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The goal of this thesis was the development and application of higher-order spectroscopic techniques. In contrast to ordinary pump–probe (PP) and two-dimensional (2D) spectroscopy, higher-order coherently detected spectroscopic methods measure a polarization that has an order of nonlinearity higher than three. The key idea of the techniques in this thesis is to isolate the higher-order signals from the lower-order signals either by their excitation frequency or by their excitation intensity dependence. Due to the increased number of interactions in higher-order spectroscopy, highly excited states can be probed. For excitonic systems such as aggregates and polymers, the fifth-order signal allows one to directly measure exciton–exciton annihilation (EEA). In polymers and aggregates, the exciton transport is not connected to a change of the absorption and can therefore not be investigated with conventional third-order techniques. In contrast, EEA can be used as a probe to study exciton diffusion in these isonergetic systems. As a part of this thesis, anisotropy in fifth-order 2D spectroscopy was investigated and was used to study geometric properties in polymers.
In 2D spectroscopy, the multi-quantum signals are separated from each other by their spectral position along the excitation axis. This concept can be extended systematically to higher signals. Another approach to isolate multi-quantum signals in PP spectroscopy utilizes the excitation intensity. The PP signal is measured at specific excitation intensities and linear combinations of these measurements result in different signal contributions. However, these signals do not correspond to clean nonlinear signals because the higher-order signals contaminate the lower-order multi-quantum signals. In this thesis, a correction protocol was derived that uses the isolated multiquantum signals, both from 2D spectroscopy and from PP spectroscopy, to remove the contamination of higher-order signals resulting in clean nonlinear signals. Using the correction on the third-order signal allows one to obtain annihilation-free signals at high excitation intensities, i.e., with high signal-to-noise ratio. Isolation and correction in PP and 2D spectroscopy were directly compared by measuring the clean third-order signals of squaraine oligomers at high excitation intensities. Furthermore, higher-order PP spectroscopy was used to isolate up to the 13th nonlinear order of squaraine polymers.
The demonstrated spectroscopic techniques represent general procedures to isolate clean signals in terms of perturbation theory. The technique of higher-order PP spectroscopy needs only small modifications of ordinary PP setups which opens the field of higher-order spectroscopy to the broad scientific community. The technique to obtain clean nonlinear signals allows one to systematically increase the number of interacting (quasi)particles in a system and to characterize their interaction energies and dynamics.
The present thesis describes the development of a strategy to create discrete finite-sized supramolecular stacks of merocyanine dyes. Thus, bichromophoric stacks of two identical or different chromophores could be realized by folding of bis(merocyanine) dyes and their optical properties were discussed in terms of exciton theory. Quantum chemical calculations revealed strong exciton coupling between the chromophores within the homo- and hetero-π-stacks and the increase of the J-band of the hetero-dimers with increasing energy difference between the excited states of the chromophores could be attributed not only to the different magnitudes of transition dipole moments of the chromophores but also to the increased localization of the excitation in the respective exciton state. Furthermore, careful selection of the length of the spacer unit that defines the interplanar distance between the tethered chromophores directed the self-assembly of the respective bis(merocyanines) into dimers, trimers and tetramers comprising large, structurally precise π-stacks of four, six or eight merocyanine chromophores. It could be demonstrated that the structure of such large supramolecular architectures can be adequately elucidated by commonly accessible analysis tools, in particular NMR techniques in combination with UV/vis measurements and mass spectrometry. Supported by TDDFT calculations, the absorption spectra of the herein investigated aggregates could be explained and a relationship between the absorption properties and the number of stacking chromophores could be established based on exciton theory.
In this work the energy transfer and excitonic coupling in different chromophore arrangements were investigated. A difference in the coupling strength was introduced by varring the connecting unit and the spacial orientation relative to each other.
