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This work is concerned with the syntheses and photophysical properties of para-xylylene bridged macrocycles nPBI with ring sizes from two to nine PBI units, as well as the complexation of polycyclic aromatic guest compounds.
With a reduced but substantial fluorescence quantum yield of 21% (in CHCl3) the free host 2PBI(4-tBu)4 can be used as a dual fluorescence probe. Upon encapsulation of rather electron-poor guests the fluorescence quenching interactions between the chromophores are prevented, leading to a significant fluorescence enhancement to > 90% (“turn-on”). On the other hand, the addition of electron-rich guest molecules induces an electron transfer from the guest to the electron-poor PBI chromophores and thus quenches the fluorescence entirely (“turn-off”). The photophysical properties of the host-guest complexes were studied by transient absorption spectroscopy. These measurements revealed that the charge transfer between guest and 2PBI(4-tBu)4 occurs in the “normal region” of the Marcus-parabola with the fastest charge separation rate for perylene. In contrast, the charge recombination back to the PBI ground state lies far in the “inverted region” of the Marcus-parabola.
Beside complexation of planar aromatic hydrocarbons into the cavity of the cyclophanes an encapsulation of fullerene into the cyclic trimer 3PBI(4-tBu)4 was observed. 3PBI(4-tBu)4 provides a tube-like structure in which the PBI subunits represent the walls of those tubes. The cavity has the optimal size for hosting fullerenes, with C70 fitting better than C60 and a binding constant that is higher by a factor of 10. TA spectroscopy in toluene that was performed on the C60@3PBI(4-tBu)4 complex revealed two energy transfer processes. The first one comes from the excited PBI to the fullerene, which subsequently populates the triplet state. From the fullerene triplet state a second energy transfer occurs back to the PBI to generate the PBI triplet state.
In all cycles that were studied by TA spectroscopy, symmetry-breaking charge separation (SB-CS) was observed in dichloromethane. This process is fastest within the PBI cyclophane 2PBI(4-tBu)4 and slows down for larger cycles, suggesting that the charge separation takes place through space and not through bonds. The charges then recombine to the PBI triplet state via a radical pair intersystem crossing (RP-ISC) mechanism, which could be used to generate singlet oxygen in yields of ~20%.
By changing the solvent to toluene an intramolecular folding of the even-numbered larger cycles was observed that quenches the fluorescence and increases the 0-1 transition band in the absorption spectra. Force field calculations of 4PBI(4-tBu)4 suggested a folding into pairs of dimers, which explains the remarkable odd-even effect with respect to the number of connected PBI chromophores and the resulting alternation in the absorption and fluorescence properties. Thus, the even-numbered macrocycles can fold in a way that all chromophores are in a paired arrangement, while the odd-numbered cycles have open conformations (3PBI(4-tBu)4, 5PBI(4-tBu)4, 7PBI(4-tBu)4) or at least additional unpaired PBI unit (9PBI(4-tBu)4).
With these experiments we could for the first time give insights in the interactions between cyclic PBI hosts and aromatic guest molecules. Associated with the encapsulation of guest molecules a variety of possible applications can be envisioned, like fluorescence sensing, chiral recognition and photodynamic therapy by singlet oxygen generation. Particularly, these macrocycles provide photophysical relaxation pathways of PBIs, like charge separation and recombination and triplet state formation that are hardly feasible in monomeric PBI dyes. Furthermore, diverse compound specific features were found, like the odd-even effect in the folding process or the transition of superficial nanostructures of the tetrameric cycle influenced by the AFM tip. The comprehensive properties of these macrocycles provide the basis for further oncoming studies and can serve as an inspiration for the synthesis of new macrocyclic compounds.
Eine Reihe von Acetylen-verknüpften Perylenbisimid(PBI)-Makrozyklen mit unterschiedlicher Ringgröße wurde durch Palladium-katalysierte Homokupplung synthetisiert und mit Hilfe von Recycling-GPC getrennt. Diese Makrozyklen wurden durch NMR-Spektroskopie und Massenspektrometrie charakterisiert und weiterhin die photophysikalischen Eigenschaften durch UV/Vis-Absorptions- und Fluoreszenzemissions-Messungen untersucht. Die Selbstorganisation dieser PBI-Makrozyklen zu hochgeordneten Nanostrukturen auf HOPG-Oberflächen wurde mittels Rasterkraftmikroskopie untersucht.
