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Photoinduced processes are nowadays studied with a huge variety of spectroscopic methods. In the liquid phase, transient absorption spectroscopy is probably the most versatile pump–probe technique used to study light-induced molecular phenomena. Optical time-resolved spectroscopy is established in a large number of laboratories and is still further being developed with respect to many technical aspects. Nevertheless, the full potential of shortening the data-acquisition time—necessary for the investigation of rapidly photodegrading samples and observation of macroscopically fast processes—achievable with high-repetition-rate laser systems and shot-to-shot detection was not fully exploited. Especially, shot-to-shot detection is highly beneficial due to the high correlation of subsequent laser pulses.
The development and implementation of 100 kHz broadband shot-to-shot data acquisition was presented in Chapter 3. For an established laser dye as a benchmark system, ultrafast excited-state dynamics were measured for the first time with broadband shot-to-shot detection at 100 kHz. An analysis of both the noise characteristics of the employed laser and the correlation of subsequent pulses quantified the advantage of shot-to-shot data acquisition. In the utilized software environment, the time for measuring a complete data set could be sped up by a factor of three or even higher compared to a laser system working at 1 kHz. So far, the limiting factor is the data processing and the movement of the mechanical delay stage. Nevertheless, the new shot-to-shot detection has the potential to shorten the measurement time up to a factor of 100. The data quality is improved by a factor of three when the hitherto conventional averaging scheme is compared to shot-to-shot acquisition for the same number of laser pulses. The expansion of shot-to-shot data acquisition for high repetition rates will allow studies on sensitive samples as exposure times can strongly be reduced to achieve the same signal-to-noise ratio. In addition, multidimensional spectroscopy can also be extended to high-repetition shot-to-shot readout allowing an efficient recording of data. Therefore, in future experiments, dynamics and couplings in sensitive samples and kinetic processes could be studied in more detail.
Complex photophysical and photochemical phenomena are subject of many fields of research. Many of these multifaceted processes are not yet fully understood. Therefore, a possible approach is the elucidation of single reaction steps with the combination of transient absorption spectroscopy and a suitable, less complex model system. The systematic variation of the model system’s properties and environments, e.g., by chemical substitution or adequate choice of the solvent allows the determination of essential entities and reactivities thereof. Proper knowledge of an individual intermediate step and its determining factors can enhance the understanding of the complete photoreaction process.
The application of transient absorption spectroscopy was shown for the optically-induced electron transfer in a series of donor–acceptor oligomers in Chapter 4. In general, the solvent relaxation times were isolated from the back-electron-transfer dynamics by a global lifetime analysis. For the smallest oligomeric structure where complete charge separation is possible, an ultrafast equilibration leads to charge recombination from the configuration showing the lowest barrier for recombination. The back-electron transfer strongly depends on the utilized solvent. Whereas in dichloromethane the back-electron transfer occurs with the maximum rate in the barrierless optimal region, the dynamics in toluene are governed by a Marcus inverted-region effect. The experimentally observed rates were also estimated by theoretical calculations of the respective barriers. The study did not only successfully unravel charge transfer in the oligomeric systems but also improved the understanding of the electron-transfer properties of larger polymers from an earlier study. Therefore, the combination of length variation and time-resolved spectroscopy is an important step towards the correct prediction of charge-carrier dynamics in macroscopic devices, e.g., for photovoltaics.