The synthesis of the 2,7-substituted pyrene compounds could be optimised and good yields of HAB 1 and HAB 2 and small amounts of HAB 2 could be achieved by cobalt-catalysed trimerisation or Diels Alder reaction in the end. Absorption and fluorescence spectra reveal strong intramolecular interactions between the pyrene molecules in the HAB 1. Excitation spectra recorded at the high and low energy fluorescence suggest the contribution of two components to the spectra. One being similar to the ground state aggregate and a second species similar to undisturbed pyrene. All these feature can be accounted to two different fluorescent states which are due to electronical decoupling in the excited state. Due to the strong intramolecular coupling already in the ground state of the molecule, no energy transfer could be studied, as the six pyrene units cannot be seen as separate spectroscopic entities between which energy could be transferred.
In the second part of this thesis dye conjugates of different size and alignment were synthesised to study the interaction of the transition-dipole moments. Therefore a systematic investigation of Sonogashira conditions was performed in order to obtain good yields of the desired compounds and keep dehalogenation at a minimum level. Nevertheless only the symmetrical triads could be purified as the asymmeric triads and pentades proved to decompose during purification.
The pyrene containing triads Py2B and Py2SQB show small interactions already in the ground state represented by red shifts of the spectra and a broadening of the bands. Nevertheless, these interactions are in the weak coupling regime and energy transfer between the constituents is possible. On the contrary in the TA spectra it is obvious that always the whole triad, at least to some extend is excited. To question if the excitation of the high energy state is deactivated by energy transfer or rather IC in a superchromophore could not be distinguished in the course of this work. At present additional time-dependent calculations of the dynamics are in progress to get a deeper understanding of the photophysical processes taking place in the triads.
The dye conjugates B2SQB-3 and (SQB)2B-4 can be assigned to the strong interaction range and hence are describable by exciton theory. The transition-dipole moments proved to be more than additive and increase for both compounds from absorption to fluorescence. This can be explained by an enhancement of the coupling in the relaxed excited state compared to the absorption into the Franck-Condon state due to a more steep potential energy surface in the excited state and hence smaller fluctuations.
In the last part of this thesis the influence of disrupting electronical communication by implementing a rigid non-conjugated bridge in a bichromophoric trans-squaraine system was tested. While the flexible linked squaraines show complex spectra due to different conformers the SQA2Anth compound is rigified and no rotation is possible. This change in flexibility is represented in the steady-state spectra where just one main absorption and fluorescence band is present due to a single allowed excitonic state. The system proves to own an excited state that is completely delocalised over the whole molecule.
In der vorliegenden Doktorarbeit konnte gezeigt werden, dass eine starke Exzitonenkopplung nicht nur zwischen gleichen Chromophoren, sondern auch zwischen Chromophoren mit unterschiedlichen Energien der angeregten Zustände möglich ist. Diese beeinflusst maßgeblich die Absorptionsspektren der Heterostapel bestehend aus Merocyanin- bzw. Perylenbisimidfarbstoffen und deutet außerdem auf einen kohärenten Energientransfer zwischen den Chromophoren hin. Weiterhin wurden Bis(merocyanin)-C60-Konjugate synthetisiert, die in unpolaren Lösungsmitteln selbst assemblieren und auf diese Weise wohldefinierte supramolekulare p/n-Heterogrenzflächen gebildet werden. An diesen wurde mithilfe von femtosekundenaufgelöster transienter Absorptionsspektroskopie der photoinduzierte Elektronentransfer untersucht, was ein wichtiger Schritt bei der Erzeugung von Ladungsträgern in organischen Solarzellen darstellt.
This work focuses on theoretical approaches for predicting the valence and core excited states of aggregate systems. For the valence excitations, TD-HF and TD-DFT with different functionals have been tested at the Perylene bisimide (PBI) system. A simple character analysis method based on the calculated transition dipole moments is proposed. However, this method does not work for excited states without any transition dipole moment. Thus, we proposed a more general and more valid method based on a calculated CIS type wavefunction for the character analysis. Furthermore, a model Hamiltonian method is derived from a localized picture. The energies of the diabatic states and the corresponding coupling parameters were also determined on the basis of ab initio calculations. For the core excitation, three different methods were validated for C 1s-excited and ionized states if several small molecules. Also we tested the basis sets dependence of these core excited states. Based on those results, we chose the frozen core approximation method to evaluate the core excited states of NTCDA molecules. In order to explain the findings in the experiments, we developed an algorithm to evaluate the exciton coupling parameter where non-orthogonal MOs are used.
