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Institute
- Institut für Physikalische und Theoretische Chemie (166) (remove)
Sonstige beteiligte Institutionen
- Center for Nanosystems Chemistry (CNC), Universität Würzburg (1)
- Center for Nanosystems Chemistry (CNC), Universität Würzburg, Am Hubland, 97074 Würzburg, Germany (1)
- Center of Excellence for Science and Technology - Integration of Mediterranean region (STIM), Faculty of Science, University of Split, Poljička cesta 35, 2100 Split, Croatia (1)
- Departamento de Química, Facultad de Ciencias, Universidad Autónoma de Madrid, 28049 Madrid, Spain (1)
- Department of Chemistry, Humboldt Universität zu Berlin, Brook-Taylor-Strasse 2, 12489 Berlin, Germany (1)
- Department of Chemistry, Sungkyunkwan University, 440-746 Suwon, Republic of Korea (1)
- Fachbereich Physik, Universität Konstanz, D-78464 Konstanz, Germany (1)
- Fakultät für Physik, Universität Bielefeld (1)
- Institut für Optik und Atomare Physik, Technische Universität Berlin, 10623 Berlin, Germany (1)
- Institute of Physics and Center for Nanotechnology, University of Münster (1)
ResearcherID
- B-1911-2015 (1)
- M-1240-2017 (1)
- N-3741-2015 (1)
Anhand der ersten Festkörperstrukturen von Dibortetraiodid (B\(_2\)I\(_4\)) wird gezeigt, dass dieses nicht, wie lange angenommen, analog zu den leichteren Dibortetrahalogeniden B\(_2\)F\(_4\), B\(_2\)Cl\(_4\) und B\(_2\)Br\(_4\) in allen Aggregatzuständen in Form diskreter Moleküle mit planaren, dreifach koordinierten Boratomen vorliegt. Röntgenstrukturanalysen, Festkörper‐NMR‐ und IR‐Messungen zeigen, dass B\(_2\)I\(_4\) im Festkörper in zwei polymeren Konformeren vorkommt, die tetraedrisch koordinierte Boratome enthalten. Anhand von DFT‐Rechnungen werden die IR‐Spektren in Lösung und im Festkörper simuliert und mit den experimentellen Daten verglichen.
Nanoelectronics is an essential technology for down-scaling beyond the limit of silicon-based electronics. Single-Wall Carbon Nanotubes (SWNT) are semiconducting components that exhibit a large variety of properties that make them usable for sensing, telecommunication, or computational tasks. Due to their high surface to volume ratio, carbon nanotubes are strongly affected by molecular adsorptions, and almost all properties depend on surface adsorption. SWNT with smaller diameters (0.7-0.9nm) show a stronger sensitivity to surface effects. An optimized synthesis route was developed to produce these nanotubes directly. They were produced with a clean surface, high quality, and large lengths of 2 μ m. The results complement previous studies on larger diameters (0.9-1.4nm). They allow performing statistically significant assumptions for a perfect nanotube, which is selected from a subset of nanotubes with good emission intensity, and high mechanical durability. The adsorption of molecules on the surface of carbon nanotubes influences the motion and binding strength of chargeseparated states in this system. To gain insight into the adsorption processes on the surface with a minimum of concurrent overlapping effects, a microscopic setup, and a measurement technique were developed. The system was estimated to exhibit excellent properties like long exciton diffusion lengths (>350nm), and big exciton sizes (8.5(5)nm), which was substantiated by a simulation. We studied the adsorption processes at the surface of Single-Wall Carbon Nanotubes for molecules in the gas phase, solvent molecules, and surfactant molecules. The experiments were all carried out on suspended individualized carbon nanotubes on a silicon wafer substrate. The experiments in the gas-phase showed that the excitonic emission energy and intensity experiences a rapid blue shift during observation. This shift was associated with the spontaneous desorption of large clusters of gaseous molecules caused by laser heat up. The measurement of this desorption was essential for creating a reference to an initially clean surface and allows us to perform a comparison with previous measurements on this topic. Furthermore, the adsorption of hydrogen on the nanotube surface at high temperatures was investigated. It was found that a new emission mode arises slightly red-shifted to the excitonic emission in these systems. The new signal is almost equally strong as the main excitonic peak and was associated with the brightening of dark excitons at sp3-defects through a K-phonon assisted pathway. The finding is useful for the direct synthesis of spintronic devices as these systems are known to act as single-photon emitters. The suspended nanotubes were further studied to estimate the effect of solvent adsorption on the excitonic states during nanotube dispersion for each nanotube individually. A significant quantum yield loss is observable for hexane and acetonitrile, while the emission intensity was found to be the strongest in toluene. The reference to a clean surface allowed us to