The main objective of this thesis was the design and synthesis of perylene bisimide dyes with sufficient water-solubility for the construction of self-assembled architectures in aqueous solutions. Beside these tasks another goal of this project was the control over the self-assembly process in terms of aggregate size and helicity, respectively. Within this thesis an appropriate synthesis for spermine-functionalized perylene bisimide dyes was developed and conducted successfully. The characterization of these building blocks and their course of self-assembly were investigated by NMR, UV/Vis and fluorescence spectroscopy as well as by atomic force and transmission electron microscopy. For the better understanding of the experimental results theoretical calculations were performed.
The thesis enhances the strategy of non-destructive fluorescence read-out in rylene bisimide-diarylethene containing photochromic systems. The fluorescence of the emitter unit is quenched by a photoinduced electron transfer only to one of the isomeric forms of the photochrome. The driving force of the fuorescence-quenching electron transfer was calculated by the help of the Rehm-Weller equation. The novel photochromic systems satisfy the necessary requirements for non-destructive read-out in write/read/erase fluorescent memory devices.
The objective of this thesis focuses on the development of strategies for precise control of perylene bisimide (PBI) self-assembly and the in-depth elucidation of structural and optical features of discrete PBI aggregates by means of NMR and UV/Vis spectroscopy. The strategy for discrete dimer formation of PBIs is based on delicate steric control that distinguishes the two facets of the central perylene surface. The strategy applied in this thesis for accessing discrete PBI quadruple and further oligomeric stacks relies on backbone-directed PBI self-assembly. For this purpose, two tweezer-like PBI dyads bearing the respective rigid backbones, diphenylacetylene (DPA) and diphenylbutydiyne (DPB), were synthesized. The distinct aggregation behavior of these structurally similar PBI dyads can be ascribed to the intramolecular distance between the two PBI chromophores imparted by the DPA and DPB spacers.
As a traditional industrial pigment, perylene bisimide (PBI) dyes have found wide-spread applications. In addition, PBI dyes have been considered as versatile and promising functional materials for organic-based electronic and optic devices, such as transistors and solar cells. For these novel demands, the control of self-organization of this type of dye and the investigation of the relationship between the supramolecular structure and the relevant optical and electronic properties is of great importance. The objective of this thesis focuses on gaining a better understanding of structural and functional properties of pi-stacks based on self-assembling PBIs. Studies include the synthesis and characterization of new functional PBI dyes, their aggregation in solution, in liquid crystalline state and on surfaces, and their fluorescence and charge transport properties. An overview of the formation, thermodynamics and structures of pi-stacks of functional pi- conjugated molecules in solution and in liquid crystalline phases is given in Chapter 2. Chapters 3 and 4 deal with the pi-pi aggregates of new, highly fluorescent PBIs without core-substituents. In Chapter 3, the self-assembly of a PBI with tridodecylphenyl substituents at imide N atoms both in solution and condensed phase has been studied in great detail. In condensed state, the dye exhibits a hexagonal columnar liquid crystalline (LC) phase as confirmed by DSC, OPM and X-ray diffraction analysis. The columnar stacking of this dye has been further confirmed by atomic force microscopy (AFM) where single columns could be well resolved The charge transport properties this dye have been investigated by pulse radiolysis-time resolved microwave conductivity (PR-TRMC) measurements. To shed more light on the nature of the pi-pi interaction of the unsubstituted PBIs, solvent depend aggregation properties have been investigated in Chapter 4. The studies are further extended from core-unsubstituted PBIs to core-substituted ones (Chapter 5 and 6). In Chapter 5, a series of highly