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Barium reaction with

CHEMICAL PROPERTIES extremely stable resists hydrolysis reacts with chemi-cally-active metals such as lithium, beryllium, and barium reaction with strong oxidizers, caustic soda, sodium hydroxide, and potash FP (NA) LFL/UFL (NA) AT (NA). [Pg.822]

CH OfiSj, H2C(S03H)2- a colourless, crystalline solid which readily absorbs water vapour decomposes on distillation. The potassium salt is prepared by heating methylene chloride with an aqueous solution of potassium sulphite under pressure at 150-I60" C. The free acid is obtained by decomposing the sparingly soluble barium salt with sulphuric acid. The aryl esters are very stable, but the alkyl esters decompose on heating to give ethers. Resembles malonic acid in some of its reactions. [Pg.259]

Hydroxy-4-methylthiazole has been prepared in 68% yield through the reaction of barium thiocyanate with chloroacetone (70). [Pg.271]

Nitdles may be prepared by several methods (1). The first nitrile to be prepared was propionitdle, which was obtained in 1834 by distilling barium ethyl sulfate with potassium cyanide. This is a general preparation of nitriles from sulfonate salts and is referred to as the Pelou2e reaction (2). Although not commonly practiced today, dehydration of amides has been widely used to produce nitriles and was the first commercial synthesis of a nitrile. The reaction of alkyl hahdes with sodium cyanide to produce nitriles (eq. 1) also is a general reaction with wide appHcabiUty ... [Pg.217]

Barium fluoride [7782-32-8] Bap2, is a white crystal or powder. Under the microscope crystals may be clear and colorless. Reported melting points vary from 1290 (1) to 1355°C (2), including values of 1301 (3) and 1353°C (4). Differences may result from impurities, reaction with containers, or inaccurate temperature measurements. The heat of fusion is 28 kj/mol (6.8 kcal/mol) (5), the boiling point 2260°C (6), and the density 4.9 g/cm. The solubiUty in water is about 1.6 g/L at 25°C and 5.6 g/100 g (7) in anhydrous hydrogen fluoride. Several preparations for barium fluoride have been reported (8—10). [Pg.155]

Because primary and secondary alkyl hydroperoxides are base-sensitive they are converted to peroxyesters by reaction with a ketene or by the reaction of their barium salts with acid chlorides (44). [Pg.127]

Barium metal is produced commercially by the reduction of barium oxide with a less reactive, nonvolatile element, usually aluminum (16—22). Depending on initial stoichiometry, two overall reactions occur in the BaO reduction ... [Pg.472]

The barium crowns are usually broken into smaller pieces and can be sold in this form or cast or extmded into bars or wire. Usually the metal is packaged in argon-fiked plastic bags inside argon-fiked steel containers. Barium is classed as a flammable soHd and cannot be mailed. It should be stored in a wek-ventilated area so as to remove any hydrogen formed through reaction with water vapor. It should not be stored where contact with water is possible. [Pg.472]

Barium metal and most barium compounds are highly poisonous. A notable exception is barium sulfate which is nontoxic because of its extreme iasolubihty ia water. Barium ion acts as a muscle stimulant and can cause death through ventricular fibrillation of the heart. Therefore, care must be taken to avoid contact with open areas of the skin. Workers must wear respirators (of type approved for toxic airborne particles), goggles, gloves, and protective clothing at all times. The toxic barium aluminate residue obtained from barium production is detoxified by reaction with a solution of ferrous sulfate and converted iato nontoxic barium sulfate. According to OSHA standards, the TWA value for Ba and Ba compounds ia air is 0.5 mg/m. ... [Pg.473]

Barium nitrate is prepared by reaction of BaCO and nitric acid, filtration and evaporative crystallization, or by dissolving sodium nitrate in a saturated solution of barium chloride, with subsequent precipitation of barium nitrate. The precipitate is centrifuged, washed, and dried. Barium nitrate is used in pyrotechnic green flares, tracer buUets, primers, and in detonators. These make use of its property of easy decomposition as well as its characteristic green flame. A small amount is used as a source of barium oxide in enamels. [Pg.481]

Barium nitrite [13465-94-6] Ba(N02)2, crystallines from aqueous solution as barium nitrite monohydrate [7787-38-4], Ba(N02)2 H2O, which has yellowish hexagonal crystals, sp gr 3.173, solubihty 54.8 g Ba(NO2)2/100 g H2O at 0°C, 319 g at 100°C. The monohydrate loses its water of crystallization at 116°C. Anhydrous barium nitrite, sp gr 3.234, melts at 267°C and decomposes at 270 °C into BaO, NO, and N2. Barium nitrite may be prepared by crystallization from a solution of equivalent quantities of barium chloride and sodium nitrite, by thermal decomposition of barium nitrate in an atmosphere of NO, or by treating barium hydroxide or barium carbonate with the gaseous oxidiation products of ammonia. It has been used in diazotization reactions. [Pg.481]

Cellobiose was prepared first by Skraup and Konig by the saponification of the octaacetate with alcoholic potassium hydroxide, and the method was improved by Pringsheim and Merkatz.3 Aqueous barium hydroxide also has been employed for the purpose, and methyl alcoholic ammonia has been used extensively for the hydrolysis of carbohydrate acetates. The method of catalytic hydrolysis with a small quantity of sodium methylate was introduced by Zemplen,i who considered the action to be due to the addition of the reagent to the ester-carbonyl groups of the sugar acetate and the decomposition of the addition compound by reaction with alcohol. The present procedure, reported by Zemplen, Gerecs, and Hadacsy, is a considerable improvement over the original method (see Note 2). [Pg.35]