estimate the exact influence of the dielectric environment of adsorbing solvents on the excitonic emission energy. Solvent adsorption was found to lead to an energy shift that is almost twice as high as suggested in previous studies. The amount of this energy shift, however, was comparably similar for all solvents, which suggests that the influence of the distinct dielectric constant in the outer environment less significantly influences the energy shift than previously thought. An interesting phenomenon was found when using acetonitrile as a solvent, which leads to greatly enhanced emission properties. The emission is more than twice as high as in the same air-suspended nanotubes, which suggests a process that depends on the laser intensity. In this study, it was reasonably explained how an energy down-conversion is possible through the coupling of the excitonic states with solvent vibrations. The strength of this coupling, however, also suggests adsorptions to the inside of the tubular nanotube structure leading to a coupled vibration of linear acetonitrile molecules that are adsorbed to the inner surface. The findings are important for the field of nanofluidics and provide an excellent system for efficient energy down-conversion in the transmission window of biological tissue. Having separated the pure effect of solvent adsorption allowed us to study the undisturbed molecular adsorption of polymers in these systems. The addition of polyfluorene polymer leads to a slow but stepwise intensity increase. The intensity increase is overlapping with a concurrent process that leads to an intensity decrease. Unfortunately, observing the stepwise process has a low spacial resolution of only 100-250nm, which is in the range of the exciton diffusion length in these systems and hinders detailed analysis. The two competing and overlapping processes processes are considered to originate from slow π-stacking and fast side-chain binding. Insights into this process are essential for selecting suitably formed polymers. However, the findings also emphasize the importance of solvent selection during nanotube dispersion since solvent effects were proven to be far more critical on the quantum yield in these systems. These measurements can shed light on the ongoing debate on polymers adsorption during nanotube individualization and allow us to direct the discussion more towards the selection of suitable solvents. This work provides fundamental insights into the adsorption of various molecules on the surface of individually observed suspended Single-Wall Carbon Nanotubes. It allows observing the adsorption of individual molecules below the optical limit in the solid, liquid, and gas phases. Nanotubes are able to act as sensing material for detecting changes in their direct surrounding. These fundamental findings are also crucial for increasing the quantum yield of solvent-dispersed nanotubes. They can provide better light-harvesting systems for microscopy in biological tissue and set the base for a more efficient telecommunication infrastructure with nano-scale spintronics devices and lasing components. The newly discovered solvent alignment in the nanotube surrounding can potentially also be used for supercapacitors that are needed for caching the calculation results in computational devices that use polymer wrapped nanotubes as transistors. Although fundamental, these studies develop a strategy to enlighten this room that is barely only visible at the bottom of the nano-scale.
The reaction products of the picolyl radicals at high temperature were characterized by mass‐selective threshold photoelectron spectroscopy in the gas phase. Aminomethylpyridines were pyrolyzed to initially produce picolyl radicals (m /z =92). At higher temperatures further thermal reaction products are generated in the pyrolysis reactor. All compounds were identified by mass‐selected threshold photoelectron spectroscopy and several hitherto unexplored reactive molecules were characterized. The mechanism for several dissociation pathways was outlined in computations. The spectrum of m /z =91, resulting from hydrogen loss of picolyl, shows four isomers, two ethynyl pyrroles with adiabatic ionization energies (IE\(_{ad}\)) of 7.99 eV (2‐ethynyl‐1H ‐pyrrole) and 8.12 eV (3‐ethynyl‐1H ‐pyrrole), and two cyclopentadiene carbonitriles with IE′s of 9.14 eV (cyclopenta‐1,3‐diene‐1‐carbonitrile) and 9.25 eV (cyclopenta‐1,4‐diene‐1‐carbonitrile). A second consecutive hydrogen loss forms the cyanocyclopentadienyl radical with IE′s of 9.07 eV (T\(_0\)) and 9.21 eV (S\(_1\)). This compound dissociates further to acetylene and the cyanopropynyl radical (IE=9.35 eV). Furthermore, the cyclopentadienyl radical, penta‐1,3‐diyne, cyclopentadiene and propargyl were identified in the spectra. Computations indicate that dissociation of picolyl proceeds initially via a resonance‐stabilized seven‐membered ring.