soluble and fluorescent core-twisted PBIs that bear the same trialkylphenyl groups at the imide positions but different bay-substituents and were synthesized. These compounds are characterized by distortions of the perylene planes with dihedral angles in the range of 15-37° according to crystallographic data and molecular modeling studies. In contrast to the extended oligomeric aggregates formed for planar unsubstituted PBIs, this family of dyes formed discrete pi-pi-stacked dimers in apolar methylcyclohexane as concentration-dependent UV/Vis measurements and VPO analysis revealed. The Gibbs free energy of dimerization can be correlated with the twist angles of the dyes linearly. In condensed state, several of these PBIs form luminescent rectangular or hexagonal columnar liquid crystalline phases with low isotropization temperatures. The core-twisting effect on semiconducting properties has been examined in Chapter 6. In this chapter, a comparative study of the electrochemical and the charge transport properties of a series of non-substituted and chlorine-functionalized PBIs was performed. While Chapters 3-6 focus on one-component dye systems, Chapter 7 explored the possibility of a supramolecular engineering of co-aggregates formed by hydrogen-bonded 2:1 and 1:1 complex of oligo(p-phenylene vinylene)s (OPVs) and PBIs. Covalently linked donor-acceptor dye arrays have been prepared for comparison. Concentration and temperature-dependent UV/Vis spectroscopy revealed all hydrogen-bonded and covalent systems form well-ordered J-type aggregates in methylcyclohexane. With these hydrogen-bonded OPV-PBI complexes, fibers containing p-type and n-type molecules can be prepared on the nano-scale (1-20 nm). For the 2:1 OPV-PBI hydrogenbonded arrays hierarchically assembled chiral superstructures consisting of left-handed helical pi-pi co-aggregates (CD spectroscopy) of the two dyes that further assemble into right-handed nanometer-scale supercoils in the solid state (AFM study) have been observed. All of these well-defined OPV-PBI assemblies presented here exhibit photoinduced electron transfer on sub-ps timescale, while the electron recombination differs for different systems.Thus, it was suggested that such assemblies of p- and n-type semiconductors might serve as valuable nanoscopic functional units for organic electronics.
Inspired by the fact that sufficient solubility in aqueous media can be achieved by functional substitution of perylene bisimides (PBIs) with polar groups, one of the essential aims of this thesis was the design and successful synthesis of the new water-soluble PBI cyclophanes [2PBI]-1m and [2PBI]-1p, which are appended with branched, hydrophilic oligoethylene glycol (OEG) chains. Subsequently, the focus was set on the elucidation of properties of PBI cyclophane hosts which are also of relevance for recognition processes in biological systems. The performance of the new amphiphilic PBI cyclophane [2PBI]-1p as synthetic receptors for various natural aromatic alkaloids in aqueous media was thoroughly investigated. Alkaloids represent a prominent class of ubiquitous nitrogen containing natural compounds with a great structural variety and diverse biological activity. As of yet, no chromophore host acting as a molecular probe for a range of alkaloids such as harmine or harmaline is known. In addition, the self-association behavior of cyclophane host [2PBI]-1m and its reference monomer in water was studied in order to gain insights into the thermodynamic driving forces affecting the self-assembly process of these two PBI systems in aqueous environment. Moreover, the chirality transfer upon guest binding previously observed for a PBI cyclophane was investigated further. The assignment of the underlying mechanism of guest recognition to either the induced fit or conformational selection model was of particular interest.
Die Liste der interessanten nachzuweisenden Analyte ist lang. Deswegen besteht ein großer Bedarf zur Entwicklung neuer fluoreszierender und kolorimetrischer Chemosensoren. Ziel der vorliegenden Arbeit war daher die Synthese und Charakterisierung neuer optischer bzw. fluoreszierender und kolorimetrischer Chemosensoren mit dem Fokus auf die beiden Substanzklassen der Naphthalinbisimide und Perylenbisimide.
