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The high selectivity of biological transformations taking place in Nature have long inspired synthetic chemists to develop analogous chemical processes. Similarly, transient intermediates identified in chemical transformations often provide a basis to understand biological processes. Therefore, new insights gained in biological studies are often useful for chemistry and vice versa.
Proteins, and catalytically active enzymes, are among the most essential units of living cells. Metalloproteins or -enzymes, i.e., proteins or enzymes that contain transition metal ions such as copper, nickel, iron or zinc are often involved in processes like (1) metal-ion storage and transport, (2) exchange of electrons with the environment in catalysis and electron transfer reactions, and (3) dioxygen storage, transport, and metabolization.
For decades, copper-mediated biological oxidations have spurred a great deal of interest among synthetic and catalytic chemists. Copper enzymes such as dopamine β-monooxygenase (DβM), peptidylglycine α-hydroxylating monooxygenase (PHM),particulate methane monooxygenase (pMMO) and tyrosinase activate molecular oxygen (O2) and incorporate one of the oxygen atoms selectively into C−H bonds yielding hydroxylated organic substrates. Remarkable progress in bioinorganic research has led to the development of a large number of copper-based model systems supported by various nitrogen donor ligands that bind O2, cleave the O−O bond, and/or afford hydroxylation reactions similar to copper enzymes. These synthetic model systems have helped to understand the structureactivity relationships of their biological role models and supporting theoretical studies have contributed substantially to the development of the field. Specifically, several density functional theory (DFT) studies have provided detailed mechanistic insights into coppermediated aliphatic and aromatic hydroxylation reactions. Until to date, however, pertinent quantum chemical research still suffers from severe problems as to identify sufficiently accurate and efficient methods for mechanistic studies, and conflicting literature reports have created confusions within the scientific community. Therefore, the first aim of this thesis is to identify a DFT method well suited to describe copper-mediated hydroxylation reactions. With this method at hand a number of interesting hydroxylation reactions is investigated aiming at a detailed understanding of the underlying reaction mechanisms.
The thesis is divided into four chapters of which the first, the introductory chapter, is further divided into three sections (1) copper proteins and enzymes, (2) copper-O2 reactivity in enzymes and (3) biomimetic Cu/O2 chemistry. The first section gives a brief overview of a number of copper enzymes. The second section provides a concise introduction to the biochemical transformations brought about by those copper enzymes that perform aliphatic and aromatic hydroxylation reactions. It is shown that such copper enzymes carry different types of active sites which are responsible for their specific biological functions. These copper enzymes with their biological function are the role models for synthetic chemistry. In the third section, biomimetic Cu/O2 chemistry, the insights gathered in the past 35 years of extensive research on copper-based synthetic model systems that mimic various aspects of copper-enzyme reactivity are reviewed. Various types of active copper sites have been realized in these synthetic model systems and a brief introduction to the respective reactivities towards C−H bonds is presented. We will specifically focus on isomerization processes of dinuclear active Cu2O2 sites and the specific reactivity aspects of these isomers, as these phenomena have been the subject of enormous research efforts aiming at the understanding of the function of the enzyme tyrosinase.
Theory has been integral part of this research and density functional theory (DFT) has effectively taken over the role as a working horse in most studies. Therefore, the second chapter is devoted to an exposition of earlier DFT applications in mechanistic studies of Cu/O2 chemistry. We specifically highlight the problems related to the use of DFT in this field and illustrate the present state of knowledge.
The third chapter of this thesis provides results and discussion of (1) DFT benchmark studies and (2) mechanistic studies. In the first section, the results of a careful benchmark study on the performance of various DFT methods to study the μ-η2:η2-peroxodicopper(II)/bis(μ-oxo)dicopper(III) core isomerization and the C–H hydroxylation processes are compared with available experimental reference data. We provide an assessment of the effects of relativity, counteranions, and dispersion on the reference reactions. The most suitable DFT method evolving from this study, BLYP-D/def2-TZVP including solvent and relativistic corrections, is applied in the next sections to investigate the mechanistic scenario underlying three copper-dioxygen mediated hydroxylation reactions of aliphatic and aromatic C–H bonds. Our mechanistic studies show that bis(μ-oxo)dicopper(III) complexes are capable of achieving selective aliphatic and aromatic C–H hydroxylations. The study of substituent effects in these reactions has further shown that the bis(μ-oxo)dicopper complex acts as an electrophile in hydroxylation.
