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Vanadate

Of little use commercially except as a route to anthraquinone. For this purpose it is oxidized with acid potassium dichromate solution, or better, by a catalytic air oxidation at 180-280 C, using vanadates or other metal oxide catalysts. [Pg.36]

Vanadium dioxide, VO2 is dark blue (V2O5 plus SO2) but is readily reduced further to Vo.i86-V,.6a. VO2 gives the (VO) ion with acids and vanadates(IV) with alkalis and as mixed metal oxides. [Pg.417]

The refining industry generally seeks either to eliminate asphaltenes or to convert them to lighter materials because the presence of heteroelements cause pollution problems, e.g., sulfur and nitrogen, catalyst poisoning, and corrosion (formation of metal vanadates during combustion). [Pg.13]

Vanadium pentoxide, vanadium(V) oxide, V2O5, is the most important compound in this oxidation state. It is a coloured solid (colour due to charge transfer, p. 60), the colour varying somewhat (red -> brown) with the state of subdivision it is formed when vanadium (or some of its compounds) is completely oxidised, and also by heating ammonium vanadate)V) ... [Pg.374]

It is extensively used industrially as a catalyst, notably in the oxidation of sulphur dioxide to the trioxide in sulphuric acid manufacture. It is an essentially acidic oxide, dissolving in alkalis to give vanadates however, addition of acid converts the anionic vanadate species to cationic species, by processes which are very complex, but which overall amount to the following ... [Pg.374]

The + 2 oxidation state is achieved by more drastic reduction (zinc and acid) of the -1-5. -I- 4 or -t- 3 states thus addition of zinc and acid to a solution of a yellow vanadate(V) gives, successively, blue [VOfH O) ]", green [VCl2(H20)4] and violet [VfH O)... [Pg.375]

The colour sequence already described, for the reduction of van-adium(V) to vanadium(II) by zinc and acid, gives a very characteristic test for vanadium. Addition of a few drops of hydrogen peroxide to a vanadate V) gives a red colour (formation of a peroxo-complex) (cf. titanium, which gives an orange-yellow colour). [Pg.376]

The vanadium pentoxide catalyst Is prepared as follows Suspend 5 g. of pure ammonium vanadate in 50 ml. of water and add slowly 7 5 ml. of pure concentrated hydrochloric acid. Allow the reddish-brown, semi-colloidal precipitate to settle (preferably overnight), decant the supernatant solution, and wash the precipitate several times by decantation. Finally, suspend the precipitate in 76 ml. of water and allow it to stand for 3 days. This treatment renders the precipitate granular and easy to 6lter. Filter the precipitate with suction, wash it several times with cold 5 p>er cent, sodium chloride solution to remove hydrochloric acid. Dry the product at 120° for 12 hours, grind it in a mortar to a fine powder, and heat again at 120° for 12 hours. The yield of catalyst is about 3 - 5 g. [Pg.463]

Europium oxide is now widely used as a phospor activator and europium-activated yttrium vanadate is in commercial use as the red phosphor in color TV tubes. Europium-doped plastic has been used as a laser material. With the development of ion-exchange techniques and special processes, the cost of the metal has been greatly reduced in recent years. [Pg.178]

The alkyl derivatives of thiazoles can be catalytically oxidized in the vapor phase at 250 to 400°C to afford the corresponding formyl derivatives (21). Molybdenum oxide, V2O5, and tin vanadate are used as catalysts either alone or with a support. The resulting carbonyl compounds can be selectively oxidized to the acids. [Pg.521]

The mechanism and rate of hydrogen peroxide decomposition depend on many factors, including temperature, pH, presence or absence of a catalyst (7—10), such as metal ions, oxides, and hydroxides etc. Some common metal ions that actively support homogeneous catalysis of the decomposition include ferrous, ferric, cuprous, cupric, chromate, dichromate, molybdate, tungstate, and vanadate. For combinations, such as iron and... [Pg.471]

Several forms of magnesium vanadates have been characterized. Some physical properties ate summarized in Table 27 (28—30) (see also Vanadium AND VANADIUM ADLOYS). [Pg.359]

The recovery of vanadium from these slags is of commercial interest because of the depletion of easily accessible ores and the comparatively low concentrations (ranging from less than 100 ppm to 500 ppm) of vanadium in natural deposits (147,148). In the LILCO appHcations the total ash contained up to 36% 20 (147). Vanadium is of value in the manufacture of high strength steels and specialized titanium alloys used in the aerospace industry (148,149). Magnesium vanadates allow the recovery of vanadium as a significant by-product of fuel use by electric utiUties (see Recycling, nonferrous LffiTALS). [Pg.360]

Magnesium vanadates, as vanadium compounds in general, are known irritants of the respiratory tract and conjunctiva. The threshold limit value (TLV) for vanadium compounds in air recommended by the National Institute of Occupational Safety and Health is 0.05 mg/m based on a typical 8-h workday and 40-h workweek (7,147). Chronic inhalation can lead to lung diseases such as bronchitis, bronchopneumonia, and lobar pneumonia. These dust-related effects can be avoided by use of individual respirators in areas where exposure is likely. [Pg.360]

Testing of phthalocyanines includes crystallization (qv), flocculation, and appHcation in paints, plastics (qv), and printing inks (1). The ASTM standard specifications include CuPc in dry powder form for various appHcations (153). The specifications cover color (qv), character or tint, oil absorption, reactions in identification tests, and dispersions and storage stabiUty. Quantitative deterrninations are possible with ceric sulfate (30) or sodium vanadate (154). Identification methods are given (155), including tests for different appHcations. [Pg.505]


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24-Vanadic acid-2-phosphates