Der erste Arbeitsschwerpunkt befasste sich mit wasserlöslichen Naphthalinbisimiden und ist in drei Unterkapitel aufgeteilt (Kapitel III – 1.1.-1.3., Abbildung 79). Im ersten Unterkapitel (Kapitel III – 1.1.) wurden die Synthesen und optischen Eigenschaften der am Kern Amino-substituierten NBIs 60a-h, mit Dicarbonsäureresten in Imid-Position und 61a-h, mit 2-Dimethylaminoethyl-Gruppen, in polaren Lösungsmitteln beschrieben. Die systematische Anbringung verschiedener Amino-Substituenten mit steigendem elektronenziehendem Charakter der Aminoreste diente der mechanistischen Aufklärung der optischen Eigenschaften. Eine vollständige Untersuchung der optischen Eigenschaften erfolgte in wässriger Pufferlösung bei pH 2.1 sowie in Methanol und Acetonitril. Der Einfluss der Imid-Substituenten auf die optischen Eigenschaften war wie zu erwarten gering. Die verschiedenen Kern-Substituenten verursachten hingegen eine hypsochrome Verschiebung der Absorptions- und Fluoreszenzmaxima mit steigendem elektronenziehendem Charakter der an der Aminogruppe angebrachten Reste. Ein unerwarteter Trend konnte im Fall der Fluoreszenzquantenausbeute beobachtet werden. In den protischen Lösungsmitteln Wasser und Methanol wurde eine lineare Abhängigkeit gegenüber der Hammett-σmeta-Konstante ermittelt. Mit steigendem elektronenziehendem Charakter der Kern-Amino-Substituenten erfuhr die Quantenausbeute einen Anstieg auf bis zu 39% in Wasser für NBI 60h, 61h und 45% in Methanol für 60h. Die Tatsache, dass in Acetonitril keine solche Abhängigkeit gegenüber der Hammett-Konstante beobachtet werden konnte legte eine intermolekulare Wasserstoffbrücken-Bindung im angeregten Zustand als konkurrierenden Prozess zur Fluoreszenz nahe. Dieser Prozess tritt zwischen den Lösungsmittel-Molekülen und der Akzeptorgruppe (Carbonyl-Sauerstoff) der NBIs, welcher einen strahlungslosen Relaxationsprozess bzw. Fluoreszenzlöschung zur Folge hat, auf. Der Einfluss dieses Prozesses lässt sich durch die Stärke des elektronenziehenden Amino-Substituentens steuern. Die NBIs 60a-h zeigten zudem in potentiometrischen Titrationen in Wasser eine pH-Unabhängigkeit der optischen Eigenschaften bezüglich des Imid-Substituentens. Dies macht die NBIs mit Dicarbonsäureresten für die Anwendung in biologischen Systemen im neutralen pH-Milieu oder als chemische Sensoren besonders geeignet.
Aufgrund dieser interessanten Befunde wurde im zweiten Unterkapitel (Kapitel III – 1.2.) das dihalogenierte NBI 58 hinsichtlich der Sensoreigenschaften gegenüber primären, sekundären und tertiären Amin- bzw. Diamindampf sowie zur Frischekontrolle von Fleisch untersucht. Die Absorptions- und Fluoreszenz-spektroskopische Untersuchung des Dünnschichtfilms von NBI 58 zeigte die erfolgreiche, selektive Detektion von primären Aminen und Diaminen bzw. biogenen Aminen. Zum einen konnte mit bloßen Auge ein Farbumschlag von gelb nach rot und zum anderen Änderungen in den Absorptionsspektren wie die Entstehung einer neuen bathochrom verschobenen Bande im Dünnschichtfilm beobachtet werden. Die Erhöhung der Fluoreszenz wie auch die NMR-spektroskopische Untersuchung konnte hingegen ausschließlich in Lösung detektiert werden. Hiermit konnte die kovalente Wechselwirkung der Amin-Moleküle mit dem NBI 58 nachgewiesen werden. Trotz der erfolgreichen Detektion biogener Amindämpfe erwies sich NBI 58 aufgrund der zu geringen Reaktivität als ungeeigneter chemischer Sensor zur Frischekontrolle von Fleisch.