Nowadays, computational-aided investigations become an essential part in the chemical, biochemical or pharmaceutical research. With increasing computing power, the calculation of larger biological systems becomes feasible. In this work molecular mechanical (MM) and quantum mechanical approaches (QM) and the combination of both (QM/MM) have been applied to study several questions which arose from different working groups. Thus, this work comprises eight different subjects which deals with chemical reactions or proton transfer in enzymes, conformational changes of ligands or proteins and verification of experimental data.
This work firstly deals with reaction mechanisms of aromatic inhibitors of cysteine proteases which can be found in many organisms. These enzymes are responsible for various cancer or diseases as for example Human African Trypanosomiasis (HAT) or the Chagas disease. Aromatic SNAr-type electrophiles might offer a new possibility to covalently modify these proteases. Quantum mechanical calculations have been performed to gain insights into the energetics and possible mechanisms.
The next chapter also deals with Trypanosomiasis but the focus was set on a different enzyme. The particularity of Trypanosomiasis is the thiol metabolism which can also be modified by covalent inhibitors. In this context, the wild type and point mutations of the enzyme tryparedoxin have been investigated via molecular dynamic (MD) simulations to examine the influence of specific amino acids in regard to the inhibitor. Experimental data showed that a dimerization of the enzyme occurs if the inhibitor is present. Simulations revealed that the stability of the dimer decreases in absence of the inhibitor and thus confirms these experiments.
Further investigations concerning cysteine proteases such as cruzain and rhodesain have been conducted with respect to experimental kinetic data of covalent vinylsulfone inhibitors. Several approaches such as QM or QM/MM calculations and docking, MD or MMPBSA/MMGBSA simulations have been applied to reproduce these data. The utilization of force field approaches resulted in a qualitatively accurate prediction.
The kinase AKT is involved in a range of diseases and plays an important role in the formation of cancer. Novel covalent-allosteric inhibitors have been developed and crystallized in complex with AKT. It was shown that depending on the inhibitor a different cysteine residue is modified. To investigate these differences in covalent modification computational simulations have been applied.
Enoyl-(acyl carrier) (ENR) proteins are essential in the last step of the fatty acid biosynthesis II (FAS) and represent a good target for inhibition. The diphenylether inhibitor SKTS1 which was originally designed to target the ENR’s of Staphylococcus aureus was also crystallized in InhA, the ENR of Mycobacterium tuberculosis (TB). Crystal structures indicate a change of the inhibitor's tautomeric form. This subject was investigated via MD simulations. Results of these simulations confirmed the tautomerization of the inhibitor.
This work also deals with the development of a covalent inhibitor originating from a non-covalent ligand. The target FadA5 is an essential enzyme for the degradation of steroids in TB and is responsible for chronic tuberculosis. This enzyme was crystallized in complex with a non-covalent ligand which served as starting point for this study. Computations on QM or QM/MM level and docking and MD simulations have been applied to evaluate potential candidates.
The next chapter focuses on the modification of the product spectrum of Bacillus megaterium levansucrase, a polymerase which catalyzes the biosynthesis of fructans. The covalent modification of the wild type or mutants of the enzyme lead to an accumulation of oligosaccharides but also to polymers with higher polymerization degree. To understand these changes in product spectra MD simulations have been performed.
Finally, the proton transfer in catalytic cysteine histidine dyads was investigated. The focus was set on the influence of the relaxation of the protein environment to the reaction. Calculations of the enzymes FadA5 and rhodesain revealed that the preferred protonation state of the dyade depends on the protein environment and has an impact on the reaction barrier. Furthermore, the adaptation of the environment to a fixed protonation state was analyzed via MD simulations.
Ziel dieser Dissertation war es zu einem besseren Verständnis hinsichtlich folgender Themen beizutragen und Möglichkeiten aufzuzeigen, mit welchen die Voraussetzungen für Anwendungen von einzelnen, funktionalisierten Kohlenstoffnanoröhren, wie u.a. Einzelphotonenquellen, erfüllt werden können.