The scope of computational chemistry can be broadened by developing new methods and more efficient algorithms. However, the evaluation of the applicability of the methods for the different fields of chemistry is equally important. In this thesis systems with an unusual and complex electronic structure, such as excitonic states in organic semiconductors, a boron-containing bipolaron and the excited states of pyracene were studied and the applicability of the toolkit of computational chemistry was investigated. Concerning the organic semiconductors the focus was laid on organic solar cells, which are one of the most promising technologies with regard to satisfying the world's need for cheap and environmentally sustainable energy. This is due to the low production and material costs and the possibility of using flexible and transparent devices. However, their efficiency does still not live up to the expectations. Especially the exciton diffusion lengths seem to be significantly too short. In order to arrive at improved modules, a fundamental understanding of the elementary processes occurring in the cell on the molecular and supramolecular level is needed. Computational chemistry can provide insight by separating the different effects and providing models for predictions and prescreenings. In this thesis, the focus was laid on the description of excitonic states in merocyanines and perylene-based dyes taking the influence of the environment into account.
At first, the photochemical isomerization between two configurations of 6-nitro BIPS observed experimentally was studied by first benchmarking several functionals against SCS-ADC(2) in the gas phase and subsequently calculating the excited-state potential energy surface. The geometries obtained from a relaxed scan in the ground state as well as from a scan in the excited state were used. The environment was included using different polarizable continuum models. It was shown that the choice of the model and especially the question of the state specificity of the approach is of vital importance. Using the results of the calculations, a two-dimensional potential energy surface could be constructed that could be used to explain the experimental findings. Furthermore, the importance of the excited-state isomerization as a potential deactivation channel in the exciton transport was pointed out.
Then the assessment of the suitability of different merocyanines for optoelectronic applications with quantum-chemical methods was discussed. At first, the effect of the environment on the geometry, especially on the bond length alternation pattern, was investigated. It was shown that the environment changes the character of the ground-state wave function of several merocyanines qualitatively, which means that the results of gas-phase calculations are meaningless - at least when a comparison with solution or device data is desired. It was demonstrated that using a polarizable continuum model with an effective epsilon, a qualitative agreement between the calculated geometry and the geometry in the crystal structure can be obtained. Therefore, by comparing the bond length alternation in solution and in the crystal, a rough estimate of the effect of the crystal environment can be made.
It was further shown that the connection between the HOMO energy and the open-circuit voltage is not as simple as it is often implied in the literature. It was discussed that it is not clear whether the HOMO of a single molecule or a $\pi$-stack containing several monomers should be used and if the environmental charges of the bulk phase or the interface should be included. Investigating the dependence of the HOMO energy on the stack size yielded no definitive trend. Furthermore, it was discussed that the effect due the optimization of the modules (solvent, bulk heterojunction) during the production masks any potential correlation between the HOMO energy and measured open-circuit values. Therefore, a trend can only be expected for unoptimized bilayer cells. It was concluded that ultimately, the importance of the HOMO energy should not be overestimated.
The correlation between the exciton reorganization energy and the so-called cyanine limit, which is predicted by a simple two-state model, was also discussed. By referring to the results of VB calculations, it was discussed that the correlation indeed exists and is non-negligible, although the effect is not as strong as one might have expected. In this context, a potential application of a VB/MM approach was covered briefly. The importance of the molecular reorganization energy and the device morphology was also discussed.
It was concluded that the optimization of merocyanines for organic optoelectronic devices is inherently a multiparameter problem and one cannot expect to find one particular parameter, which solely controls the efficiency.
The perylene-based dyes were studied with a focus on the description of a potential trapping mechanism involving an intermolecular motion in a dimer. The aim was to find methods which can be applied to larger model systems than a dimer and take the effect of the environment into account. As a test coordinate the longitudinal shift of two monomers against each other was used. At first, it was demonstrated how the character of an excited state in a dimer can be defined and how it can be extracted from a standard quantum-chemical calculation. Then several functionals were benchmarked and their applicability or failure was rationalized using the character analysis. Two recipes could be proposed, which were applied to a constraint optimization (only intermolecular degrees of freedom) in the excited states of the PBI dimer and to the description of the potential energy surfaces of ground and excited states along a longitudinal displacement in the perylene tetramer, respectively.