Das dritte und letzte Unterkapitel (Kapitel III – 1.3.) dieses Abschnittes bestand in der Synthese monochlor-monoamino-substituierter NBIs am Kern (65a,b und 66) und der Wechselwirkungen dieser Farbstoffe mit DNS/RNS. Die NBIs 65a,b und 66 wiesen in der Imidstellung 3-Trimethylammoniumpropyl auf, um die Wasserlöslichkeit zu gewährleisten und die elektrostatische Wechselwirkung mit dem negativ geladenen Phosphatrückgrad der DNS/RNS zu bewirken. Am Kern wurden die Aminosäuren (S)-2,3-Diaminopropionsäure (L-Dap) (65a) und (S)-2,6-Diaminohexansäure (L-Lys) (65b) sowie 2-Trimethylammoniumethylamin (66) eingefügt. Die Untersuchungen mit Hilfe von thermischen Denaturierungsstudien zeigten mit allen NBIs eine deutliche Schmelzpunkterhöhung der DNS/RNS (ΔTm-Werte zwischen 17 und 35 °C), was die Bildung von NBI/Polynukleotid-Komplexen nahelegte. Diese Komplex-Bildung konnte erneut aufgrund enormer Fluoreszenzlöschung in fluorimetrischen Titrationsstudien bestätigt werden. Hier wurden Bindungskonstanten zwischen logK = 5.9 und 7.2 M-1 ermittelt, wobei NBI 65a und poly(dG-dC)2 der stärksten Bindungsaffinität und NBI 65a und poly(dA-dT)2 der schwächste zugeordnet werden konnte. Für NBI 66 wurde die zweithöchste Bindungsaffinität zu Polynukleotid ct-DNS (logK = 7.08 M-1) beobachtet, während dieser Farbstoff sowie 65a,b nur geringe Bindungskonstanten mit dem Polynukleotid polyA-polyU zeigten. Mit Hilfe der CD-spektroskopischen Messungen wurde der Bindungsmodus und die Unterschiede in den Bindungseigenschaften der Farbstoffe mit DNS/RNS ermittelt. Der Großteil aller NBI-Verbindungen interkalierte in einer parallelen Anordnung zwischen die Basenpaare der Polynukleotide. Für NBI 65a und poly(dG-dC)2 ließ sich jedoch eine perpendikulare Anordnung zu den Basenpaaren beobachten. ITC-Titrationsstudien komplettierten letztendlich die Untersuchungen zwischen NBIs und Polynukleotiden. Neben Interkalation als Bindungsmodus konnte zusätzlich aufgrund der relativ hohen Entropiewerte eine Wechselwirkung zwischen den Substituenten am Kern und den Phosphatgruppen in der kleinen Furche festgestellt werden. Zusammengefasst sind die sterischen Hinderungen der Amino-Substituenten und die Furcheneigenschaften von ds-DNS/RNS entscheidend.
Der zweite Arbeitsschwerpunkt ist ebenfalls in drei Unterkapitel (Kapitel III – 2.1.-2.3.) aufgeteilt und befasste sich mit der Synthese und den Sensoreigenschaften kernfunktionalisierter Perylenbisimide (Abbildung 80). Im ersten Abschnitt (Kapitel III – 2.1) wurde die Synthese und die optischen Eigenschaften in Lösung der am Kern einfach und zweifach Kronenether-funktionalisierten PBIs 77a,b und 71a,b untersucht. In Imidstellung waren alle PBIs mit 2-Trimethylammoniumethyl-Resten funktionalisiert, um eine Löslichkeit in polaren Lösungsmitteln zu gewährleisten. Die Buchtpositionen wurden jeweils ein- bzw. zweifach mit den Kronenether-Einheiten 2-Hydroxymethyl-15-Krone-5 und 2-Hydroxymethyl-18-Krone-6 substituiert. Die anschließende Untersuchung der optischen Eigenschaften der PBIs zeigten bei einer Konzentration von 10-5 M in Acetonitril den monomeren Zustand und in Wasser die Ausbildung von H-Aggregaten. Die Fluoreszenzquantenausbeuten erfuhren in Acetonitril mit steigender Kronenether-Ringgröße eine Zunahme von 73% auf 81% für die PBIs 71a,b und eine vernachlässigbare geringe Zunahme von 49% auf 51% für die PBIs 77a,b. Die Abnahme der Quantenausbeute vom zweifach funktionalisierten zum einfach funktionalisierten PBI um ca. 30% ließ sich durch die stärker ausgeprägten strahlungslosen Relaxationsprozesse dieses flexibleren Moleküls im angeregten Zustand erklären.
