects provide the means for an increased positive ion desorption rate. A multiple pulse incubation effect in the ion yield can be well related with the reduction of the multi-pulse damage threshold with increasing intensity. Following the initial electron excitation and emission, positive ions are released from the surface in a substantial amount with high ion velocities indicative of a localized microscopic electrostatic expulsion. With increasing intensity, the amount of ions gets larger and larger and their velocity distribution exhibits a bimodal structure. Also, in these conditions, negative ions are detected. The ion desorption can arise from a combination of a localized electrostatic repulsion (macroscopic Coulomb explosion) and a thermal ‘explosive’ mechanism. The later becomes more important with increasing intensity. The very fast energy input and particle emission result in a transient perturbation and deformation of the target lattice. Using pump-probe experiments the temporal evolution of lattice dynamics can be analyzed upon single-pulse excitation for many different target materials. This deformation is indicated to be a material characteristic. It is associated with the generation of transient defects in dielectrics or fast phase transitions in semiconductors and metals. Therefore, it could well give estimates of lifetime of transient defect states or electron-phonon relaxation times.At last the surface morphology after ablation is analyzed, with emphasis on the laser-induced surface periodic patterns (ripples). The patterns observed appear to be very different from the ‘classical’ ripples formed after long pulse ablation. They can have periods much smaller than the incident wavelength and are rather insensitive to the variation of the laser wavelength and angle of incidence. We show that control factors are laser beam polarization and the irradiation dose. Additionally, the patterns exhibit features pointing toward a chaotic origin. Their possible formation mechanism is likely linked with the non-equilibrium nature of the interaction.
Das Ziel der vorliegenden Arbeit ist es, einen Beitrag zum Verständnis mikroskopischer Prozesse zu leisten welche an der Laser-Ablation dielektrischer Kristalle mit ultrakurzen Laserpulsen beteiligt sind. Die von den Targets emittierten elektrisch geladenen Partikel werden mit einem Flugzeitmassenspektrometer nachgewiesen, und die resultierende Morphologie der Targetoberfläche wird ex-situ mit Methoden der optischen Mikroskopie bzw. der Raster-Elektronenmikroskopie charakterisiert. Die Absorption der Laserstrahlung führt zu Multiphotonen-Ionisationsprozessen, so dass es zu einer Coulomb-Explosion der Oberfläche kommt. Bei hohen Laserintensitäten gibt es außerdem thermische Beiträge zu Ablation (Phasen-Explosion). Für die resonante Unterstützung der Photoelektronenemission sind materialabhängige Oberflächenzustände (z. Bsp. F-Zentren) wichtig. An BaF2 (111) Oberflächen wird ein „Layer-by-Layer“ Abtrag beobachtet. Die Partikelemission hinterlässt eine instabile Oberfläche, deshalb kann es im Ablationskrater zur Ausbreitung von Oberflächenwellen und der Bildung von Ripples durch selbst-organisierte Prozesse kommen.