Studies Concerning Nucleophilic Phosphine Catalysis and Designs of New Chiral Aminophosphines Toward Asymmetric Phosphine-catalyzed Reactions

Studies Concerning Nucleophilic Phosphine Catalysis and Designs of New Chiral Aminophosphines Toward Asymmetric Phosphine-catalyzed Reactions
Author: San Ngoc Khong
Publisher:
Total Pages: 415
Release: 2013
Genre:
ISBN:

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Phosphinocatalysis has been used among us as a short term for nucleophilic phosphine catalysis. The information in chapter 1 will focus on how phosphinocatalysis was discovered, who contributed to the early-day developments of this field, and what have been achieved in the field. Chapter 2 will cover phosphine-allene chemistry in which the equillibrium between phosphonium dienolate and vinylogous ylide was reaffirmed. Two new phosphine-mediated transformations were discovered in this chemistry: vinylogous aldol/P-to-C aryl migration by reaction of phosphonium dienolate with an aromatic aldehyde and vinylogous Wittig olefination by reaction of vinylogous ylide with an aromatic aldehyde. Chapter 3 will discuss the development of a one-pot procedure for phosphine-initiated general base-catalyzed quinoline synthesis and of its variation to quinolone synthesis. A number of 3-substituted and 3,4-disubstituted quinolines, as well as 3-substituted 4-quinolones have been generated from this methodology. Chapter 4 involves the designs of new chiral aminophosphines toward the asymmetric version of phosphine-catalyzed double Michael reaction. The aminophosphines were particularly designed based on the presumption that the anchimeric assistance of the amino group onto the phosphonium phosphorous was essentially significant to the reaction's success. The chiral element was designed to be on the amino group, which would endow the asymmetric environment to the reactive center via anchimeric assistance during the reaction. A small collection of chiral aminophosphines were eventually prepared based on this design. Chapter 5 was an extension on the design of chiral aminophosphines. However, the new design of chiral aminophosphines was not based on any specific asymmetric chemical transformations. This design was centered on the steric-directing mode of asymmetric induction and then would be tested toward various phosphinocatalysis reactions.

Syntheses and Application of New Chiral Phosphines as Ligands and Catalysts

Syntheses and Application of New Chiral Phosphines as Ligands and Catalysts
Author: Hsin Yao Su
Publisher:
Total Pages:
Release: 2017
Genre:
ISBN:

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Chiral phosphines are central to the development of enantioselective organic transformations because they are used extensively as ligands or organocatalysts. The work presented in this thesis describes efforts to develop new phosphine ligands, either through supramolecular self-assembly or through novel synthetic methods. Chapter 1 describes the development of chiral phosphines that self-assemble through reversible covalent iminoboronate linkages. By utilizing a facile condensation process driven by an intramolecular B-N interaction, a 100-ligand library was generated. Incorporation of various 2-formylarylboronic acids, chiral aminophosphines and vicinal diols, resulted in phosphine ligands with great structural diversity. The self-assembled ligands were employed in transition metal-catalyzed enantioselective transformations. Likely coordination modes and ligand decomposition pathways in the presence of transition metals are discussed. Synthesis of chiral beta-aminophosphines possessing different diarylphosphino moieties is presented in Chapter 2. The protocol made use of the nucleophilic ring-opening of sulfamidates derived from serval optically pure amino alcohols. Through the use of phosphine oxides as 'masked' phosphine equivalents, purification and isolation of intermediates from otherwise challenging synthetic steps were made possible. P- versus O-alkylation in the reactions of diarylphosphinites with sulfamidates will also be discussed. ii Chapter 3 describes an extension of the synthesis of beta-aminophosphines described in Chapter 2 to P-chiral variants. Treatment of an enantiopure sulfamidate with a racemic unsymmetrical secondary phosphine oxide resulted in diastereomeric intermediates that could be separated either by fractional recrystallization or silica gel chromatography. A BH3-mediated stereospecific phosphine oxide reduction was developed and implemented to convert these adducts to the corresponding diastereomerically enriched beta-aminophosphines. Finally, Chapter 4 describes the application of the thiourea derivatives of these P-chiral aminophosphines as organocatalysts. Evaluation of their catalytic performance in enantioselective Morita-Baylis-Hillman reactions revealed that the P-chiral catalysts afforded superior levels of selectivity compared to the non-P-chiral variant. Additionally, the spatial disposition of the two different P-aryl groups was found to influence catalytic activity as a result of matching/mismatching effects.