The bond dissociation of a carbon-monoxide-releasing molecule in aqueous solution was studied in Chapter 5 as a prototype reaction for the photo-triggered breaking of a bond. It was shown that upon excitation only one carbon-monoxide ligand of the tricarbonyl complex is dissociated. A fraction of the photolyzed molecules restore the intact initial complex by geminate recombination within the temporal resolution of the experiment. However, the recombination could be detected by the hot ground-state infrared absorption of the complex. The detectable dicarbonyl formed upon CO release distributes excess energy from the absorbed photon into low-frequency modes which result in broadened absorption bands like for the recombined tricarbonyl. The free coordination site in the ligand sphere is filled with a solvent water molecule. Despite numerous studies of metal carbonyls studied in alkaneous solutions, the elucidation of the dynamics of a CORM in aqueous solution added another important detail to the photochemistry of this class of compounds. Experiments employing a second ultraviolet pump pulse did not trigger further CO dissociation and hence no formation of a monocarbonyl species; this might either be due to a different release mechanism without a further photochemical step or a strong spectral shift of the dicarbonyl’s absorption. Both reasons could explain why degenerate pump–repump–probe spectroscopy is inefficient. However, further experiments with ultraviolet probe pulses could substantiate whether the intermediate dicarbonyl reacts further photochemically or not. Apart from the model-system character of the CORM for bond dissociation, the study could determine exactly how many CO ligands are initially photolyzed off. Detailed knowledge of the release mechanism will affect the previous use and application as well as the further development of CORMs as therapeutic prodrugs to deliver high local concentrations of CO in cancerous or pathological tissue. Hence, the study of two-photon absorption properties which are important for in vivo applications of CORMs should be the main focus in further spectroscopic experiments.
In Chapter 6, both abovementioned molecular phenomena—electron transfer and bond dissociation—were studied in combination. The photochemistry of a tetrazolium salt was studied in detail in a variety of different solvents. Being a relatively small molecule, the studied tetrazolium cation shows a multifaceted photochemistry and is therefore a textbook example for the combination of ultrafast molecular phenomena studied in different environments. Within femtoseconds, the tetrazolium ring is opened. The biradicalic species is then reduced via uptake of an electron from the solvent. The formation of the ring-open formazan photoproduct from this point of the reaction sequence on was excluded by experiments with acidic pH value of the solution. The ring-open radical is stabilized by ring-closure. The resulting tetrazolinyl radical was already observed in experiments with microsecond time resolution. However, its formation was observed in real time for the first time in this study. Irradiation of a tetrazoliumsalt solution yields different photoproduct distributions depending on the solvent. However, it was shown that all photoproducts have a tetrazolinyl radical as a common precursor on an ultrafast time scale. In combination with studies from the literature, the complete photochemical conversion of a tetrazolium salt was clarified in this study. Apart from the prototype character of the reaction sequence, the reaction mechanism will have impact on research associated with life science where tetrazolium assays are used on a daily basis without taking into account of photochemical conversion of the indicating tetrazolium ion and its photochemically formed reactive intermediates. On the basis of the tetrazolium-ion photochemistry, the rich photochemistry of the formazan photoproduct, including structural rearrangements and subsequent reformation of the tetrazolium ion, might be the subject of future studies.
This thesis shows a method advancement and application of transient absorption spectroscopy to exemplary molecular model systems. The insights into each respective field did not only enlighten singular aspects, but have to be seen in a much larger context. Understanding complex photoinduced processes bottom-up by learning about their constituting steps—microscopically and on an ultrafast time scale—is an ideal method to approach understanding and prediction of phenomena in large molecular systems like biological or artificial architectures as for example used in photosynthetic light-harvesting and photovoltaics.