The fourth chapter presents the conclusions of our investigations. Part of the work presented in this thesis has been published in a peer reviewed journal and enclosed in appendix 1. Further research work, not presented in chapters 1-4, was conducted during my PhD time. This has led to two publications which are added in the appendix.
Chalcogen-based species are common ligands in transition-metal chemistry and display a variety of coordination modes. Like alkyl- and arylchalcogenolates, silylchalcogenolates are able to stabilize transition-metal complexes. Metal chalcogenolates LnM-ESiR3 with small organic residues R can serve as precursors for larger metal–chalcogenide clusters, which can be accessed by cleaving the E-Si bond. Furthermore, large silyl residues at the chalcogen atom serve to kinetically stabilize reactive systems. To explore the diverse chemistry of this class of compounds, a number of different silyl chalcogenolates were synthesized, including the sodium siloxide Ph2MeSiONa and the chalcogen derivatives of the extremely sterically hindered silyl residues tBu2PhSi- und tBu3Si-. The anionic silyl species tBu2PhSiNa and tBu3SiNa nucleophilically degrade elemental chalcogens (S, Se, and Te), thus producing the silyl chalcogenolates tBu2PhSiENa and tBu3SiENa (E = S, Se, Te). The chemical and structural properties of these compounds were studied. Protonolysis produces the corresponding chalcogenols tBu2RSiEH, while oxidation leads to the dichalcogenides tBu2RSiE-ESiRtBu2 (R = tBu, Ph; E = S, Se, Te). Oxidative addition of the dichalcogenides to metal centers in low oxidation states offers one route to chalcogenolate complexes. To investigate the realm of this approach, three oligochalcogen compounds R3SiE-E′n-ESiR3 were synthesized. The tetrasulfane tBu3SiS-S2-SSitBu3 and the chalcogen(II)dithiolates (tBu3SiS)2Se and (tBu3SiS)2Te were produced, and their stability was investigated. The direct comparison of isoelectronic species allows for a deeper understanding of their similarities and differences. The silanides R3Si– can be considered as anionic phosphane analogues in which a phosphorus atom has been formally replaced with a Si– unit. Phosphanylborhydrides R2BH3P– also belong to this isoelectronic series. The same analogy holds true for the chalcogen derivatives related to the phosphane chalcogenides R3P=E. With this in mind, complexes of the CpFe(CO)2 fragment with the different isoelectronic ligands were synthesized and compared. The silyl-based ligands were found to be the strongest donors of the two isoelectronic series. The differences in donor strength were roughly twice as large for the nonchalcogen species as for the chalcogen-based ligands. To further investigate the chemistry of transition-metal silyl chalcogenolate complexes, the coordination behavior of the chalcogenolates tBu2RSiE– (R = tBu, Ph; E = S, Se, Te) was studied. Salt metathesis of silyl thiolates with appropriate metal halides leads to the multinuclear complexes [Cu(SSitBu2Ph)]4 and [ZnCl(SSitBu3)(THF)]2. Metathesis products were identified in the reactions of BrMn(CO)5 with one or two equivalents of tBu3SiSNa(THF)2. Diproporationation of these compounds leads to dimeric Mn(I)Mn(II) complexes. The crystal structure of the dinuclear disproportionation product [(CO)3Mn(mu-SSitBu3)3Mn(SSitBu3)]– displays a terminal tBu3SiS– ligand, which coordinates with a Mn-S-Si angle of 180°. This geometry indicates that the thiolate can be considered as a six-electron donor (2 sigma e–, 4 pie–), analogous to the cyclopentadienyl ligand. Photoinduced oxidative addition of the dichalcogenides to Fe(CO)5 leads to the dimeric complexes [(CO)3Fe(ESitBu3)]2 (E = S, Se, Te). The tellurolate complex forms quantitatively within 8 h. The thiolate complex, on the other hand, is formed slowly over a period of six months. IR-spectroscopic investigation of the CO vibrations of the three homologous complexes indicates that the tellurolate is the strongest donor of the series.