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Chirality/Chiral phases

Several groups have studied the structure of chiral phases illustrated in Fig. IV-15 [167,168]. These shapes can be understood in terms of an anisotropic line tension arising from the molecular symmetry. The addition of small amounts of cholesterol reduces X and produces thinner domains. Several studies have sought an understanding of the influence of cholesterol on lipid domain shapes [168,196]. [Pg.139]

More recendy the cis and trans isomers of the mosquito repellent CIC-4, a mixture of citroneUa isomers, have been separated by preparative hplc and bioassayed for effectiveness (23). Chiral-phase capillary gas chromatography and mosquito repellent activity of some oxazoUdine derivatives of (+)-and ( —)-citroneUal have been studied to find stmcture—activity relationships (24). Several 2-aLkyl- -acetyloxahdines have been synthesized and tested against mosquitoes, with further efforts using nmr to determine the rotational isomers of the more active N-acetyl-2,2-dimethyloxazohdine (25). [Pg.115]

The resolution of optically active compounds by gas chromatography with chiral phases is a well-established procedure, and the separation of Al-perfluoto-acetylated ammo acid ester enantiomers m 1967 was the first successful application of enantioselective gas-liquid chromatography [39] Ammo acids have been resolved as their A -trifluoroacetyl esters on chiral diamide phases such as N-lauroyl-L-valineferf-butylamideorAl-docosanoyl-L-valme /ez-r-butylamide [40,41,... [Pg.1030]

Figure 11.3 Typical configuration for the on-line coupling of an achiral and chiral cliro-matograpliic system by means of a switching valve. The non-enantio-resolved solute is isolated on the achiral phase and then stereochemically separated on the chiral phase. Reprinted from G. Subramanian, A Practical Approach to Chiral Separation by Liquid Chromatography, 1994, pp. 357-396, with permission from Wiley-VCH. Figure 11.3 Typical configuration for the on-line coupling of an achiral and chiral cliro-matograpliic system by means of a switching valve. The non-enantio-resolved solute is isolated on the achiral phase and then stereochemically separated on the chiral phase. Reprinted from G. Subramanian, A Practical Approach to Chiral Separation by Liquid Chromatography, 1994, pp. 357-396, with permission from Wiley-VCH.
S. G. Allenmark, Separation of enantiomers by protein-based chiral phases in A practical approach to chiral separations by liquid chromatogra.phy, G. Subramanian, VCH, Weinheim (1994) Chapter 7. [Pg.19]

G. Blaschke, Substituted polyacrylamides as chiral phases for the resolution of drugs in Chromatographic chiral separations, M. Zief, L. J. Crane (Eds.), Chromatographic Science Series, Vol. 40, Marcel Dekker, New York (1988) Chapter 7. [Pg.20]

The enantioselectivity a is defined as the distribution ratio of one single enantiomer over the two chiral phases and has been determined experimentally for a variety of compounds (Table 5-1). It has been known from work by Prelog [66, 67] that tartaric acid derivatives show selectivities towards a-hydroxyamines and amino acids. However, from Table 5-1 it is obvious that tartaric acid derivatives show selectivity for many other compounds, including various amino bases (e.g. mirtazapine (10)) and acids (e.g. ibuprofen (11)). The use of other chiral selectors (e.g. PLA)... [Pg.141]

Enantiomer Separations using Designed Imprinted Chiral Phases... [Pg.151]

Of course, the most practical and synthetically elegant approach to the asymmetric Darzens reaction would be to use a sub-stoichiometric amount of a chiral catalyst. The most notable approach has been the use of chiral phase-transfer catalysts. By rendering the intermediate etiolate 86 (Scheme 1.24) soluble in the reaction solvent, the phase-transfer catalyst can effectively provide the enolate with a chiral environment in which to react with carbonyl compounds. [Pg.22]

Early work on the use of chiral phase-transfer catalysis in asymmetric Darzens reactions was conducted independently by the groups of Wynberg [38] and Co-lonna [39], but the observed asymmetric induction was low. More recently Toke s group has used catalytic chiral aza crown ethers in Darzens reactions [40-42], but again only low to moderate enantioselectivities resulted. [Pg.22]


See other pages where Chirality/Chiral phases is mentioned: [Pg.194]    [Pg.58]    [Pg.99]    [Pg.99]    [Pg.514]    [Pg.514]    [Pg.179]    [Pg.263]    [Pg.342]    [Pg.342]    [Pg.342]    [Pg.342]    [Pg.342]    [Pg.342]    [Pg.916]   
See also in sourсe #XX -- [ Pg.55 , Pg.56 , Pg.57 ]




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Alkylations asymmetric, chiral phase-transfer