It was further demonstrated that the semi-empirical OMx methods fail to give an accurate description of the excited-state potential energy surfaces as well as the ground-state surface along the test coordinate. This failure could be attributed to an underestimation of overlap-dependent terms. Consequently, it could be shown that the methods are applicable to large intermolecular distances, where the overlap is negligible. The results of DFT calculations with differently composed basis sets suggested that adding an additional single p-function for each atom should significantly improve the performance.
QM/MM methods are ideally suited to take the effect of the environment on a a dimer model system into account. However, it was shown that standard force fields also give an incorrect description of the interaction between the monomers along the intermolecular coordinate. This failure was attributed to the isotropic atom-atom interaction in the repulsion term of the Lennard-Jones potential. This was corroborated using two simple proof-of-principle anisotropy models. Therefore, a novel force field called OPLS-AA_O was presented that is based on OPLS-AA, but uses an anisotropic model for the repulsion. The model involves the overlap integral between the molecular densities, which are modeled as a sum of atom-centered p-type Gaussian functions. It was shown that using this force field an excellent agreement with the DFT results can be obtained when the correct parameters are used. These parameters, however, are not very generalizable, which was attributed to the simplicity of the model in its current state (using the same exponential parameter for all atoms). As a short excursion, the applicability of an MO-based overlap model was discussed.
It was demonstrated that the repulsion term based on the density overlap can be used to correct the failure of the OMx methods for the ground states. This is in accord with the assumption that an underestimation of the overlap terms is responsible for the failure.
It was shown that OPLS-AA_O also gives an excellent description of the longitudinal shift in a PBI tetramer. Using the tetramer as a test system and applying the recipe obtained in the TDDFT benchmark for the QM-part and OPLS-AA_O for the MM-part in conjunction with an electrostatic embedding scheme, a QM/MM description of the excited states of the PBI dimer including the effect of the environment could be obtained.
In the last chapter the theoretical description of the Bis(borolyl)thiophene dianion and the excited states of pyracene were discussed. The electronic structure of the Bis(borolyl)thiophene dianion - a negative bipolaron - was elucidated using DFT and CASPT2 methods. Furthermore, an estimation of the extent of triplet admixture to the ground state due to spin-orbit coupling was given.
In the second project the S1 and S2 states of pyracene were computed using SCS-CC2 and SCS-ADC(2) and an estimation for the balance between aromaticity and ring strain was given. This also involved computing the vibrational frequencies in the excited states.
In both studies the results of the computations were able to rationalize and complete experimental results.
Zahlreiche theoretische und experimentelle Untersuchungen haben erwiesen, dass in halbleitenden Kohlenstoffnanoröhren durch Absorption von Licht hauptsächlich Exzitonen erzeugt werden. Die photophysikalischen Eigenschaften und insbesondere die Prozesse nach der optischen Anregung sind aber gegenwärtig noch nicht vollständig verstanden. Zeitaufgelöste Spektroskopie bietet die Möglichkeit, diese Prozesse zu verfolgen und somit detaillierten Einblick in das photophysikalische Verhalten von Kohlenstoffnanoröhren zu nehmen. Hierbei scheinen auch extrinsische Faktoren - zu nennen sind die Herstellungsmethode, die Art der Probenpräparation, der Aggregationsgrad sowie der durch das Lösungs- bzw. Dispersionsmittel bedingte Einfluss - eine entscheidende Rolle zu spielen.
In dieser Dissertation wurden die Exzitonengröße sowie die exzitonische Dynamik in einwandigen Kohlenstoffnanoröhren mittels transienter Absorptionsspektroskopie sowie stationärer und zeitaufgelöster Photolumineszenzmessungen untersucht. Alle Experimente fanden dabei an halbleitenden (6,5)-Kohlenstoffnanoröhren statt, deren chirale Anreicherung durch Dichtegradientenultrazentrifugation gelang. Für die temperaturabhängigen Messungen wurde ein Verfahren zur Herstellung von tensidstabilisierten Gelatinefilmen entwickelt. Diese zeichnen sich durch eine hohe Temperaturstabilität bei gleichzeitiger Minimierung von Streulichteffekten aus.