Development of Phosphine Catalyzed Reactions

Development of Phosphine Catalyzed Reactions
Author: Deepti Duvvuru
Publisher:
Total Pages: 0
Release: 2011
Genre:
ISBN:

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We have applied the enantioselective [3+2] cyclisations between allenoates and enones, under phosphine catalysis, to the asymmetric synthesis of sulfides and sulfoxides displaying unprecedented spirocyclic molecular scaffolds and multiple stereocentres. Notably, good yields and e.e's were obtained by using (S,S)-FerroPHANE as the chiral catalyst. Then, we established a highly diastereoselective oxidation procedure which converts the enantiomerically enriched spirocyclic sulfides into the corresponding sulfoxides. On the other hand, we have developed new phosphine promoted reactions for the synthesis of nitrogen heterocycles. From the known modes of action of phosphine nucleophiles, we have designed new combinations of properly functionalized substrates that have been processed in the presence of phosphorus catalysts. The [3+2] annulation reaction between imines and acyclic conjugated dienes, properly activated by electron withdrawing groups on both ends, affords a new efficient and diastereoselective approach to functionalized 3-pyrrolines, under phosphine catalysis. We have studied the scope and limitations of this strategy by considering a whole range of differently substituted dienes and imines. As an extension, we have also considered analogous cyclizations between imines and cyclic conjugated dienes in which one of the double bonds is embedded in a cyclic moiety which afforded the functionalized hexahydroisoindol-4-one derivatives. Coumarin derived dienes reacted however with stoichiometric amounts of phosphine and water to give an unprecedented domino process, i.e. a formal aza-Baylis Hillman-reduction sequence. The process proved to be highly chemoselective and allowed an excellent stereochemical control of the relative configurations of two, newly created, contiguous carbon centres.These studies have demonstrated that the phosphine catalysis affords simple and efficient methodologies for the synthesis of structurally diverse and highly functionalized heterocycles, starting from easily available starting materials.

C2- and C3-Symmetric Chiral Bis- and Tris(phosphines) in Asymmetric Catalysis

C2- and C3-Symmetric Chiral Bis- and Tris(phosphines) in Asymmetric Catalysis
Author: Zhiming Xu
Publisher:
Total Pages: 332
Release: 2017
Genre:
ISBN:

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Chapter 1. Effect of linker length on selectivity and cooperative reactivity in platinum-catalyzed asymmetric alkylation of bis(phenylphosphino)alkanes. The selectivity of catalytic asymmetric transformations of bifunctional symmetrical substrates often depends on the linker between the two reactive sites. If the catalyst controls the selectivity of reactions at both sites, the rac product will be formed in high enantiomeric ratio (er) via asymmetric amplification. Substrate control may augment this selectivity (positive cooperativity) or detract from it (negative cooperativity). We investigated the effect of linker length on the selectivity of catalytic asymmetric alkylation of the bis(secondary phosphines) PhHP-(CH2)[subscript n]PHPh (n = 2-6, 1a-e) with benzyl bromide using the base NaOSiMe3 and the catalyst precursor Pt((R,R)-Me-DuPhos)(Ph)(Cl). The two alkylations of bis(secondary phosphines) 1b-e with longer linker lengths (n = 3-6) showed identical selectivity, within experimental error. This catalyst control resulted in asymmetric amplification of rac-2. In contrast, the selectivity of the first alkylation of ethano-bridged 1a was lower than that in 1b-e (negative cooperativity), but the selectivity of the second alkylation increased due to positive cooperativity. I developed an efficient synthesis of the intermediate PhHP(CH2)2PPh(CH2Ph) (3a), which was required for determination of the selectivity of both steps in Pt-catalyzed alkylation of 1a. Possible mechanistic explanations for the observed dependence of selectivity on linker length are discussed in this chapter. Chapter 2. Selective formation of a C3-symmetric P-stereogenic tris(phosphine) via platinum-catalyzed asymmetric alkylation of a tris(secondary phosphine). C2-symmetric bis(phosphines) are the most common and successful ligands for metal-catalyzed reactions. Considering the great success of C2-symmetric ligands in asymmetric catalysis, C3-symmetric chiral tris(phosphines) were proposed to be useful in octahedral complexes, creating three homotopic sites. However, very little is known about C3-symmetric tris(phosphines) and their applications, mostly because of the lack of synthetic routes. We used Pt-catalyzed asymmetric alkylation to prepare enantiomerically enriched C3-symmetric, P-stereogenic tripodal tris(phosphines) from the tris(secondary phosphine) MeC(CH2PHPh)3 (5 a racemic mixture of C1- and C3-symmetric diastereomers) and a benzl bromide, utilizing the Pt((R,R)-Me-Duphos)(Ph)(Cl) catalyst precursor and a base. Pt-catalyzed alkylation of MeC(CH2PHPh)3 (5) with 2-cyanobenzyl bromide gave a mixture of tris(phosphines) MeC(CH2PPh(CH2Ar))3 (6) enriched in C3-6; oxidation of 6 by sulfur or H2O2 formed phosphine sulfide S-6 and oxide O-6. Hydrogen bonding between O-6 and the chiral amino acid (S)-Fmoc-Trip(BOC)-OH leads to the formation of new diastereomers. By integrating the 31P NMR spectra, I measured the dr and er values. Tris(phosphine) 6 was formed with a disatereomeric ratio (dr - C3/C1) of 2.1(2) and enantiomeric ratios of 54(10) and 3.8(7) for C3-3 and C1-3 respectively, which showed that the selectivity of the triple alkylation was not the same at each site (substrate control). Chapter 3. Screening racemic catalysts provides information on selectivity and mechanism in platinum-mediated asymmetric alkylation of bis- and tris(secondary phosphines). Screening racemic catalysts for transformations of symmetrical bifunctional substrates can provide information on the selectivity of an enantiopure catalyst. This idea was extended to Pt-catalyzed asymmetric alkylation of the bis(secondary phosphines) PhHP(CH2)3PHPh and PhHPCH2CMe2CH2PHPh and the tris(phosphine) MeC(CH2PHPh)3 with benzyl bromides using the catalyst precursors Pt(Me-DuPhos)(Ph)(CI) and Pt(BenzP*)(Ph)(CI). Depending on the catalyst and the substrate, these reactions occured under catalyst control without dissociation of the substrate, or under substrate control with or without substrate dissociation. The resulting structure-selectivity relationships provided mechanistic information. Chapter 4. Synthesis of new chiral bis(phospholane) metal-pincer complexes. Metal pincer complexes have received great attention in recent years as robust catalyst precursors. However, chiral metal pincer complexes for application in asymmetric catalysis are rare. Dialkylphospholane groups have an outstanding track record in asymmetric catalysis (commercial DuPhos and BPE ligands) and their steric properties can be easily controlled by tuning the alkyl substituents on the phospholane ring. These donors have similar steric and electronic properties to the common used bulky dialkylphosphine groups (P(t-Bu)2, P(i-Pr)2, etc.). Optimization of the synthesis of chiral PCP ligands bearing such phospholane groups and investigation of their coordination chemistry are discussed in this chapter.

Artificial Metalloenzymes and MetalloDNAzymes in Catalysis

Artificial Metalloenzymes and MetalloDNAzymes in Catalysis
Author: Montserrat Diéguez
Publisher: John Wiley & Sons
Total Pages: 431
Release: 2018-02-21
Genre: Technology & Engineering
ISBN: 3527804072