Im zweiten Unterkapitel (Kapitel III – 2.2.) wurden die Selbstassemblierungseigenschaften der synthetisierten PBIs 71a,b und 77a,b in Gegenwart verschiedener Metallionen (Na+, K+, Rb+, Mg2+, Ca2+ und Ba2+) untersucht. Hier konnte eine Abhängigkeit von der Größe des Kronenether-Rezeptors sowie von der Art der Metallionen gezeigt werden. Die Absorptions- und Fluoreszenz-spektroskopischen Studien der zweifach funktionalisierten PBIs 71a und 71b bei einer PBI-Konzentration von c = 10-5 M zeigten ausschließlich für das 15-Krone-5-Derivat 71a und Ba2+ eine erfolgreiche Ausbildung von PBI-Stapeln mit H-artiger exzitonischer Kopplung. Aufgrund dessen erfuhr das Absorptionsmaximum eine stetige Abnahme einhergehend mit einer hypsochromen Verschiebung und die Fluoreszenz eine vollständige Löschung. Zudem konnte eine 1:1-Stöchiometrie der PBI-Stapeln ermittelt werden. Die Anpassung der spektroskopischen Änderungen an die Hill-Gleichung bestätigte letztendlich die Bildung eines [2+2]-Sandwich- bzw. Dimer-Komplexes in einem positiv kooperativen Bindungsprozess, in dem mittels ITC eine enorme Stabilisierung der Ba2+-Komplexierung aufgrund der π-π-Wechselwirkung zwischen zwei PBI-Molekülen, beobachtet wurde. Die Durchführung der Titrationsexperimente bei einer höheren PBI-Konzentration (c = 10-4 M) zusammen mit DOSY-Experimenten versicherten auch in diesem Fall die Formation diskreter Dimerkomplexe. Das einfach funktionalisierte PBI 77a zeigte in der Anwesenheit von Ba2+ ähnliche optische Änderungen. Die nachfolgenden Untersuchungen bzw. Interpretationen bestätigten die Bildung eines [1+2]-Dimerkomplexes mit H-artiger exzitonischer Kopplung, welches aufgrund der flexibleren Komplexstruktur keine Stabilisierung der Ba2+-Komplexierung erfuhr.
Neben der Metallionen-Komplexierung war PBI 71b auch in der Lage, in einer 1:2-Stöchiometrie aromatische Aminosäuren und Dipeptide zu erkennen (Kapitel III – 2.3.), da hier sowohl die Ammoniumgruppen der Aminosäuren und Dipeptide mit den Kronenethereinheiten als auch die aromatischen Einheiten mit dem PBI-Kern wechselwirken können. Fluoreszenz-Titrationsexperimente zeigten, dass die Aminosäuren L-Tryptophan und L-Tyrosin, welche elektronenreiche aromatische Gruppen aufweisen, und Dipeptide, die diese Aminosäuren enthalten, die Fluoreszenz des PBIs stark löschen. Die Bindungskonstanten der Wirt-Gast-Komplexierung in Acetonitril konnten aufgrund eines statischen Löschungsprozesses aus den Fluoreszenztitrationsdaten bestimmt werden. Hier wurde beobachtet, dass die Bindungsstärke von der Größe und der elektronischen Natur der aromatischen Einheiten sowie von dem Abstand zwischen der Ammoniumgruppe und der aromatischen Einheit in Aminosäuren und Dipeptiden abhängt. Die stärkste Bindung konnte zwischen Ala-Trp und PBI 71b mit einem Wert von 3.1 x 105 M-1 beobachtet werden. NMR-Studien bestätigten ebenfalls die Wirt-Gast-Komplexierung, ließen jedoch offen, ob es zu der Bildung von zwei Diastereomeren aufgrund der eingeschränkten Umwandlung der Atrop-Enantiomere (P und M) des PBI 71b kommt oder zu der Bildung von vier Diastereomeren infolge des Chiralitätszentrums im Kronenether.
Zusammenfassend wurden in dieser Arbeit Naphthalinbisimde und Perylenbisimide hinsichtlich ihrer Eignung als optische Chemosensoren untersucht. Die NBI-Derivate agierten aufgrund ihrer interessanten optischen Eigenschaften als chemische Sensoren selektiv für primären Amindampf und für die DNS/RNS-Wechselwirkung. Im Fall der PBI-Verbindungen wurden hervorragende fluorometrische Chemosensoren ermittelt, die Ba2+-Ionen und elektronenreiche aromatische Aminosäuren und Dipeptide in einer deutlichen Fluoreszenzlöschung detektieren können.
The research presented in this thesis illustrates that self-assembly of organic molecules guided by intermolecular forces is a versatile bottom-up approach towards functional materials. Through the specific design of the monomers, supramolecular architectures with distinct spatial arrangement of the individual building blocks can be realized. Particularly intriguing materials can be achieved when applying the supramolecular approach to molecules forming liquid-crystalline phases as these arrange in ordered, yet mobile structures. Therefore, they exhibit anisotropic properties on a macroscopic level. It is pivotal to precisely control the interchromophoric arrangement as functions originate in the complex structures that are formed upon self-assembly. Consequently, the aim of this thesis was the synthesis and characterization of liquid-crystalline phases with defined supramolecular arrangements as well as the investigation of the structure-property relationship. For this purpose, perylene bisimide and diketopyrrolopyrrole chromophores were used as they constitute ideal building blocks towards functional supramolecular materials due to their thermal stability, lightfastness, as well as excellent optical and electronic features desirable for the application in, e.g., organic electronics.