Die Bestimmung der Exzitonengröße erfolgte mit Hilfe des Phasenraumfüllmodells, das die intensitätsabhängige Änderung der Oszillatorstärke eines Übergangs mit der Exzitonengröße verknüpft. Hierfür wurden leistungsabhängige Messungen der transienten Absorption durchgeführt und die Signalintensität des Photobleichens gegen die absorbierte Photonenflussdichte aufgetragen. Da diese beiden Größen nur bei geringer Exzitonendichte in einer linearen Beziehung stehen, aus der sich die Exzitonengröße berechnen lässt, wurde im Experiment besonderer Wert auf niedrige Anregungsfluenzen und deren exakte Bestimmung gelegt. Um den Einfluss der Aggregation quantifizieren zu können und den Vergleich mit der Literatur zu erleichtern, fanden die Untersuchungen sowohl an individualisierten als auch an aggregierten Röhrenproben statt. Die Datenanalyse, bei der erstmalig die stimulierte Emission sowie der spektrale Überlapp von Photoabsorptions- und Photobleichbande Berücksichtigung fanden, ergab für individualisierte (6,5)-Nanoröhren einen Wert von 12.0 nm für die Größe des S1-Exzitons, während diese bei der aggregierten Röhrenprobe nur 5.6 nm beträgt. Die Probenabhängigkeit der Exzitonengröße macht den Vergleich mit anderen experimentell ermittelten Werten schwierig. Diese liegen fast ausschließlich zwischen 1 nm und 4.5 nm, ihre Bestimmung fand aber teilweise an stark aggregierten bzw. polydispersen Proben statt. Theoretische Berechnungen liefern für die Exzitonengröße Werte zwischen 1 nm und 4 nm. Zwar gelten einige der Berechnungen für Vakuum, was verglichen zu einer experimentell in Lösung bzw. im Film bestimmten Exzitonengröße einen kleineren Wert mit sich bringt, jedoch kann allein hierdurch die Diskrepanz zu der in dieser Arbeit ermittelten Exzitonengröße von 12.0 nm nicht erklärt werden. Setzt man experimentell und theoretisch für Vakuum bestimmte Werte für die Exzitonengröße und die Bindungsenergie in einen einfachen Zusammenhang, entspricht eine Exzitonengröße von 12.0 nm einer Bindungsenergie zwischen 0.21 eV und 0.27 eV. Die mittels Zweiphotonenexperimenten ermittelten Werte für die Bindungsenergie von (6,5)-Kohlenstoffnanoröhren befinden sich zwischen 0.37 eV und 0.42 eV; diese wurden allerdings unter Zuhilfenahme eines vereinfachten zylindrischen Modells abgeschätzt. Weitere experimentelle und theoretische Untersuchungen könnten klären, inwieweit eine exzitonische Bindungsenergie zwischen 0.21 eV und 0.27 eV für (6,5)-SWNTs in Betracht kommt.