Amino acids chiral phases

Amino imprinted chiral phases

Aspects of Molecular Symmetry for Chiral Nematic Phases

Asymmetric epoxidation catalyzed by novel azacrown ether-type chiral quaternary ammonium salts under phase-transfer catalytic conditions

Aziridination of Enones Using Cinchona-Based Chiral Phase-Transfer Catalyst

Binding imprinted chiral phases

Blue Phases of Chiral Liquid Crystals

Bonded chiral stationary phase

Box 24-1 Chiral Phases for Separating Optical Isomers

Brush-type Chiral Stationary phase

Carbon-based chiral stationary phases

Catalysts chiral ammonium salt phase

Chiral Anion Phase-Transfer Catalysts

Chiral C* phase

Chiral Cation Phase-Transfer Catalysts

Chiral Chromonic Phases

Chiral HPLC Pirkle phases

Chiral Mobile Phase Additives (CMPA)

Chiral Onium Salts (Phase-Transfer Reactions)

Chiral Stationary Phases (CSPs

Chiral Stationary Phases (CSPs Amylose

Chiral Stationary Phases (CSPs cyclodextrins from

Chiral Stationary Phases (CSPs separations

Chiral Stationary Phases carbamate

Chiral Stationary Phases in SFC

Chiral Tilted Columnar Phase

Chiral catalytic phase transfer

Chiral cholesteric phase

Chiral clusters in the gas phase

Chiral columnar phase

Chiral compounds phase-transfer catalysts

Chiral compounds with cyclodextrin mobile phase

Chiral crystals, phase behavior

Chiral liquid stationary phases

Chiral mobile phase

Chiral mobile phase additives

Chiral mobile phase additives (CMPAs

Chiral mobile phase additives chromatographic separation

Chiral mobile phase additives enantiomers

Chiral mobile phase additives enantioselectivity

Chiral mobile phase additives macrocyclic glycopeptides

Chiral mobile phase additives, chromatographic studies

Chiral mobile-phases Additives, selectivity with

Chiral mobile-phases interactions with

Chiral mobile-phases retention mechanisms

Chiral molecules, nematic phases

Chiral nematic phase

Chiral nematic phase materials forming

Chiral nematic phases discotic

Chiral nematic phases enantiotropic

Chiral nematic phases, columnar

Chiral nematics phase transitions

Chiral phase transfer catalysis

Chiral phase transfer catalysis (PTC

Chiral phase-transfer catalysis asymmetric alkylations

Chiral phase-transfer catalysis catalysts

Chiral phase-transfer catalysts alkylations

Chiral phase-transfer catalysts conjugate additions

Chiral phases

Chiral phases

Chiral phases Pirkle

Chiral phases Pirkle type

Chiral phases amyloses

Chiral phases bovine serum albumin

Chiral phases cellulose derivatives

Chiral phases celluloses

Chiral phases cyclodextrins

Chiral phases derived from

Chiral phases helical polymers

Chiral phases ligand exchange

Chiral phases macrocyclic glycopeptides

Chiral phases metal chelates

Chiral phases polysiloxane

Chiral phases protein

Chiral phases small molecule

Chiral selectors mobile phase additives

Chiral side chain polymers isotropic smectic phase

Chiral smectic A phase

Chiral smectic C phases

Chiral smectic phases

Chiral solid stationary phases

Chiral stationary phase (CHIRALCEL

Chiral stationary phase chiracels

Chiral stationary phase chromatography

Chiral stationary phase cinchona-alkaloid-bonded

Chiral stationary phase cyclodextrin-bonded

Chiral stationary phase, separation enantiomeric amides

Chiral stationary phases

Chiral stationary phases (CSP

Chiral stationary phases Metal

Chiral stationary phases avidin

Chiral stationary phases carbamate derivatives

Chiral stationary phases cellulose

Chiral stationary phases cellulose esters

Chiral stationary phases cellulose triacetate

Chiral stationary phases characteristics

Chiral stationary phases chromatographic studies

Chiral stationary phases commercial columns

Chiral stationary phases components

Chiral stationary phases computational studies

Chiral stationary phases configuration

Chiral stationary phases crown ethers

Chiral stationary phases cyclodextrins, glycopeptide

Chiral stationary phases cydodextrins

Chiral stationary phases enantiomer recognition

Chiral stationary phases ethers

Chiral stationary phases examples

Chiral stationary phases high-performance liquid

Chiral stationary phases immobilization

Chiral stationary phases in HPLC

Chiral stationary phases macrocyclic glycopeptides

Chiral stationary phases metal complexes

Chiral stationary phases optically active polymers

Chiral stationary phases phenylcarbamates

Chiral stationary phases poly derivatives

Chiral stationary phases polysaccharide derivatives

Chiral stationary phases polysaccharides

Chiral stationary phases proteins

Chiral stationary phases recognition mechanism

