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Naphthalene, acylation hydrogenation

Another recent patent (22) and related patent application (31) cover incorporation and use of many active metals into Si-TUD-1. Some active materials were incorporated simultaneously (e.g., NiW, NiMo, and Ga/Zn/Sn). The various catalysts have been used for many organic reactions [TUD-1 variants are shown in brackets] Alkylation of naphthalene with 1-hexadecene [Al-Si] Friedel-Crafts benzylation of benzene [Fe-Si, Ga-Si, Sn-Si and Ti-Si, see apphcation 2 above] oligomerization of 1-decene [Al-Si] selective oxidation of ethylbenzene to acetophenone [Cr-Si, Mo-Si] and selective oxidation of cyclohexanol to cyclohexanone [Mo-Si], A dehydrogenation process (32) has been described using an immobilized pincer catalyst on a TUD-1 substrate. Previously these catalysts were homogeneous, which often caused problems in separation and recycle. Several other reactions were described, including acylation, hydrogenation, and ammoxidation. [Pg.377]

Successful resolutions of hydrogenated naphthalenes by acylation in organic solvent have been described. Thus, CALB (Novozym 435) catalyzes the acylation with vinyl acetate at 40 °C in hexane of three cis-fused octahydronaphthalenols to furnish after 48 h the acetylated products 72-74 and the remaining alcohol in high ees and with excellent E (Scheme 4.27, products 72-74 shown) [88]. Similarly, a key intermediate in the synthesis of natural products of the marasmane and lactarane... [Pg.94]

The importance of the steric effect accounts for the spread of the data for lf-N in the substitution reactions. Nitration and non-catalytic chlorination, reactions of modest steric requirements, define points which fall above the arbitrary reference line. Bromination, a reaction of somewhat greater steric requirements, is not accelerated to the extent anticipated on the basis of the results for nitration or chlorination. The benzoylation reaction with large steric requirements is two orders of magnitude slower than the equally selective chlorination reaction. The unusually small ratio for lf-N/2f-N for the acylation reaction is a further indication of the steric effects. Apparently, the direct substitution reactions of naphthalene respond to the retarding steric influence of the peri hydrogen in much the same way as for other ortho substituents. [Pg.115]

A good and comprehensive review of catalytic electrophilic acylation was published by Pearson and Buehler.i Only the catalysts most widely used were considered, with special attention to iron trichloride, zinc chloride, iodine, and elemental iron. The substrates that can be acylated using small amounts of catalysts include alkylarenes, aryl ethers, biphenyls, naphthalenes, acenaphthenes, fluorene, furans, and thiophenes. Aromatic acyl chlorides lead to better yields than aliphatic ones, reaching a maximum of 96% and a minimum of 34%. In general, fhe reactions are performed af relatively high temperatures (from 50°C to 200°C) af which hydrogen chloride evolution is fairly rapid. [Pg.33]

Suh et al.65 have reported a formal total synthesis of Mansonone F and this is described in Scheme 12. 5-Methoxy-a-tetralone (127) was converted to 1-methyl-5-hydroxy-naphthalene (128) by the standard organic reactions. Treatment of (128) with phenyl boronic acid, paraformaldehyde and propionic acid followed by catalytic hydrogenation yielded compound (129). This on alkylation gave the compound (130) which on alkaline hydrolysis was converted to acid. The acid halide underwent intramolecular Friedal-Crafts acylation affording an intermediate (131) whose transformation to Mansonone F has been accomplished by Best and Wege.59... [Pg.221]


See other pages where Naphthalene, acylation hydrogenation is mentioned: [Pg.1630]    [Pg.132]    [Pg.206]    [Pg.1260]    [Pg.156]    [Pg.102]    [Pg.239]    [Pg.346]    [Pg.611]    [Pg.70]    [Pg.6]    [Pg.145]    [Pg.125]    [Pg.338]    [Pg.363]    [Pg.259]    [Pg.215]   
See also in sourсe #XX -- [ Pg.1073 ]




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