Strahlender und nichtstrahlender Zerfall in den Grundzustand scheinen in (6,5)-Kohlenstoffnanoröhren durch eine Dynamik zwischen verschiedenen Zuständen sowie durch die Diffusion der Exzitonen beeinflusst zu werden. Um diese für die Rekombination maßgeblichen Prozesse besser zu verstehen, wurden temperaturabhängige Messungen der stationären und zeitaufgelösten Photolumineszenz sowie der transienten Absorption durchgeführt. Die Ergebnisse der stationären PL-Experimente deuten darauf hin, dass die Exzitonen zwischen dem optisch aktiven Singulettzustand mit A2-Symmetrie - im Folgenden mit [B] bezeichnet - und einem energetisch tiefer liegenden dunklen Zustand [D] gestreut werden. Mit einem Wert von 5 meV für die energetische Aufspaltung zwischen [B] und [D] gelingt eine gute Anpassung an die Daten, was mit Blick auf die Bandstruktur von (6,5)-SWNTs vermuten lässt, dass es sich bei [D] um den A1-Singulettzustand handelt. Außerdem scheint eine nichtthermische Verteilung der Exzitonen auf [B] und [D] vorzuliegen, wobei strahlende Rekombination nur vom Zustand [B] aus möglich ist. Mit diesen Annahmen kann das temperaturabhängige Verhalten der stationären Photolumineszenz modelliert werden, die Ergebnisse der zeitaufgelösten PL-Messungen jedoch nicht. Mit einem rein diffusionsdominierten Modell gelingt dies ebenso wenig, so dass zur Interpretation des PL-Zerfalls vermutlich ein Modell entwickelt werden muss, in dem sowohl die Streuung der Exzitonen zwischen [B] und [D] als auch das durch Diffusion bedingte Löschen an Defektstellen oder Röhrenenden Berücksichtigung findet. Die Bedeutung der Diffusion von Exzitonen zu Defektstellen oder Röhrenenden, an denen bevorzugt nichtstrahlender Zerfall stattfindet, kann durch spektral- und zeitaufgelöste PL-Messungen belegt werden. Abhängig von der zur Verfügung stehenden thermischen Energie und der Höhe der Potenzialbarrieren des untersuchten Systems kann die Diffusion niederenergetischer Exzitonen, die sich in Potenzialminima befinden, soweit eingeschränkt werden, dass diese eine fast bis um den Faktor zwei längere PL-Lebensdauer aufweisen als höherenergetische Exzitonen. Das unterschiedliche Verhalten von transienter Absorption und zeitaufgelöster Photolumineszenz bei Temperaturen zwischen 14 K und 35 K zeigt, dass die Repopulation des Grundzustands hauptsächlich von einem anderen Zustand aus erfolgt als die strahlende Rekombination. Ob es sich hierbei aber um den mit [D] bezeichneten A1-Singulettzustand oder einen anderen dunklen Zustand handelt, kann nicht abschließend geklärt werden.
Aufgrund inhomogener Verbreiterung stellt die Halbwertsbreite der Banden im Absorptionsspektrum ein Maß für die Höhe der Potenzialbarrieren bzw. für die energetische Verteilung der Exzitonen im angeregten Zustand dar. In dieser Arbeit wurde anhand vier verschiedener Nanorohrsuspensionen gezeigt, dass Sättigungsverhalten der transienten Absorption von (6,5)-Kohlenstoffnanoröhren und Bandenbreite im Absorptionsspektrum demselben Trend folgen. Begründen kann man dies damit, dass das Sättigungsverhalten der transienten Absorption durch Exziton-Exziton-Annihilation bestimmt wird. Aufgrund ihrer eindimensionalen Struktur unterliegen Kohlenstoffnanoröhren einer starken Beeinflussung durch die Umgebung. Abhängig vom Lösungs- bzw. Dispersionsmittel resultiert eine unterschiedliche inhomogene Verbreiterung der Absorptionsbanden und damit unterschiedlich hohe Potenzialbarrieren im angeregten Zustand. Niedrige Potenzialbarrieren erlauben eine weitreichende Diffusion der Exzitonen, sodass effiziente Exziton-Exziton-Annihilation schon bei einer vergleichsweise geringen Exzitonendichte stattfindet und das Signal der transienten Absorption bei einer niedrigen Impulsfluenz sättigt.
Um die Wirkungsgrade organischer Solarzellen weiter zu steigern, ist ein Verständnis der auftretenden Verlustmechanismen entscheidend. Im Vergleich zu anorganischen photovoltaischen Zellen sind in den organischen Halbleitern die durch Absorption erzeugten Elektron-Loch-Paare, die als Exzitonen bezeichnet werden, sehr viel stärker gebunden. Daher müssen sie an einer Heterogrenzfläche, gebildet durch ein Donator- und ein Akzeptormaterial, in freie Ladungsträger getrennt werden. Mit dem erforderlichen Transportweg an die Heterogrenzschicht sind Rekombinationsverluste der exzitonischen Anregungen verbunden, die aus einer Vielzahl unterschiedlicher Prozesse resultieren und einen der Hauptverlustkanäle in organischen Solarzellen darstellen.