Adaptive femtosecond quantum control has proven to be a very successful method in many different scientific fields like physics, chemistry or biology. Numerous quantum systems and in particular molecules undergoing chemical reactions have been controlled using shaped femtosecond laser pulses. This method allows to go beyond simple observation and to obtain active control over quantum--mechanical systems. It uses interference phenomena in the time and/or frequency domain to achieve selectivity. The shaped femtosecond laser pulses employed in this scheme have until recently been purely linearly polarized. Therefore, they only address the scalar properties of light--matter interaction and neglect the vectorial character of both the dipole moment $\vec{\mu}$ and the electric field $\vec{E}(t)$. Especially in the quantum control of chemical reactions the investigated systems ---the molecules--- are three dimensional and exhibit complex spatio--tempo\-ral dynamics. With the help of polarization--shaped laser pulses one is now able to follow these dynamics in both, time and spatial direction, and can therefore reach a new level of control over quantum--mechanical systems. In this work, the generation of polarization--shaped laser pulses has been implemented in an optical setup. It requires no interferometric stability as a result of the identical beam path for both polarization components. Dual--channel spectral interferometry was employed as experimental pulse characterization and a mathematical description of the time--dependent polarization state of these pulses was given. The polarization modulation of the shaped pulses by subsequent optical elements was investigated and some solutions to minimize these modulations were presented. Jones matrix calculus with experimentally calibrated matrices was implemented to account for all polarization distortions from the LCD to the position of the experiment and for full characterization of the generated pulse shapes. Adaptive polarization shaping was demonstrated in a purely optical realization of the learning--loop concept. The learning algorithm was able to find the needed linear polarization in order to maximize second harmonic generation in a nonlinear optical crystal. The closed--loop configuration has proven to be capable to clear up more complicated polarization distortion, which was introduced using a multiple order half--wave plate designed for use at a wavelength of 620~nm. The additional deformation of the spectral phase through dispersion in a 10~cm long SF10 glass rod has also been compensated automatically. After these optical demonstration experiments ultrafast polarization shaping was applied to control a quantum system. Polarization sensitivity was shown in pump--probe measurements of the multiphoton ionization of potassium dimer molecules K$_2$. This sensitivity was exploited in a more general way in a learning--loop experiment with polarization--shaped laser pulses. A qualitatively new level of control was demonstrated using the time--dependent polarization state of laser pulses as an active agent. This polarization control was applicable even in randomly aligned molecules, which is a significant simplification of the experimental setup. In addition to these polarization control experiments, the three dimensional dynamics of molecules were also investigated and controlled. The \textit{cis--trans} photoisomerization of NK88 was studied in the liquid phase by transient absorption spectroscopy. The isomerization reaction efficiency was enhanced as well as reduced using linearly polarized laser pulses at 400~nm shaped in spectral phase and amplitude. This experiment demonstrates the ability to control the large scale motion of complex molecular groups with shaped femtosecond laser pulses. The modification of the molecular geometry can be regarded as a first step towards control of chirality in photochemistry. Especially with the successful demonstration of polarization quantum control, which is required in the theoretical models for the selective conversion of one enantiomer into the other, the way is paved towards coherent control of chirality. Besides these fascinating applications of polarization shaping it should now also be possible to extend the wavelength range of these pulses. Apart from second harmonic generation in order to reach the ultraviolet region intra-pulse difference frequency generation could be an option to open the mid-infrared spectral range for polarization shaping. With these new wavelength regions numerous new perspectives arise for quantum control using polarization--shaped laser pulses. Referring once more to the novel of Edwin A. Abbott presented in the introduction one could say that shaped femtosecond pulses really have left Flatland. Or to put it into the words of the sphere, when it teaches the square about the perception of dimensions: \begin{quote} ``Look yonder [...] in Flatland thou hast lived; of Lineland thou hast received a vision; thou hast soared with me to the heights of Spaceland;'' \hfill Edwin A.~Abbott~\cite{abbott1884}, 1884 \end{quote}
In this work, the laser control of molecules was investigated theoretically. In doing so, emphasis was layed on entering vectorial properties and in particular the orientation in the laboratory frame. Therefore, the rotational degree of freedom had to be included in the quantum mechanical description. The coupled vibrational and rotational dynamics was examined, which is usually not done in coherent control theory. Local control theory was applied, where the field is determined from the dynamics of a system, which reacts with an instantaneous response to the perturbation and, in turn, determines the field again. Thus, the field is entangled with the quantum mechanical motion and the presented examples document, that this leads to an intuitive interpretation of the fields in terms of the underlying molecular dynamics. The limiting case of a classical treatment was shown to give similar results and hence, eases to understand the complicated structure of the control fields. In a different approach, the phase- and amplitude shaping of laser fields was systematically studied in the context of controlling population transfer in molecules.