Chiral stationary phases reverse elution

Chiral stationary phases siloxanes

Chiral stationary phases starch

Chiral stationary phases structural features

Chiral stationary phases synthetic polymers

Chiral stationary phases table

Chiral stationary phases vancomycin

Chiral stationary phases, 9-anthryl

Chiral stationary phases, approach

Chiral stationary phases, for HPLC

Chiral-coated stationary phases

Chiral-coated stationary phases enantioseparations

Chiral-coated stationary phases preparation

Chiral-phase chromatography, lipid

Chiral-phase chromatography, lipid analysis

Chiral-phase columns

Chiral-specific phase

Chirality Effects in the Lyotropic SmC Analog Phase

Chirality blue phase transitions

Chirality mobile phase

Chirality phase transitions

Chirality stationary phase

Chirality/Chiral coated phases

Chromatography imprinted chiral phases

Cinchona chiral stationary phase

Cinchona-Derived Chiral Phase-Transfer Catalysts for Other Asymmetric Synthesis

Cinchona-Derived Chiral Poly(Phase-Transfer Catalysts) for Asymmetric Synthesis

Cyclobond chiral stationary phases

Cyclodextrins, chiral stationary phases

Derived Chiral Phase-Transfer Catalysts for Amino Acid Synthesis

Design of Chiral Phase-transfer Catalysts

Enantioselective chiral stationary phase preparation

Enantioselective chiral stationary phases

Enantioselective liquid chiral stationary phases

Enantioseparation chiral stationary phases

Ethers as Chiral Phase-Transfer Catalysts

Ethers, Taddol, Nobin and Metal(salen) Complexes as Chiral Phase-Transfer Catalysts for Asymmetric Synthesis

Ferroelectric modes in chiral smectic C* phase

Frustrated chiral phases

Functional imprinted chiral phases

General Properties of Chiral Stationary Phases

HPLC Enantioseparations using Chiral Additives to the Mobile Phase

HPLC chiral stationary phases

HPLC using chiral mobile-phase additives

High Using chiral stationary phases

High imprinted chiral phases

High performance liquid chromatography chiral phases

High performance liquid chromatography chiral stationary phases

Hydrogen imprinted chiral phases

Imprinted chiral phases

Indanone chiral phase-transfer

Layers chiral phases

Ligand-exchange chiral stationary phases

Liquid crystalline phases chiral nematic

Liquid crystals chiral phases

Mechanisms chiral phase-transfer

Method Development and Optimization of Enantiomeric Separations Using Macrocyclic Glycopeptide Chiral Stationary Phases

Methylations chiral phase-transfer

Mobile Phases for Chiral Chromatography

Mobile imprinted chiral phases

New Chiral Stationary Phases and Information Management Software

Nonchiral Plates Used with Chiral Mobile Phases

Normal-phase chiral

Other Chiral Phase-Transfer Catalysts for Asymmetric Synthesis

Other Chiral Phase-Transfer-Catalyzed Reactions

Other Chiral Smectic Phases

Other Two-Center Chiral Phase-Transfer Catalysts

Peptides imprinted chiral phases

Phase chiral onium

Phase transfer catalyst, chiral

Phase transfer catalysts, chiral polymer-based

Phase transfer catalysts, chiral polymeric

Phase transfer catalysts, chiral solid

Phase-transfer catalysis chiral, asymmetric

Phase-transfer, chiral anion

Phases chirality

Phases chirality

Photochemical phase chiral dopant

Pirkle-type chiral stationary phases

Polymer structures, imprinted chiral phases

Polysaccharide-coated chiral separation phases

Precoated layers chiral phases

Preparative Chiral Stationary Phases

Protein chiral separation phases

Racemates imprinted chiral phases

Reaction profile, chiral phase

Recognition imprinted chiral phases

Reversed-phase chiral

Selectivities imprinted chiral phases

Selectors imprinted chiral phases

Separation of Enantiomers by Liquid Chromatography on Chiral Stationary Phases

Separation selectivity with chiral mobile-phase additives

Silicone based chiral phases

SmCP phases chiral structure

Specialty columns chiral stationary phases

Stationary Phases for Chiral Chromatography

Stationary Phases for Chiral Separations

Stationary phase chiral separations

Stationary phases chiral discrimination

Structure of the chiral nematic phase

Supercritical fluid chromatography using chiral stationary phases

The Chiral Nematic Phase

The Chiral Smectic Phases

Thermotropic liquid crystals chiral nematic phase

Tilted chiral phases

Tilted chiral smectic phases

Two-Center Chiral Phase-Transfer Catalyst Derived from BINOL

Two-Center Chiral Phase-Transfer Catalysts for Asymmetric Synthesis

Whelk chiral stationary phases

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