ADP-vanadate

Acids, monodentate ligands, vanadate

Aluminium vanadates

Amine vanadates

Ammonium carbonate vanadate

Ammonium meta vanadate

Ammonium vanadate

Ammonium vanadate metavanadate)

Ammonium vanadate test

Ammonium vanadate, preparation

Ammonium vanadates, decompositions

Ammonium vanadic sulphate

Ammonium vanadous chloride

Aqueous Reactions of Vanadate with Multidentate Ligands

Aqueous reactions vanadate, multidentate ligands

Beryllium vanadates

Biological systems vanadate

Bismuth Vanadate Pigments manufacture

Bismuth vanadate

Bismuth vanadate pigments

Bismuth vanadate, inorganic pigment

Bulk Metal Vanadate

Cadmium vanadates

Chromium vanadate

Coatings bismuth vanadate pigments

Cobalt vanadates

Coordination Geometry of Peroxo and Hydroxamido Vanadates

Copper bismuth vanadate

Copper vanadates

Decavanadates, vanadate

Dimers, vanadate

Double vanadates

Electrically conductive vanadate glass

Electrically conductive vanadate glass conductivity

Enzyme uridine vanadate

Heterometallic Reduced Layered Vanadates

Heterometallic vanadates

Heteropoly vanadates

Hexacarbonyl vanadate

High bismuth vanadates

Hydrogen vanadate

Hypo vanadate

Increase in the Electrically Conductivity of Vanadate Glass

Indium vanadates

Iron vanadates

Isopoly vanadates

Lanthanum vanadate

Layered Heterometallic Vanadates Charge Density Matching

Layered Perrhenate and Vanadate Hybrid Solids On the Utility of Structural Relationships

Lead vanadates

Ligands vanadate/vanadyl interactions

Lithium vanadates

Magnesium vanadates

Mercurous vanadate

Mercury vanadates

Meta-vanadate

Methanol Oxidation bulk metal vanadates towards

Methylamine vanadate

Molybdo-vanadates

Multidentate ligands, vanadate, aqueous

Nickel, catalyst vanadate

Other Vanadates

Peroxidases vanadate-dependent

Phosphates competition with vanadates

Phospho vanadates

Phosphors vanadate

Phosphorylation vanadate-induced contraction

Plastics bismuth vanadate pigments

Polymeric vanadates

Potassium calcium vanadate

Potassium copper vanadate

Potassium manganese vanadates

Potassium nickel vanadates

Potassium uranyl vanadate

Potassium vanadates

Potassium vanadic sulphate

Potassium vanadous chlorides

Potassium zinc vanadates

Preparation of Sodium Vanadate

Rare earth vanadate

Silver chloride vanadate

Sodium meta-vanadate

Sodium uranyl vanadate

Sodium vanadate

Sodium/potassium ATPase vanadate inhibition

Speciation in the Vanadate System

Speciation, vanadate

Strontium Chloride Vanadate(V)

Strontium chloride vanadate

Strontium vanadate

Subject vanadates

The Commonly Encountered Vanadates

The Vanadate Complex VO

The Vanadates

Toxicity sodium vanadate

Tris vanadate

Tungsten vanadates

Uranium minerals uranyl vanadates

Uranyl vanadates

Vanadate , nonabromodi-, tricesium

Vanadate , nonachlorodi-, tris

Vanadate , potassium salts

Vanadate anions

Vanadate as Energiser for Bacteria, and Vanadophores

Vanadate as inhibitor of ATPases

Vanadate by Hydrogen Peroxide and Hydroxylamines

Vanadate catalyst

Vanadate complex formation

Vanadate complexes

Vanadate coordination, hydrogen peroxide

Vanadate coordination, hydrogen peroxide hydroxylamines

Vanadate decavanadate

Vanadate divanadate

Vanadate electron acceptor

Vanadate glass

Vanadate glass electrically conductivity

Vanadate inhibitory effect

Vanadate insulinlike action

Vanadate ion

Vanadate ions, reactions

Vanadate location

Vanadate minerals

Vanadate nonachlorodi-, trirubidium

Vanadate orthovanadate

Vanadate phosphate compared

Vanadate phosphorylation

Vanadate protein binding

Vanadate site nature

Vanadate structures

Vanadate system speciation

Vanadate tetravanadate

Vanadate, hexafluorodipotassium salt history

Vanadate-dependent haloperoxidases

Vanadate-dependent haloperoxidases (VHPOs

Vanadate-dependent haloperoxidases structure

Vanadate-inhibited phosphatases

Vanadate-peroxide system

Vanadate-phosphate ring

Vanadate-phosphate system

Vanadates Reduction

Vanadates biochemistry

Vanadates calcium

Vanadates calcium/magnesium ATPase

Vanadates inhibition

Vanadates magnesium reaction

Vanadates metallic pyro

Vanadates physiology

Vanadates properties

Vanadates protonation

Vanadates sodium pump

Vanadates solution chemistry

Vanadates titanium

Vanadates, alkali

Vanadates, general features

Vanadates, hexafluoro

Vanadates, oxoperoxo

Vanadates, pentacarbonyl

Vanadates, synthesis

Vanadic acid

Vanadic acid ammonium salts

Vanadic acid anhydride

Vanadic acid, meta

Vanadic anhydride

Vanadium vanadate

Vanadous acetate

Vanadous acetate molybdates

Vanadous acetate tungstates

Vanadous bromide

Vanadous chloride

Vanadous chloride preparation

Vanadous fluoride

Vanadous hydroxide

Vanadous iodide

Vanadous oxalates

Vanadous oxide

Vanadous pyrophosphate

Vanadous sulphate

Vanadous thiocyanates

Vanadyl vanadates

Yttrium vanadate

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