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Catalysis synthesis

Keywords Cycloprop anation Insertion Ylide reactions Asymmetric catalysis Synthesis... [Pg.203]

The authors would like to acknowledge the contributions of several individuals for their insight and hard work in achieving the data included in this report J. Scott McCracken (TAP reactor), Kevin S. Slusser (fixed bed reactor), and Tom Borecki (catalysis synthesis). The authors would also like to thank DuPont s vinyl acetate business and manufacturing teams for allowing this work to be published. [Pg.200]

An enantio-selective enzymatic hydrolysis of meso( )-2,5-diacetoxy-3-hexene gives (+)-( )-(25 ,5/ )-5-acetoxy-3-hexen-2-ol in 77% yield (92% ee).97 The monoacetate with its two allylic groups offers possibilities for stereo-controlled introduction of nucleophiles via Pd(0) catalysis. Synthesis of both enantiomers of the Carpenter bee pheromone based on this strategy is presented in Scheme 5.14.98... [Pg.147]

Bomer A (ed) (2008) Trivalent phosphoms compounds in asymmetric catalysis, synthesis and applications. VCH, Weinheim... [Pg.28]

Chemical Synthesis The traditional tools of chemical synthesis in use today are organic and inorganic synthesis and catalysis. Synthesis is the efficient conversion of raw materials such as minerals, petroleum, natural gases, coal, and biomass into more useful molecules and products catalysis is the process by which chemical reactions are either accelerated or slowed by the addition of a substance that is not changed in the chemical reaction. Catalysis-based chemical syntheses account for 60% of today s chemical products and 90% of current chemical processes (Collins, 2001). [Pg.248]

Ackerman, L. (2006) Air- and moisture-stable secondary phosphine oxides as preligands in catalysis. Synthesis, 1557. [Pg.292]

K. S. Kim and W. A. Szarek, Methylenation of carbohydrates using phase-transfer catalysis. Synthesis 48 (1978). [Pg.33]

Weidmann, B. Seebach, D. MeTi(OiPr)j, a highly selective nucleophilic methylating reagent. Helv Chim. Acta 1980, 63, 2451-2454. Kiefl, C. Mannschreck, A. 1,8-Disubstituted naphthalenes by directed metalation and subsequent Li-Mn exchange, including Cu catalysis. Synthesis 1995, 1033-1037. [Pg.211]

M. Grunzel [ The Chemical Physics of Solid Surfaces and Heterogeneous Catalysis, Synthesis and Decomposition of Ammonia vol.4, Ed. D.A. King (Elsevier Scientific Publishing Company, Amsterdam, 1982)]... [Pg.436]

Ballini, R., Bosica, G., Fiorini, D., and Palmieri, A. 2004. One-pot synthesis of 1,3-dinitro-alkanes under heterogeneous catalysis. Synthesis, 12 1938 0. [Pg.75]

Canicio, J. A. Ginebreda, A. Canela, R., A New Direct a-Alkylation of Arylacetic Acids by Solid-Liquid Phase-Transfer Catalysis Synthesis of 2-Arylalkanoic Acids. An. Quint. 1985, 81, 181. [Pg.52]

Doecke, C.W. Staszak, M. A. Luke,W. D., A Mild, Efficient Methodology for the Synthesis of Carbacephem Intermediates via Phase Transfer Catalysis. Synthesis 1991,985. [Pg.247]

Ye, W., and Liao, X., Synthesis of dialkyl alkoxycarbonylmethanephosphonates (alkyl dialkoxyphos-phinylacetates) using phase-transfer catalysis. Synthesis, 986, 1985. [Pg.481]

Phosphorus Ligands in Asymmetric Catalysis Synthesis and Applications... [Pg.499]

Hans-Ulrich Blaser Novartis Services AG Catalysis Synthesis Services R 1055.6.28... [Pg.3]

H.-U. Blaser Catalysis Synthesis Services, Novartis Services AG, R 1055.6, CH-4002 Basel, Switzerland... [Pg.250]

F. Tropper, F. O. Andersson, C. Grand-Maitre, and R. Roy, Stereospecific synthesis of 1,2-trans-l-phenylthio-(S-D-disaccharides under phase transfer catalysis, Synthesis, (1991) 734-736. [Pg.128]

Ayyanger, N. R.,S.Madan Kumar, and K. V. Srinivasan, Facile One-Pot Synthesis of 2,1,3-Benzoxadiazole A-Oxide(Benzofur-oxan) Derivatives under Phase-Transfer Catalysis, Synthesis, 616 (1987). [Pg.31]

Wrobel, J. T., and E. Hejchman, Spiro Derivatives of Tetrahydroth-iophene. Synthesis of the Quinolizidine (3-Spiro-2 )Tetrahydro-thiophene System Using Solid/Liquid or Liquid/Liquid Phase-Transfer Catalysis, Synthesis, 452(1987). [Pg.35]

S., Aerts, A., Lorgouilloux, Y., and Kirschhock, C.E.A. (2011) Microporous Mesoporous Mater., 140 (1-3), 2-8. Cejka, J., Corma, A., and Zones, S.I. (eds) (1990) Zeolites and Catalysis Synthesis, Reactions and Applications, Wiley-VCH Verlag GmbH, Weinheim. International Zeolite Association Data Base http //unviv.iza-structure.org (accessed 13 June 2012). [Pg.234]

Hunger, M. (2010) Zeolites and Catalysis, Synthesis, Reactions and Applications, Vol. 2, Wiley-VCH Verlag GmbH, Weinheim, pp. 493-546. [Pg.411]

Dai L-X, Hou X-L (eds) (2010) Chiral ferrocenes in asymmetric catalysis synthesis and applications. Wiley-VCH, Hoboken, p 431... [Pg.232]

Catalysis Synthesis and Applications [6]. Large scale applications of enantio-selective hydrogenation technology mainly in the pharmaceutical industry can be fotmd in two monographs [7, 8] and in several overviews [9-11]. [Pg.67]

Papillon, J., E. Schulz, S. Gelinas, J. Lessars, and M. Lemaire. 1998. Towards the preparation of modified chiral electrodes for heterogeneous asymmetric catalysis Synthesis and electrochemical properties of (S,S)-5,5 -his-[3-(3-methyl-pentyl)-thiophen-2-yl]-[2,2 ]-hipyridine. Synth Met 96 155-160. [Pg.549]

N. Andrushko and A. Borner, in Phosphorus Ligands in Asymmetric Catalysis Synthesis and Applications, A. Borner, (ed.), Wiley-VCH, Weinheim, 2008, p. 1275. [Pg.19]


See other pages where Catalysis synthesis is mentioned: [Pg.116]    [Pg.127]    [Pg.396]    [Pg.451]    [Pg.343]    [Pg.100]    [Pg.7]    [Pg.157]    [Pg.300]    [Pg.396]    [Pg.225]    [Pg.69]    [Pg.70]   
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See also in sourсe #XX -- [ Pg.30 ]

See also in sourсe #XX -- [ Pg.53 , Pg.55 , Pg.58 ]

See also in sourсe #XX -- [ Pg.43 , Pg.421 ]

See also in sourсe #XX -- [ Pg.190 ]




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