Eine wesentliche Voraussetzung für die Funktionalisierung von einzelnen Kohlenstoffnanoröhren ist zunächst eine Probenpräparation, welche SWNT-Suspensionen mit einem hohen Anteil an vereinzelten SWNTs hoher PL-Intensität bereitstellen kann. Um solche SWNT-Suspensionen herstellen zu können, wurden drei verschiedene Rohmaterialien und Dispergiermittel auf deren Entbündelungseffizienz- und relativer Photolumineszenzquantenausbeute untersucht. Anhand von photolumineszenzspektroskopischen Untersuchungen und Messungen der Extinktion stellte sich heraus, dass in Kombination des unaufbereiteten CVD-Kohlenstoffnanorohrrußes mit dem Copolymer PFO:BPy als Dispergiermittel und einem speziell in dieser Dissertation entwickelten Herstellungsverfahren für die Mikroskopieproben, stabile (6,5)-SWNT-Suspensionen mit einem großen Anteil an einzelnen SWNTs hoher PL-Intensität, hergestellt werden können.
Letztere Suspension diente als Ausgangsmaterial für die, in dieser Dissertation neuartige, entwickelte Methodik zur Differenzierung zwischen einzelnen SWNTs und Aggregaten mittels PL- und Ramanmessungen an einem PL-Mikroskopie-Aufbau, welche eine weitere Voraussetzung für Einzelpartikelstudien darstellt. Hierbei wurden im Rahmen einer statistischen Messreihe PL- und Ramanspektren von 150 SWNT-Objekten aufgenommen und hieraus resultierend die Parameter FWHM, Energie des S1-Emissions-Zustands und relative Photolumineszenzquantenausbeute ermittelt. Schließlich konnten die zwischen einer einzelnen SWNT und einem Aggregat charakteristischen Differenzen anhand der Korrelationen zwischen den drei Parametern dargestellt werden. Zudem erfolgte eine statistische Analyse zur Bestimmung der statistischen Signifikanz dieser Korrelationen. Hierbei wurde anhand der nicht-parametrischen Spearman-Korrelationskoeffizienten und der p-Werte gezeigt, dass in Kombination dieser drei Messparameter mit einer hohen Wahrscheinlichkeit zwischen einer einzelnen SWNT und einem Aggregat differenziert werden kann. Demnach konnte eine neuartige, im Vergleich zur Literatur, praktikable Methodik zur Differenzierung zwischen einzelnen SWNTs und Aggregaten, etabliert werden, welche die Voraussetzung für Einzelrohrstudien ist.
Der Fokus dieser Dissertation ist die Entschlüsselung der Reaktionsmechanismen der Arylierung und reduktiven Alkylierung von (6,5)-SWNTs im Ensemble und auf Einzelrohrbasis. Durch diese kovalenten Funktionalisierungsverfahren entstehen neue fluoreszierende Defekt-Zustände, deren zeitabhängiges Intensitätsverhalten in der vorliegenden Arbeit näher untersucht wurde. Hinsichtlich der Arylierung von SWNTs mit Diazoniumsalzen postulieren Studien einen zweistufigen Reaktionsmechanismus, welcher durch eine kombinatorische, spektroskopische Gesamtbetrachtung im Rahmen dieser Dissertation bestätigt werden konnte. Auch konnte erstmalig in der Literatur gezeigt werden, dass die Reaktion in hohem Maße reproduzierbar ist.
Reproduzierbarkeitsstudien wurden auch im Falle der reduktiven Alkylierung unternommen, wobei erstmalig festgestellt wurde, dass diese Reaktion lediglich im hohen Maße reproduzierbar ist, sofern die Reduktionslösung mindestens 17 Stunden vor Reaktionsstart angesetzt wird. Basierend auf diesem Resultat, wurden reproduzierbare Messreihen zur Untersuchung der Reaktionsbedingungen und des Reaktionsmechanismus unternommen, da diesbezüglich unzureichend Kenntnis in der Literatur vorhanden ist.
Zur Klärung des Reaktionsmechanismus, von welchem lediglich Annahmen existieren, wurde zum einen der Einfluss der Laseranregung auf die Reaktion untersucht. Da lediglich für den Falle des Ansetzens der Reduktionslösung unmittelbar vor Messbeginn, wobei die reaktiven SO2- -Radikale erzeugt werden, ein Einfluss der Laseranregung festgestellt werden konnte, nicht jedoch im weiteren Reaktionsverlauf, ist von keiner radikalischen Reaktion im Funktionalisierungsschritt auszugehen. Dies konnte durch den Einsatz von Konstitutionsisomeren des Iodbutans bestätigt werden, wobei das Iodbutanisomer, welches im Fall einer radikalischen Reaktion die höchste Reaktivität zeigen sollte, zu keiner Funktionalisierung der SWNTs führte. Im Gegensatz hierzu, konnte durch das 1-Iodbutan, mit dem primären C-Atom, eine hohe PL-Intensität der defekt-induzierten Zustände E11- und T- verzeichnet werden, was die weitere Annahme einer SN2-Reaktion stützt.