Thus, the main focus of this thesis was to generate and investigate new one-dimensional LC PBI J-aggregates of an entirely new PBI organization with the transition dipole moments of the chromophores arranged parallel to the columnar axis and in slipped pi-pi stacking fashion to form highly fluorescent J-aggregates. Towards this goal, the tetra-bay substituted PBI 4c bearing free NH functional groups at the imide positions and four dendrons with branched ethylhexyl alkoxy chains at the meta-position of the phenoxy spacer (Figure 8.1a) was synthesized and compared to a literature known reference PBI 1. The mesogenic dendrons ensure LC character of the dye, which was confirmed by POM, DSC and extensive X-ray analysis. Furthermore, the sterically demanding bay-substituents prevent the cofacial assembly of the chromophores and force the dyes into a slipped pi-stacked order with the main transition dipole moments of the dyes oriented parallel to the columnar axis. X-ray analysis revealed that PBI 4c assembles into columnar triple-stranded helices consisting of side-to-side stacked molecules, which organize into a Colh phase (Figure 8.1b). FT-IR experiments of a thin film and aggregates in MCH solution confirmed the formation of H-bonds between the imide moieties. Temperature-dependent investigations furthermore proved a reversible formation of H-bonds and polarized FT-IR experiments finally gave evidence for the direction of the H-bonds along the shearing respective the columnar axis (Figure 8.1c). This was additionally verified by polarized UV-Vis absorption studies of aligned thin films. The changes in the UV-Vis absorption spectra of concentration- and temperature-dependent experiments in MCH are in agreement with the formation of J-aggregates and could be fitted to a nucleation-elongation growth mechanism. Remarkably, fluorescence spectroscopy studies revealed highly emissive aggregates in solution. These various spectroscopic techniques proved the utilization of directional noncovalent forces like hydrogen-bonding and pi-pi interactions in a cooperative manner forcing the PBI molecules in an unprecedented organization of a slipped pi-stacked arrangement with the orientation of the molecular axis and the respective transition dipole moments parallel to the columns of the LC phase. By the group of Dietrich the formation of exciton-polaritons in imprinted LC pillar microcavities as consequent use of the LC 4c was reported for the first time.In the second part of this thesis the hierarchical organization of LC PBIs into defined single-, double-, triple- and quadruple-stranded J-aggregates within crystalline and columnar LC phases, partially arranged in helical supramolecular structures in dependence of the molecular design was demonstrated. This was achieved via the preparation of a library of twelve molecules PBI 3-6(a-c) (Figure 8.2a) that was synthesized by varying the substitution position of the dendrons at the phenoxy-spacer from ortho to meta or para and by introducing an additional methyl group in ortho-position. Also the length and shape of the alkoxy chains was changed. Consequently, the impact of the sterical demand of the bay substituents concerning their phase properties, molecular arrangement and exciton coupling was investigated. POM, DSC and X-ray studies revealed the formation of only crystalline phase for the ortho-substituted PBIs 3a-c, whereas the other derivatives generated SC or LC phases. The main focus was the series with the n-C12-alkoxy chains. For the corresponding PBIs 4-6b columnar LC phases were confirmed. Retrostructural analysis by modelling and simulations gave indications for a single stranded organization for PBI 3b, a double-stranded helix for PBI 6b, a triple-stranded helical arrangement for PBI 5b and a quadruple-stranded helix for PBI 4b (Figure 8.2b-d). For all four derivatives the same molecular orientation within the columns as for PBI 4c was proven by polarized FT-IR and UV-Vis absorption studies in aligned thin films. The organization in helices of different number of strands in the Cr and LC phases of PBI 3b, 4b, 5b and 6b offered a unique possibility to elucidate the influence of particular packing arrangements on dye aggregate interactions with light. In particular, it can be investigated how exciton coupling of the dyes’ transition dipole moments and fluorescence properties are affected. In this context, the spectroscopic properties were investigated in thin film, which revealed a strong bathochromic shift of the absorption maxima compared to the monomers in solution in dependence on the number of strands for PBIs 4-6b in contrast to PBI 3b (Figure 8.2e). The same tendency was observed for the respective aggregates in MCH solution. The spectral changes obtained during concentration- and temperature-dependent UV-Vis absorption studies verified the formation of J-aggregates in MCH solution and solid state. The respective aggregates are highly likely formed via a nucleation-elongation growth mechanism. Appliance of Kasha’s exciton theory on the supramolecular aggregates revealed different contributions of H- and J-type coupling for the oligo-stranded helices. Under these considerations, it delivered an explanation for the absorption and fluorescence properties of the assemblies and declares the “best” J-aggregate for the double stranded arrangement of PBI 6b with purely negative couplings among neighbour molecules and a quantum yield above 74 % of the aggregates in MCH solution. With this H-bonded PBI-based library approach of twelve derivatives it could be shown how molecular engineering of perylene bisimide dyes can be used to design defined, complex supramolecular assemblies with unprecedented packing patterns and concomitant intriguing spectroscopic properties.