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An important reference for researchers in the field of metal-enzyme hybrid catalysis Artificial Metalloenzymes and MetalloDNAzymes in Catalysis offers a comprehensive review of the most current strategies, developed over recent decades, for the design, synthesis, and optimization of these hybrid catalysts as well as material about their application. The contributors—noted experts in the field—present information on the preparation, characterization, and optimization of artificial metalloenzymes in a timely and authoritative manner. The authors present a thorough examination of this interesting new platform for catalysis that combines the excellent selective recognition/binding properties of enzymes with transition metal catalysts. The text includes information on the various applications of metal-enzyme hybrid catalysts for novel reactions, offers insights into the latest advances in the field, and contains an informative perspective on the future: Explores the development of artificial metalloenzymes, the modern and strongly evolving research field on the verge of industrial application Contains a comprehensive reference to the research area of metal-enzyme hybrid catalysis that has experienced tremendous growth in recent years Includes contributions from leading researchers in the field Shows how this new catalysis combines the selective recognition/binding properties of enzymes with transition metal catalysts Written for catalytic chemists, bioinorganic chemists, biochemists, and organic chemists, Artificial Metalloenzymes and MetalloDNAzymes in Catalysis offers a unique reference to the fundamentals, concepts, applications, and the most recent developments for more efficient and sustainable synthesis.

Asymmetric Nucleophilic Catalysis with Planar-chiral DMAP Derivatives and Chiral Phosphines

Asymmetric Nucleophilic Catalysis with Planar-chiral DMAP Derivatives and Chiral Phosphines
Author: Sarah Yunmi Lee
Publisher:
Total Pages: 244
Release: 2014
Genre:
ISBN:

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Chapter 1 describes the development and detailed mechanistic investigation of the first non-enzymatic method for the dynamic kinetic resolution of secondary alcohols via enantioselective acylation, with acetyl isopropyl carbonate, through the use of a planar-chiral DMAP derivative (an acylation catalyst) in combination with a ruthenium complex (an alcohol-racemization catalyst). Chapter 2 describes the development and detailed mechanistic investigation of the enantioselective synthesis of tertiary alkyl fluorides via the [alpha]-fluorination of ketenes catalyzed by a planar-chiral nucleophile with N-fluorodibenzenesulfonimide in the presence of sodium pentafluorophenoxide. Chapter 3 describes the development and preliminary mechanistic study of the first asymmetric, phosphine-catalyzed intramolecular [3 + 2] cycloadditions of allenes with alkenes that furnish an array of diastereomerically pure bicyclic compounds bearing two or three contiguous tertiary! quaternary stereocenters.

Chiral Phosphine-catalyzed Asymmetric Transformations of Allenoates and Alkynoates and Photoinduced, Copper-catalyzed C-N Couplings with Aromatic Nitrogen Ceterocycles

Chiral Phosphine-catalyzed Asymmetric Transformations of Allenoates and Alkynoates and Photoinduced, Copper-catalyzed C-N Couplings with Aromatic Nitrogen Ceterocycles
Author: Daniel Todd Ziegler
Publisher:
Total Pages: 304
Release: 2015
Genre:
ISBN:

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Chapter 1 describes the development of chiral biphenyl-derived phosphepines and their application as catalysts for an asymmetric [4 + 1] annulation to form functionalized cyclopentenes bearing a non-spirocyclic quaternary stereocenter. Additional studies demonstrate the synthetic utility of the cyclopentene products for further stereoselective functionalization and provide insight into the mechanism of the reaction. Chapter 2 describes the development of photoinduced, copper-catalyzed C-N couplings between aromatic nitrogen heterocycles (i.e., indole, benzimidazole, imidazole, and carbazole) and aryl, alkenyl, and alkynyl halides. These reactions utilize an inexpensive catalyst (Cul, without an additional ligand) and proceed at unusually low temperature for Ullmann coupling processes with these heterocycles (room temperature). Additional studies probe the selectivity of the reaction with respect to both the nucleophilic and the electrophilic coupling partner. Chapter 3 details progress towards developing a method for asymmetric, intermolecular y additions of oxygen nucleophiles to alkynoates using a chiral phosphine catalyst. Conditions are presented that effectively couple alkynoates bearing an aryl substituent at the y position with a variety of alcohols in good yield and high ee. Future efforts will be focused on expanding the scope of this process and conducting experiments to gain insight into the reaction mechanism.