Aus diesem Grund wird der Fokus dieser Arbeit auf die Charakterisierung und mögliche Reduzierung solcher exzitonischen Verlustmechanismen gelegt. Als Modellsystem wird dazu eine planare Bilagen-Struktur auf Basis des Donatormaterials Diindenoperylen (DIP) und des Akzeptors Fulleren C60 verwendet. Durch die Kombination von elektrischen und spektroskopischen Messmethoden werden unterschiedliche exzitonische Verlustmechanismen in den aktiven Schichten charakterisiert und die zugrunde liegenden mikroskopischen Ursachen diskutiert. Dazu wird zuerst auf die strukturellen, optischen und elektrischen Eigenschaften von DIP/C60-Solarzellen eingegangen. In einem zweiten Abschnitt werden die mikroskopischen Einflüsse einer Exzitonen blockierenden Lage (EBL, exciton blocking layer) aus Bathophenanthrolin (BPhen) durch eine komplementäre Charakterisierung von Photolumineszenz und elektrischen Parametern der Solarzellen untersucht, wobei auch die Notwendigkeit der EBL zur Unterbindung von Metalleinlagerungen in den aktiven organischen Schichten analysiert wird. Die anschließende Studie der Intensitäts- und Temperaturabhängigkeit der j(U)-Kennlinien gibt Aufschluss über die intrinsischen Zellparameter sowie die Rekombinationsmechanismen von Ladungsträgern in den aktiven Schichten. Ferner werden durch temperaturabhängige spektroskopische Untersuchungen der Photo- und Elektrolumineszenz der Solarzellen Informationen über die elektronischen Zustände der DIP-Schicht erlangt, die für Rekombinationsverluste der generierten Exzitonen verantwortlich sind. Zusätzlich werden Raman-Messungen an den Solarzellen und Einzelschichten diskutiert. In einer abschließenden Studie werden exzitonische Verluste unter Arbeitsbedingungen der Solarzelle durch Ladungsträgerwechselwirkungen in der Donator-Schicht quantifiziert. In dieser Arbeit konnten verschiedene relevante Verlustprozesse in organischen Solarzellen reduziert werden. Durch die Identifizierung der mikroskopischen Ursachen dieser Verluste wurde eine wichtige Voraussetzung für eine weitere Steigerung der Leistungseffizienz geschaffen.
Two thematic complexes were addressed within this work. One part is related to improvements and new implementations into the CAST program package. Thereby the main focus laid on the delivery of a tool which can be used to characterize complex reactions and their mechanisms. But also within the new force field (FF) method (SAPT-FF) within the CAST program, several improvements were made. The second topic is related to the description of dye molecules and their spectral properties. The main focus within these studies was set on the influence of the environment on these properties. In the first topic improvements of the local acting NEB (nudged elastic band) methods were included and the number of available methods was extended. The initial pathway generation was improved by implementing the IDPP (image dependent pair potential) method and a new method was implemented for describing temperature dependent pathways. Additionally, improvements have been made to the optimization routines (global NEB). As a second part the Pathopt (PO) method was considerably improved. In the beginning of the work the original PO idea was used. In this approach one starts with a global optimization on one n-1 dimensional hyperplane which divides the reaction into two sub-areas for obtaining guesses of TSs (transition states). These found TS guesses were used to optimize to the ”true” TS. Starting from the optimized ones a relaxation to the next connected minima is done. This idea has been automatically implemented and extended to several number of hyperplanes. In this manner a group of pathsegments is obtained which needs to be connected, but within this work it was realized that such a procedure might be not very efficient. Therefore, a new strategy was implemented which is founded on the same constrained global optimization scheme (MCM) for which the user defines the number of hyperplanes generated. The number of such generated hyperplanes should be large enough
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to describe the space between the concerning reactants in a sufficient way. The found minima are directly used to built up the reaction pathway. For this purpose a RMSD (root mean square deviation) criterion is used to walk along ways of minimal change from one to another hyperplane. To prove the implementations various test calculations were carried out and extensions included to prove the capabilities of the new strategy. Related to these tests a new strategy for applying the move steps in MCM (Monte Carlo with minimization) was realized which is also related to the question of the coordinates representation. We were able to show that the hopping steps in MCM can be improved by applying Cartesian steps in combination of random dihedral moves with respect to the constraint. In this way it was possible to show that a large variety of systems can be treated. An additional chapter shows the improvements of the SAPT-FF implementation