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Alanates, sodium alanate hydride

The sodium alanate hydride NaAlH is so far the most investigated and promising hydrogen storage material, at least on a short time scale (for reviews see [1-7]). [Pg.206]

The pyridine ring is easily reduced in the form of its quaternary salts to give hexahydro derivatives by catalytic hydrogenation [446], and to tetrahydro and hexahydro derivatives by reduction with alane aluminum hydride) [447], sodium aluminum hydride [448], sodium bis 2-methoxyethoxy)aluminum hydride [448], sodium borohydride [447], potassium borohydride [449], sodium in ethanol [444, 450], and formic acid [318]. Reductions with hydrides give predominantly 1,2,5,6-tetrahydro derivatives while electroreduction and reduction with formic acid give more hexahydro derivatives [451,452]. [Pg.56]

Reduction of unsaturated ketones to unsaturated alcohols is best carried out Nit v complex hydrides. a,/3-Unsaturated ketones may suifer reduction even at the conjugated double bond [764, 879]. Usually only the carbonyl group is reduced, especially if the inverse technique is applied. Such reductions are accomplished in high yields with lithium aluminum hydride [879, 880, 881, 882], with lithium trimethoxyaluminum hydride [764], with alane [879], with diisobutylalane [883], with lithium butylborohydride [884], with sodium boro-hydride [75/], with sodium cyanoborohydride [780, 885] with 9-borabicyclo [3.3.1]nonane (9-BBN) [764] and with isopropyl alcohol and aluminum isopro-... [Pg.120]

High yields of amines have also been obtained by reduction of amides with an excess of magnesium aluminum hydride (yield 100%) [577], with lithium trimethoxyaluminohydride at 25° (yield 83%) [94] with sodium bis(2-methoxy-ethoxy)aluminum hydride at 80° (yield 84.5%) [544], with alane in tetra-hydrofuran at 0-25° (isolated yields 46-93%) [994, 1117], with sodium boro-hydride and triethoxyoxonium fluoroborates at room temperature (yields 81-94%) [1121], with sodium borohydride in the presence of acetic or trifluoroacetic acid on refluxing (yields 20-92.5%) [1118], with borane in tetrahydrofuran on refluxing (isolated yields 79-84%) [1119], with borane-dimethyl sulflde complex (5 mol) in tetrahydrofuran on refluxing (isolated yields 37-89%) [1064], and by electrolysis in dilute sulfuric acid at 5° using a lead cathode (yields 63-76%) [1120]. [Pg.167]

The reaction of tosylhydrazones of a -unsaturated enones with sodium boro-hydride in alcoholic solution leads not to reduction, but instead to elimination according to Scheme 35, to provide a synthesis of allyl ethers in good yields. Potassium carbonate or sodium alkoxides can replace borohydride as the base in this sequence. trans-A y ethyl ethers (74) may be synthesized stereoselectively by the addition of aluminium hydrides to 1-alkynes and subsequent reaction of the vinyl alane formed (Scheme 36). This route complements the same authors ... [Pg.179]

Common reducing agents are hydrogen in the presence of metallic or complex catalysts (e.g. Ni, Pd, Pt, Ru, Rh), hydrides (e.g. alanes, boranes, LIAIH, NaBHJ, reducing metals (e.g. Li, Na, Mg, Ca, Zn), and low-valent compounds of nitrogen (e.g. NjHj, NjHJ, phosphorus (e.g. triethyl phosphite, triphenyiphosphine), and sulfur (e.g. HO-CHj-SOjNa = SFS, sodium dithionite = Na S O. ... [Pg.96]

When the hydride ion of lithium alanate is used as nucleophile, cyclohexa-2,4-dien-l-ol is obtained as a labile addition product which eliminates water on standing to give benzene.12 The reaction of an oxepin derivative that possesses a hexamethylene bridge across C3-C6 with sodium methoxide gives an addition product 5 in which the seven-membered heterocyclic system is retained.213 214... [Pg.46]

Chemical reduction of aromatic aldehydes to alcohols was accomplished with lithium aluminum hydride [5i], alane [770], lithium borohydride [750], sodium borohydride [757], sodium trimethoxyborohydride [99], tetrabutylam-monium borohydride [777], tetrabutylammonium cyanoborohydride [757], B-3-pinanyl-9-borabicyclo[3.3.1]nonane [709], tributylstannane [756], diphenylstan-nane [114], sodium dithionite [262], isopropyl alcohol [755], formaldehyde (crossed Cannizzaro reaction) [i7i] and others. [Pg.100]

Hyperforin is not reduced by sodium borohydride. Reduction with hydride-transfer reagents such as lithium aluminium hydride (LAH), RED-AL, and DIBAL-H, gave varied products in good yields. Its two dicarbonyl systems are amenable to reduction or deoxygenation upon treatment with alane reducing agents and pave the way to new and interesting modifications of the natural product.301... [Pg.126]

It can be summarized that of all the complex aluminum hydrides presented in this chapter only NaAlH4 up till now partially fulfils the requirements for a storage material for mobile fuel cell applications. Over the last decade, the kinetics as well as the cycle stability of doped sodium alanates has been improved. Nevertheless, for application in a low-temperature fuel cell the storage capacity seems to be too low because only the first decomposition step (3.6 wt.% hydrogen) can be used. [Pg.150]

Sodium alanate (NaAll-14) remains so far the most studied complex hydride. It is found that NaAlH4 decomposes in several steps ... [Pg.325]


See other pages where Alanates, sodium alanate hydride is mentioned: [Pg.22]    [Pg.223]    [Pg.146]    [Pg.22]    [Pg.223]    [Pg.136]    [Pg.915]    [Pg.183]    [Pg.184]    [Pg.184]    [Pg.185]    [Pg.190]    [Pg.376]    [Pg.385]    [Pg.397]    [Pg.399]    [Pg.402]    [Pg.403]    [Pg.91]    [Pg.23]    [Pg.160]    [Pg.136]    [Pg.23]    [Pg.192]    [Pg.103]    [Pg.192]    [Pg.192]    [Pg.146]    [Pg.146]    [Pg.147]   


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Alanates

Alane

Alanes

Hydrides alanates

Sodium alanate

Sodium alanates

Sodium hydride

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