Schimmel Co. have prepared a number of fatty aldehydes bj a modification of this reaction. They distilled mixtures of barium formate with the barium salt of the corresponding acid, in a vacuum, as it was well known that this increases the yield when working with the higher aldehydes, which volatilise with difficulty. [Pg.177]

For best results the commercial triethylamine (Matheson, b.p. 89-90°) should be purified to remove primary and secondary amines and water, either by distillation from acetic anhydride and then from barium oxide, or by reaction with phenyliso-cyanate.5 2 3 4... [Pg.63]

Reactions of barium carbonate with various oxides... [Pg.273]

Write a balanced chemical equation for (a) the hydrogenation of ethyne (acetylene, C2H2) to ethene (C2H4) by hydrogen (give the oxidation number of the carbon atoms in the reactant and product) (b) the shift reaction (sometimes called the water gas shift reaction, WGSR) (c) the reaction of barium hydride with water. [Pg.738]

How many grams of barium hydroxide will be used up in the reaction with hydrogen chloride (hydrochloric acid) to produce 45.00g of barium chloride plus some water ... [Pg.139]

A violent reaction occurred when cleaning lump metal under carbon tetrachloride [1], Finely divided barium, slurried with trichlorotrifluoroethane, exploded during transfer owing to frictional initiation [2], Granular barium in contact with fluo-rotrichloromethane, carbon tetrachloride, 1,1,2-trichlorotrifluoroethane, tetrachloro-ethylene or trichloroethylene is suceptible to detonation [3]. Thermodynamic calculations indicated a heat of decomposition of 2.60 kJ/g of mixture and a likely adiabatic temperature approaching 3000°C, accompanied by a 30-fold increase in pressure [4],... [Pg.90]

The reaction of diphenylmethane with dibenzylbarium in THF, or barium /-butoxide with trimethylsilyldiphe-nylmethane, Ph2CH(SiMe3), in the presence of BunLi forms barium diphenylmethanide by hydrocarbon elimination and desilylation mechanisms, respectively.304 Crystallized in the form of its 18-crown-6 ether derivative 116 (Figure 60), the complex displays direct Ba-C bonds of 3.065(3) and 3.097(3) A, and a longer contact at 3.39 A. [Pg.119]

Reaction of the bis-chelate complex 149 and various bis(arylalkyl)barium complexes generates heteroleptic barium complexes with one chelate and one reactive arylalkyl ligand 164. The homoleptic and heteroleptic barium complexes both induce living polymerization of styrene to atactic polystyrene in cyclohexane solution. The fact that no stereocontrol is observed during polymerization despite the presence of the chiral carbanionic ligands is... [Pg.136]

An aqueous solution of periodic acid, free from metal ions, may be prepared through the conversion of potassium metaperiodate to the slightly soluble barium dimesoperiodate, Ba2l207, which, through reaction with an equivalent amount of sulfuric acid, yields pure periodic acid.107 Hudson found that nitrate as an impurity in periodic acid gives rise to erroneous results in this field.239 ... [Pg.29]

Barium reacts with water according to the above reaction. What volume of hydrogen gas, at standard temperature and pressure, is produced from 0.400 mol of barium ... [Pg.19]

Which of the following best represents the net ionic equation for the reaction of barium hydroxide with an aqueous potassium sulfate solution ... [Pg.306]

In the above reaction the rate of reaction of barium chloride with sulphuric acid is designated by the... [Pg.174]

Cyclododecene may be prepared from 1,5,9-cyclododecatriene by the catalytic reduction with Raney nickel and hydrogen diluted with nitrogen, with nickel sulfide on alumina, with cobalt, iron, or nickel in the presence of thiophene, with palladium on charcoal, with palladimn chloride in the presence of water, with palladium on barium sulfate, with cobalt acetate in the presence of cobalt carbonyl, and with cobalt carbonyl and tri- -butyl phosphine. It may also be obtained from the triene by reduction with lithium and ethylamine, by disproportionation, - by epoxidation followed by isomerization to a ketone and WoliT-Kishner reduction, and from cyclododecanone by the reaction of its hydrazone with sodium hydride. ... [Pg.99]


See other pages where Barium reaction with is mentioned: [Pg.165]    [Pg.165]    [Pg.39]    [Pg.995]    [Pg.293]    [Pg.618]    [Pg.543]    [Pg.704]    [Pg.302]    [Pg.200]    [Pg.123]    [Pg.141]    [Pg.145]    [Pg.363]    [Pg.48]    [Pg.277]    [Pg.440]    [Pg.39]    [Pg.56]    [Pg.468]    [Pg.859]    [Pg.223]    [Pg.259]    [Pg.403]    [Pg.296]   


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Ammonium thiocyanate, reaction with barium hydroxide

Barium carbonate reaction with, phosgene

Barium chloride, reaction with sodium

Barium chloride, reaction with sodium sulfate

Barium hydroxide octahydrate, reaction with

Barium hydroxide reaction with ammonium

Barium metal reactions with

Barium nitrate, reaction with

Barium nitrate, reaction with potassium

Barium nitrate, reaction with potassium chromate

Barium oxide reaction with, phosgene

Barium reaction with water

Barium reactions

Potassium chromate, reaction with barium

Reaction with barium carbonate

Reaction with barium oxide

Reactions of barium carbonate with various oxides

Reactions with Calcium, Strontium, and Barium

Sodium carbonate reaction with barium chloride

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