and related test cases. It was possible to treat benzene dimer and cluster systems of different sizes consistently also in accordance with high level ab initio based approaches. Furthermore, we showed that the SAPT-FF with the right parameters outperforms the standard AMOEBA implementation which is the basis of the SAPT-FF implementation. In the last three chapters deal with the description of perlyene-based dyes. In the first smaller chapter ground state chemistry description of macro cycles of PBI (perylene bisimide) derivatives were investigated. Therefore, AFM (atomic force microscopy) based pictures were explained within our study. The methods to explain aggregation behavior in dependency of the ring size were MD simulations and configuration studies. The last two chapters deal with opto-electronic or photo-physical properties of PBI and PTCDA (perylene-3,4,9,10-tetracarboxylic dianhydride). In detail, we investigated the role of the environment and the aggregate or crystal surrounding by applying different models. In that way implicit and explicit solvation models, the size of aggregates and vibration motions were used. In the case of PBI the recent work is found on preliminary studies related to my bachelor thesis and extends it. It was shown that the direct influence of a polarizable surrounding, as well as explicit inclusion of solvent molecules on the overall description of the excitations and nature of the excited states is weaker as one might expect. However the inclusion of intra-molecular degrees of freedom showed a stronger influence on the state characteristics and can induce a change of the order of states within the dimer picture. For the PTCDA molecule the main focus was set on the description of the absorption spectrum of crystalline thin films. Related to this older works exist which already gave a description and assignment of the absorption band, but are based on different approaches compared to the one used in this work. We used the supermolecule ansatz, whereas the environment and different aggregate sizes were investigated. Within the dimer based approach we were able to show that using continuum solvation (IEFPCM/COSMO) based description for the environment the relative order of states remains unchanged. Similar to the PBI calculations the influence of the vibrational motions /distortions is larger. The simulation of the crystal environment by using QM/MM (quantum mechanics/molecular mechanics) approaches delivered that an asymmetric charge distribution might induce a localization of the excitation and a stronger mixing of states. For obtaining further insights we go beyond the dimer picture and aggregates of different sizes were used, whereas the simulations up to the octadecamer mono- and even dual-layer stack were carried out. Within these calculations it was shown that the H-coupling is dominating over a weaker J-coupling between different stacks. Additionally the calculations based on DFT (density functional theory) and semi-empirics showed that the lowest state in terms of energy are mostly of Frenkel type, whereas the higher lying states are CT ones which mix with embedded Frenkel type states. The first band of the absorption spectrum was explained by inclusion of vibrational motions within the stacks which induce an intensity gain of the first excited state. This intensity was not explainable by using the undistorted stacks. Also relaxations at the crystal surface might play a role, but are experimentally not explainable.
This thesis focused on the influence of the underlying crystal structure and hence, of the mutual molecular orientation, on the excited states in ordered molecular aggregates. For this purpose, two model systems have been investigated. In the prototypical donor-acceptor complex pentacene-perfluoropentacene (PEN-PFP) the optical accessibility of the charge transfer state and the possibility to fabricate highly defined interfaces by means of single crystal templates enabled a deep understanding of the spatial anisotropy of the charge transfer state formation. Transferring the obtained insights to the design of prototypical donor-acceptor devices, the importance of interface control to minimize the occurrence of charge transfer traps and thereby, to improve the device performance, could be demonstrated. The use of zinc phthalocyanine (ZnPc) allowed for the examination of the influence of molecular packing on the excited electronic states without a change in molecular species by virtue of its inherent polymorphism. Combining structural investigations, optical absorption and emission spectroscopy, as well as Franck-Condon modeling of emission spectra revealed the nature of the optical excited state emission in relation to the structural \(\alpha \) and \(\beta \) phase over a wide temperature range from 4 K to 300 K. As a results, the phase transition kinetics of the first order \(\alpha \rightarrow \beta\) phase transition were characterized in depth and applied to the fabrication of prototypical dual luminescent OLEDs.