So far, the formation of defined liquid crystalline supramolecular structures of tetra-bay substituted PBIs by double H-bonding between free imide moieties and pi-pi interactions between the chromophores was demonstrated. The impact of the H-bonds on the molecular arrangement was investigated in the next part of this thesis. In this regard, PBIs 7 and 8 bearing a methyl or cyclohexyl group at the imide position (Figure 8.3a) were synthesized and compared to PBI 4c. The soft character of the solid state for PBIs 7 and 8 was confirmed by POM, DSC and X-ray analysis. The X-ray studies further revealed for both PBIs a change of the molecular assembly towards helical columnar structures of conventional pi-stacked chromophores (Figure 8.3b) when the directed H-bonds cannot contribute as noncovalent interactions to the assembly formation. Temperature-dependent UV-Vis absorption studies demonstrated the importance of H-bonding in MCH solution in the way that the formation of J-aggregates as for PBI 4c could not be observed for the imide substituted molecules. In the next step, the spectroscopic properties in thin film were investigated. For PBI 7 a J-type band and fluorescence spectra with an enlarged Stokes shift and increased fluorescence lifetime of 11.4 ns, compared to PBI 4c, was obtained, suggesting the generation of excimer type emission by considering the assumed conventional stacking of rotational displaced molecules from X-ray analysis. With polarized UV-Vis absorption experiments the orientation of the molecules perpendicular to the shearing direction and subsequently to the columnar axis was confirmed. These diverse investigations clearly demonstrated the imperative of H-bonds for stable, defined, LC J-aggregates with the transition dipole moments parallel to the columnar axis. With PBIs 7 and 8 it is impressively shown how small changes in the molecular structure influence the molecular arrangement dependent on the cooperation of non-covalent interactions like H-bonding and pi-pi stacking.
In the last part of this thesis the generation of two-dimensional LC arrangements is presented. Since tetra-bay substituted PBIs lead always to twisted cores preventing lamellar arrangement, here 1,7-disubstitution and the simultaneous retention of the free imide positions was chosen to generate LC lamellar phases of PBIs 9a, 9b and 10 (Figure 8.4a). This molecular design was expected to form planar perylene cores that can strongly interact by pi-pi stacking and H-bonding. POM, DSC and X-ray investigations of the compounds suggest lamellar LC phases for PBIs 9a and 9b and a soft phase for PBI 10. In this regard, the goal of the formation of LC lamellar phase of PBIs could be attained. The change from dendrons with n-C12-alkoxy chains to large fork-like mesogens like in 9b clearly changed the phase properties. PBI 9b exhibits the lowest clearing point, high phase stability, least viscosity, easy shearability at room temperature and phase transitions between lamellar and Colh phases dependent on temperature. The formation of H-bonds parallel to the layers was demonstrated by polarized FT-IR experiments for all three PBIs. Concentration-dependent UV-Vis absorption studies revealed the formation of a J-type aggregate, which seems to exhibit an overall two-dimensional structure. With STM investigations the formation of lamellar structures from drop-casted 9a and 10 solutions in 1-phenyloctane on HOPG surface could be observed. Figure 8.4b illustrates a schematic possible arrangement of the molecules in the layers (here exemplarily demonstrated for PBI 9a), which has to be further confirmed by modelling and simulations. Unfortunately, fluorescence investigations of the thin films revealed non- or only slightly emissive LC states, which make them negligible for photonic applications. Nevertheless, the synthesized and analyzed compounds might be an inspiration for further investigations on the path to two-dimensional exciton transport for photonic devices.