Im Rahmen dieser Dissertation konnte zudem erstmalig entdeckt werden, dass unter deren alkalischen, reduktiven Bedingungen, eine Funktionalisierung mit Acetonitril erfolgen kann, was durch die Durchstimmung der PL-Intensität des Defektzustands bei Variation des Volumenanteils von Acetonitril bestätigt werden konnte. Hierbei gilt es jedoch weiter zu analysieren, auf welche Art die Koordination bzw. Funktionalisierung von Acetonitril an den SWNTs erfolgt, was u.a. durch Ramanmessungen untersucht werden könnte.
Auch konnten neuartige Kenntnisse bezüglich der Reaktionskinetik basierend auf den Studien dieser Dissertation erhalten werden, wobei festgestellt wurde, dass das Reaktionsprofil mit dem einer komplexen Folgereaktion angenähert werden kann.
Zudem konnten neuartige Kenntnisse aus der Thermodynamik, wie die Ermittlung der Aktivierungsenergie der Adsorption von DOC-Molekülen auf der SWNT-Oberfläche, durch die Zugabe des Tensids DOC zum Reaktionsansatz und dem hieraus resultierenden Reaktionsabbruch, erhalten werden.
Schließlich fand eine Übertragung der Ergebnisse aus den Ensemblestudien der reduktiven Alkylierung auf Einzelpartikeluntersuchungen statt, wobei letztere erstmalig im Rahmen dieser Arbeit durchgeführt wurden. Aus der statistischen Analyse, welche von Martina Wederhake durchgeführt wurde, resultierte durch Erhöhung des Stoffmengenverhältnisses von 1-Iodbutan zu Kohlenstoff eine inhomogene Steigerung des Funktionalisierungsgrades. Ausblickend gilt es nun zu prüfen, ob die zeitlichen Reaktionsverläufe der photolumineszierenden Zustände, welche aus den Ensemble-Studien erhalten wurden, auf Einzelrohrbasis reproduziert werden können.
Es lässt sich demnach festhalten, dass mithilfe der Studien dieser Dissertation ein Probenherstellungsverfahren, welches stabile SWNT-Suspensionen mit einem großen Anteil an einzelnen Kohlenstoffnanoröhren, hoher PL-Intensität ermöglicht, etabliert werden konnte. Zudem wurde eine neuartige, praktikable und statistisch signifikante Methodik zur Differenzierung zwischen einzelnen Kohlenstoffnanoröhren und Aggregaten entwickelt. Schließlich konnten neue, essentielle Informationen bezüglich des Reaktionsmechanismus und den Reaktionsbedingungen der Arylierung und reduktiven Alkylierung von halbleitenden (6,5)-SWNTs erhalten werden. Wie in der Einleitung bereits erwähnt, sind sowohl der Erhalt einer stabilen SWNT-Suspension mit einem großen Anteil an einzelnen Nanoröhren hoher PL-Intensität, die Möglichkeit der Identifizierung einzelner SWNTs, als auch ein ausgiebiges Verständnis der Reaktionsmechanismen der Funktionalisierungsreaktionen, essentielle Voraussetzungen für die Verwirklichung von Einzelphotonenquellen auf Basis einzelner, funktionalisierter Kohlenstoffnanoröhren. Diese können aufgrund derer geeigneter Emissionseigenschaften als vielversprechende Kandidaten für das Ausgangsmaterial von Einzelphotonenquellen in der Quanteninformationstechnologie angesehen werden.
Excitation energy transport in DNA modelled by multi-chromophoric field-induced surface hopping
(2020)
Absorption of ultraviolet light is known as a major source of carcinogenic mutations of DNA. The underlying processes of excitation energy dissipation are yet not fully understood. In this work we provide a new and generally applicable route for studying the excitation energy transport in multi-chromophoric complexes at an atomistic level. The surface-hopping approach in the frame of the extended Frenkel exciton model combined with QM/MM techniques allowed us to simulate the photodynamics of the alternating (dAdT)10 : (dAdT)10 double-stranded DNA. In accordance with recent experiments, we find that the excited state decay is multiexponential, involving a long and a short component which are due to two distinct mechanisms: formation of long-lived delocalized excitonic and charge transfer states vs. ultrafast decaying localized states resembling those of the bare nucleobases. Our simulations explain all stages of the ultrafast photodynamics including initial photoexcitation, dynamical evolution out of the Franck-Condon region, excimer formation and nonradiative relaxation to the ground state.
Tetraiododiborane(4) (B\(_2\)I\(_4\)) is a Polymer based on sp\(^3\) Boron in the Solid State
(2020)
Herein we present the first solid‐state structures of tetraiododiborane(4) (B\(_2\)I\(_4\)), which was long believed to exist in all phases as discrete molecules with planar, tricoordinate boron atoms, like the lighter tetrahalodiboranes(4) B\(_2\)F\(_4\), B\(_2\)Cl\(_4\), and B\(_2\)Br\(_4\). Single‐crystal X‐ray diffraction, solid‐state NMR, and IR measurements indicate that B\(_2\)I\(_4\) in fact exists as two different polymeric forms in the solid state, both of which feature boron atoms in tetrahedral environments. DFT calculations are used to simulate the IR spectra of the solution and solid‐state structures, and these are compared with the experimental spectra.
Iodine oxides appear as reactive intermediates in atmospheric chemistry. Here, we investigate IO and HOI by mass‐selective threshold photoelectron spectroscopy (ms‐TPES), using synchrotron radiation. IO and HOI are generated by photolyzing iodine in the presence of ozone. For both molecules, accurate ionization energies are determined, 9.71±0.02 eV for IO and 9.79±0.02 eV for HOI. The strong spin‐spin interaction in the 3Σ− ground state of IO+ leads to an energy splitting into the Ω=0 and Ω=±1 sublevels. Upon ionization, the I−O bond shortens significantly in both molecules; thus, a vibrational progression, assigned to the I−O stretch, is apparent in both spectra.
Herein we report a broad series of new trinuclear supramolecular Ru(bda) macrocycles bearing different substituents at the axial or equatorial ligands which enabled investigation of substituent effects on the catalytic activities in chemical and photocatalytic water oxidation. Our detailed investigations revealed that the activities of these functionalized macrocycles in water oxidation are significantly affected by the position at which the substituents were introduced. Interestingly, this effect could not be explained based on the redox properties of the catalysts since these are not markedly influenced by the functionalization of the ligands. Instead, detailed investigations by X-ray crystal structure analysis and theoretical simulations showed that conformational changes imparted by the substituents are responsible for the variation of catalytic activities of the Ru macrocycles. For the first time, macrocyclic structure of this class of water oxidation catalysts is unequivocally confirmed and experimental indication for a hydrogen-bonded water network present in the cavity of the macrocycles is provided by crystal structure analysis. We ascribe the high catalytic efficiency of our Ru(bda) macrocycles to cooperative proton abstractions facilitated by such a network of preorganized water molecules in their cavity, which is reminiscent of catalytic activities of enzymes at active sites.
Rapid multiple-quantum three-dimensional fluorescence spectroscopy disentangles quantum pathways
(2019)
Coherent two-dimensional spectroscopy is a powerful tool for probing ultrafast quantum dynamics in complex systems. Several variants offer different types of information but typically require distinct beam geometries. Here we introduce population-based three-dimensional (3D) electronic spectroscopy and demonstrate the extraction of all fourth- and multiple sixth-order nonlinear signal contributions by employing 125-fold (1⨯5⨯5⨯5) phase cycling of a four-pulse sequence. Utilizing fluorescence detection and shot-to-shot pulse shaping in single-beam geometry, we obtain various 3D spectra of the dianion of TIPS-tetraazapentacene, a fluorophore with limited stability at ambient conditions. From this, we recover previously unknown characteristics of its electronic two-photon state. Rephasing and nonrephasing sixth-order contributions are measured without additional phasing that hampered previous attempts using noncollinear geometries. We systematically resolve all nonlinear signals from the same dataset that can be acquired in 8 min. The approach is generalizable to other incoherent observables such as external photoelectrons, photocurrents, or photoions.